Thursday, 22 December 2011

Specificity of Off-Ice Fitness Testing and Strength and Conditioning in Elite Male Hockey Players: A review and Personal Interpretation of Current Practices




Specificity of Off-Ice Fitness Testing and Strength and Conditioning in Elite Male Hockey Players: A review and Personal Interpretation of Current Practices
Carl Bergstrom
18912089
To:
Dr. Gallo and Dr. Mosher

Kinesiology 585 Coaching Science- Coaching Manual
December 20th, 2011
University of British Columbia








           


Table of Contents


1.       Introduction…………………………………………………………………………p.3
1.1-            An overview of the demands of the sport………………………………p.3-4
1.2-            Concerns unique to its transferability from gym to ice …………………..p.5
1.3-            An overview of current spectrum of practices that are accepted
for training ………………………………………………………………..p.6-8



2.       Briefly describes the pros, cons, and concerns that I have with current practices:
 2.1- Using steady-state endurance training to build an “Aerobic Base”?..................p. 9-12
       2.2- Using Maximal Oxygen Update (VO2max) scores as predictor ice hockey      performance……………………………………………………………………………..p. 12-14


3.       “My 2 cents” and future considerations…………………………………………p. 14-16


4.       References…………………………………………………………………………….p.17-19


5.       Appendix





1.      Introduction
Ingrained within the Canadian culture is a passionate devotion for the game of ice hockey. Be it parents buying skates for their 2 year-old prodigies, possibly sacrificing their financial security, or the endless 5:30 am practices, our commitment to the sport is relentless.
Due to the “competitiveness” of sport at all levels and ages, off-season fitness testing and strength and conditioning has truly become a vital part of the game. The days of going into training camp 30 pounds overweight and out of shape with their golf clubs on their back from a summer off are as far gone as the days of helmetless players. In 1988, Montgomery observed that elite hockey players displayed a muscle fibre composition similar to untrained individuals. These players are non-existent in today’s game, as these fitness levels would likely not lead to a spot on the roster.
Despite the reality that sport training regimes have evolved, concerns and difficulties still exist in the implementation of efficient off-season strength and conditioning programs, as well as determining transferable off-ice testing measures that reflect performance in game-like situations.
       In my coaching manual, I will not attempt to “solve” the issues that currently perplex the hockey world. Rather, I hope to delve into the demands and needs of the game, while reviewing and interpreting “current practices” as they relate to recent research, in order to maximize my understanding of fitness testing and strength and conditioning implementation in the sport. I hope to accomplish this by providing a brief overview of the demands of the sport, concerns unique to its transferability from the land to ice surface, and an overview of some current strengths and conditioning practices currently accepted at the elite level.  Furthermore, I will challenge, via a research analysis, some controversial concerns in current practice within the sport. Lastly, I will review my own practices with current strength and conditioning.

1.1-            Brief overview of the demands of the sport

Ice hockey is a sport of power and grit with high speeds and collision. As I understand, grit can possibly be defined as pushing oneself to the maximum effort and determination. However, Reilly et al. (2009) stress the complexity of interpreting the demands of team sports due to the, “multidirectional high intensity movements interspersed with medium- and low-intensity episodes with and without the ball repeated over long periods in a semi-stochastic fashion” (p. 576). Further, the authors state that positional and tactile roles must be considered, as well as the type of surface in which the sport is played (Reilly et al., 2009). Hence, the bioenergetics and demands of ice hockey cannot be analyzed in such a simplistic fashion.
            What has been reasonably established is the contribution of the phosphagen (alactic) and anaerobic energy systems for the powerful nature of the sport, with the aerobic energy system contributing more so to over-extended shift lengths and for efficient recovery.
Balance, agility and core strength have been acceptable skill acquisitions for ice hockey due to the decreased friction of the skating surface, frequent change of direction and elevation and the decoupling of upper and lower body, respectively (Twist, 2007). With the nature of battling for loose pucks, high impact checking, shots ramping up to 100 MPH, and 3-4 second explosive skating strides, it is obvious that strength and power are keystones to success in the sport. As well, Jack Blatherwick (Hockey USA-Exercise physiologist) believes that rink “sense” is vital for success in this dynamic game.
Peter Twist (2007) has broken down the individual demands of the sport simplistically, yet with clarity.

Balance and Posture
Skating mechanics, low and long stride, edge control
Deceleration and Acceleration
First Step quickness, stopping ability, change of speed
Explosive Speed

Top-end speed, stride power
Multi-Directional Movement Skill

Efficiency of the tight turn, pivot, x-over, stop and start
Reactivity

Offensive creativity and defensive reactivity
Linked System Strength and Power

Strength on and off puck
Rotary Power

Shooting and pivoting power
Anaerobic Energetics

Hockey specific conditioning
Closed Kinetic Chain Core Strength

Strong on skates
Recovery / Regeneration 

Flexibility, joint mobility, myo-fascial release

Figure 1-Twist conditioning core elements of the hockey training system


1.2  - Concerns unique to its transferability from gym to ice
Hockey is a unique sport in itself. Ice hockey is played on an ice surface, which has a significantly decreased frictional force relative to most surfaces. Also, players are dressed in a large amount of protective gear and carry a hockey stick, with their skate blades providing significantly decreased ground contact relative to they typical training shoes or cleats. Furthermore, the biomechanics of skating and the decoupling of upper and lower limbs (due to stick handing and shooting) differentiate its movement patterns from that of running/sprinting. Based on the examples above, it is clear that the issue of attaining transferable gains between off-ice strength and conditioning and game performance is a complicated one. Many respond by prescribing specific movement patterns, while others believe that training to be more powerful and athletic will transfer regardless of the sport. Hence, the realm of exercise prescription for the sport is both wide-ranging and often counterintuitive.
            Ice hockey is further distinctive in the manner in which participation occurs. It involves a unique “change on the fly” style of play, where players battle for 20-60+ second shifts with changes occurring during the play or in between whistles. Changes are frequent, yet the variability between the length and frequency of shifts, as well as the time between the shifts played varies significantly by the position, role, and skill level of the players. Also, recovery periods are further unpredictable by “television time-outs”, the flow of the game (amount of stoppages, penalties etc), and the intermission between periods. Recovery periods for the athletes range significantly, and the work:rest ratio often fluctuates from 1:1 to a roughly estimated 1:60+. Thus, we must consider many factors when creating conditioning programs for different hockey players.
Evidently, finding transferable off-ice/laboratory measures of game performance is one of great difficulty. Research regarding certain predictors of ice hockey performance, such as “cornerability” and skating speed, can provide a vital light on these important components of the game. However, by using the draft status as an indicator of overall ice hockey performance, Vesovi et al. (2006) determined that off-ice tests could not accurately predict ice hockey playing ability in an elite group of athletes. Furthermore, variables indicated as a possible rationale for these findings included homogeneity of the combined participants, a lack of validity of the tests, and other factors (such as on-ice hockey skills, psychological variables etc…) that play a role in a draft selection (Vesovi et al. 2006). Wayne Gretzky, arguably the greatest hockey player of all time, was notoriously poor in off-ice testing scores. With further investigation, perhaps having the ability to find better and more reliable testing protocols and indicators related to performance can help to development a more relevant and reliable physiological profile for hockey players.

1.3  - An overview of current spectrum of practices that are accepted for training

Many strength and Conditioning specialists and exercise physiologists believe that they are able to offer the “best” way to train for the sport of hockey. However, the varieties of which these individuals prescribe and implement their programs differ immensely in theories and focus. With this diverse spectrum of training philosophies, how do we decipher whose is the best?
Jack Blatherwick, a Ph.D in exercise physiology, is a well-respected strength and conditioning coach with USA hockey and several NCAA and NHL hockey teams. Having worked under the former Soviet system, Jack sits on one extreme of the training spectrum. He believes in ‘raising the comfort zone’ through overspeed training (combining skills with explosive athletic movements for nervous system development and plasticity) and techniques, such as post activation potentiation. He is a firm believer of sports specificity, as he states “The more training looks and feels like the movement in your sport the better it transfers to competition” (Blatherwick, n.d., p.2). Jack takes into account range of motion, speed of motion, multi-tasking, unpredictability, read/react, coordination, balance, agility, endurance, metabolism, gender and age (Blatherwick, n.d.). His philosophy of training is “Thinking outside the barrel”. This is accomplished by integrating more athleticism into strength workouts by turning weight rooms into “gymnasiums with highly athletic movement everywhere” (p.3), by having all lower body and core workouts simulate skating practice, as well as incorporating multi-tasking skills in off-ice training (Blatherwick, n.d.). Jack believes that strength coaches should become coaches of synergy in athletic movement, and that the synergy of skills, rink sense, and athleticism should be the goal for all training.
            Aligned with Dr. Blatherwick, be it less extreme, is Peter Twist.  Having spent 11 years as a strength and conditioning coach and exercise physiologist for the Vancouver Canucks, Peter is a very successful business owner and has extensive work experience with professional athletes and developing young elite athletes. Twist Conditioning has built what they consider “its own unique system of training” in which the focus is on training movement, not muscle (Twist, 2007). Peter wants his athletes to develop efficient, quick, powerful, deceptive, and confident movement abilities that will translate into increased sport skills, tactics, and overall performance (Twist, 2007). According to his camp brochure testimonial, “Each year Peter Twist creates new innovative exercises that produce even better on-ice performance” (Twist, 2007). Integrated into their programming includes parachute-resisted skating/dryland and Bosu ball training for balance, as it is meant to increase the specificity of training for ice hockey. Mr. Twist refers to training with specificity because, “Neural adaptations are involved in strength training”, and thus the muscular and neural systems feeding the muscle must be developed together, specific to game demands so as to learn how to meet those demand (Twist, 2007). Thus, he believes that training must be as specific to the requirements of the sporting action as possible so that the training effect is transferred to the sport movement (Rhodes and Twist, 1993).
            At the international level, Mike Boyle is considered one the pioneers and top experts of the strength and conditioning and sports performance in the training world. He is also known for challenging the reasoning behind certain training prescriptions, which makes him both popular and despised depending on whom you ask. Over the past 30 years, he has worked with several professional athletes and teams including the US Women’s Olympic teams in soccer and ice hockey, the Boston Bruins, the Boston Breakers and the New England Revolution. He is also the head strength and conditioning coach for the powerhouse ice hockey program at Boston University. He is more of a traditionalist in his training philosophy, as he believes that, “working on a solid athletic foundation will pay huge dividends down the road” (Boyle, 2011). Stating that the best methods to develop speed and power are somewhat universal, Boyle understands that some sports require more strength and power than others, but the way you build it does not change (Boyle, 2011). He emphasizes the importance of avoiding certain exercises for a given athlete, rather than having specific ones for a given athlete. However, for a sport like hockey, challenges exist in adding exercises to alleviate common problems, rather than subtracting exercises that exacerbate it. Specifically, Mr. Boyle has his hockey players add hip mobility drills and stretches to improve internal rotation (Boyle, 2011). He is also a big proponent of slide board interval training for adductor and abductor strengthening and conditioning specific to hockey, however he uses it for all of his athletes.
            Joe McCullum is the final strength and conditioning coach to be reviewed. Also a challenger of the “status quo”, Joe is a very well respected local professional with Level 10 Fitness. Joe has worked extensively with national programs and professional athletes, and even more so at the development level. Relatively speaking, he is a traditionalist in nature, specifically focused on fundamental movements, techniques, and progressions of exercise prescription (McCullum, 2010). Rather than focusing on what exercises may maximize a sporting performance, he is concerned with what exercises may maximize an individual’s performance.  Hence, his saying, “What works for one works for one” (McCullum, 2010). Joe believes that sport specificity is not just about training certain movement patterns because they look like something you do in sport, but rather Joe focuses on the progression of skills, adding increased difficulty as abilities increase (McCullum, 2010). He states, “Shouldn't everyone's training be specific? From the position of strength and conditioning coaches, before we worry about specificity we must ensure that an athlete has the ability to do basic movements and do them well before we worry about a sport specific movement” (McCullum, 2010). His definition of sport specificity includes, “addressing the athlete's goals, needs, ability, strength and weakness in order to decrease the chance of injury and most importantly; increase performance…Either way, progressions should be put in place with the end result being able to execute movement's specific to your sport” (McCullum, 2010).
The success of the four strength and conditioning coaches discussed above is not in question, yet their modes of philosophical implementation of strength and conditioning strategies vary drastically. Thus, how do we decipher whose training philosophy is the best? Perhaps, an absolute truth does not exist. More likely, these individuals execute their programming strategically and effectively with highly athletic individuals under the right circumstances. Is it the program the athlete “likes” or the one they “hate”? Compliance and dedication must have roots in perceived benefits. By in large, these are highly motivated and driven individuals who need to be professionally guided, not herded, into the right direction. Either way, they must all be doing something right, and we must respect the “method to the madness” that has driven them to success.
 It is evident that the definitions and the use of the term “sports specificity” differ drastically depending on whom you ask. Like the terms “core training” and “muscle confusion”, the definition of sports specificity is vague and open to interpretation.  While often used as a manner in which to train for skill acquisition related to performance, mimicking movement patterns of a given sport, and as evidence for specific exercise prescription, sport specificity is also integrated into marketing ploys, selling gimmicks and the uniqueness of a training facility, and as the answer to the common question, “what is the best way to train for hockey?” In actuality, I believe that it is a manner in which we attempt to maximize performance and understand the complexity of periodization and programming, especially for a sport that exhibits such unnatural movement patterns, such as ice hockey. We must not be fooled to think that a “golden key” standard of strength and conditioning exists; this is exemplified by the success of the four philosophically different trainers above. Joe McCullum (2010) sums it up very well by stating, “Build a base, or try to mimic movements seen in the field of play. At the end of the day, power is power and strength is strength and if you don't have the ability to transfer both to better you in sport the exercise selection you choose doesn't really matter anyways.”






2. Briefly describe Pros, Cons, and Concerns that I have with current practices:
2.1- Should we use aerobic endurance training to build an “Aerobic Base”?
            Ice hockey has been primarily deemed as a physical and power based sport. In terms of its bioenergetics contribution, it is roughly estimated that the ATP-PCR, anaerobic and aerobic conditions, and aerobic conditions contribute 60%, 20%, and 20%, respectively (Gallo, 2011). In general, the successes of these explosive activities depend on speed/turn-over rate, recovery rate (P-Cr resynthesis and lactic acid clearance), high economy/efficiency/technique, and high percentage of fast-twitch muscle fibers (Gallo, 2011).  However, the demands of an event do not equal the physiological aspects of that event (Reilly et al. 2009).
            In a literature review conducted by Tomlin and Wenger (2001), it was concluded that aerobic fitness enhances recovery from high intensity intermittent exercise through increased aerobic response, improved lactate removal and enhanced PCr regeneration. The need of an aerobic system may not always seem evident given the nature of sprint-intervals; however in reviewing the theoretical research pertaining to repeated high intensity intervals with different recovery durations, the aerobic contribution becomes further evident.
Energy System Contribution Table- Appendix A
A strong argument can be made for the development of every energy system when comparing the repetitions of sprint intervals to the number of shifts taken in a hockey game (Appendix A). However, of great importance in making inferences are the work-to-rest ratios of concern. As previously stated, the number and duration of shifts taken by a player differs significantly depending on many variables including skill level, position, and the role of a player. Montegomery (1988) observed that each shift for a player last 30-80 seconds with 4 to 5 minutes of recovery between shifts. However, the current level of elite ice hockey has become more powerful and physically demanding. John Cuniff, former head coach of the New Jersey Devils, accurately estimated that within a given hockey game, a player averaged 7 shifts of approximately 45 seconds per 20 minute period (Boyle, 2006). Within a given shift, it was estimated to include series of 3 to 5 second sprints. With 20 minute periods realistically 40+ minutes in length, intermissions of 16-18 minutes between periods, and the average television slot for a game from start-finish around 2.5 hours, the variability and need for immediate recovery is player dependent. Player position is also an important consideration, as defensive players are prone to getting more ice time; in the 2010-2011 season, 57 of the top 60 average time on ice/game were defensemen. NHL statistics calculated the lowest and highest average time on ice/game for defensemen and forwards at 2:43-24:17 and 3:04-22:33, respectively. Though the number of games played varied significantly for the players, the variables surrounding the average shift, and thus the resulting work:rest ratios, evidently makes the argument of bioenergetics far more complex.
So how should we build our aerobic fitness levels? In 1993, Twist and Rhodes stated that, “Athletes need to develop a good aerobic base on which to build quality work. Aerobic power is a supply and recovery system, while he needs a strong aerobic base before he can pursue more intense training” (p.11). Furthermore, a hockey player needs a strong aerobic base before he can pursue more intense training, and that he cannot train anaerobically without a strong aerobic base.  The reasoning for a strong “aerobic base” is supported by its contribution during the less intense efforts, its vital contribution to recovery and fatigue resistance, and to enable athletes to train harder so they can develop speed, strength, and skill (Twist and Rhodes, 1993, p.11). Conceptually, the aerobic base represents the base of a cardiovascular pyramid model of training. Thus, the moderate intensity and steady-state aerobic intervals, which represents the aerobic base, build the foundation on which quality higher intensity training (anaerobic, %) intervals can be completed. Though the processes used to build an “aerobic base” have been largely accepted since the early 1990s, research and rebuttals validating the manner in which this theoretical model is “built” or the existence of such a model has been challenged in recent times.
            Mike Boyle is a proponent of “dead to long steady state cardio”. Based on ice hockey’s “on-the-fly” nature of rest intervals with brief high intensity sprints, Mike believes that its bioenergetics requirements are unique, and that assuming, “that the development of an aerobic base is essential for this type of activity is foolish and shortsighted”. Also, he stresses the importance of strength and power in ice hockey, and the detrimental effects that high volumes of cardiovascular endurance work can have muscle fiber type conversion of transitional or intermediate muscle fiber to red, endurance muscle fiber (Boyle, 2006). Among many who support Boyle’s point, Fitts and Widrick (1996) observed that prolonged daily endurance exercise training might induce atrophy of the slow type 1 and fast type IIa fibers. In assessing skating performance variables, ice hockey players should focus on regularly engaging in activities promoting force and power production in the legs, while minimizing prolonged endurance activities which have been shown to hinder their potential (Potteiger et al, 2010).
Consequently, Boyle supports the use quality anaerobic intervals, which can promote the movement of intermediate fibers toward the anaerobic, fast twitch fibers (using 5-60 second sprints with longer recovery), while building the aerobic system by controlling the recovery periods to maintain recovery heart rate levels in the aerobic range (over 120bpm). Moderate-intensity aerobic training that improves the maximal aerobic power does not change anaerobic capacity; yet adequate high-intensity intermittent training can impose significant improvements in the anaerobic and aerobic energy systems (Nishimura et al. 1996).  Caret el al. (2007) also concluded that coaches should probably avoid including aerobic training in their practices, due to the increases in aerobic capacity associated with HITT seen in hockey training, as reflected in increased VO2max values of their subjects. Conclusively, it is evident that our body has a canning ability to build aerobic features of recovery during anaerobic training, while the same cannot be said in the reverse situation. Also of benefit is the reduction of training volume associated with HITT. In comparing short-term sprint intervals (SIT) training versus traditional endurance training, Gibala et al. ( 2006, p.1) discovered that given the large difference in training volume, that SIT was a time-efficient strategy/alternative to induce the rapid adaptations in skeletal muscle and exercise performance comparably exhibited in young active men trained via traditional endurance methods. Furthermore, the decreased training volume is better suited for injury prevention and minimizing overuse injuries.  Boyle sums up his points very well by asking the question, “An efficient aerobic system may facilitate faster recovery. However, at what cost are we developing the aerobic system?”

            “Mr. Sports Specific”, Jack Blatherwick, also supports the negation of long steady state cardiovascular training. However, he does not contradict its uses due to the lack of need for an aerobic base, but rather the biomechanical complication that a short “jogging” stride can have with a skating stride, and the lack of specificity of the training protocol.
            With benefits such as increasing the anaerobic and aerobic energy systems, and decreasing training volumes and body fat composition, controlled “High-Intensity Interval Training (HIIT)” is recommended in the literature, and of great importance for the development of elite ice hockey players. Conversely, the long endurance orientated conditioning methods (in attempting to build an aerobic base) continue to be passé for the aforementioned reasons. Running for an occasional leisure activity, for active recovery, or following an injury is the only time that elite ice hockey players should be going for long runs to work on their “cardio”. Whether you are a firm believer in “building the aerobic base” or not, the superior method of increasing our aerobic capacity coinciding with gains in our anaerobic energy systems seems to be through HIIT. HIIT better mimics the intensity and duration of ice hockey, and thus pertains to the training principle of specificity. In understanding the importance of recovery in ice hockey, it is vital to take into account the variables that exist, separating the theoretical and realistic dimensions and bioenergetics of the game. Those who still believe in the traditional pyramidal approach to building an aerobic base must be cautious in implementing their conditioning programs for elite athletes. It is both naïve and narrow minded to assume that professional and elite athletes lack an aerobic base in the first place. The evolution of the game has demanded that these athletes be professionals, year round. We must be careful in referencing research from the late 1980s. As early as 1995, Cox et al. demonstrated that the previous hockey studies were of little relevance to the “then modernized” hockey due to its evolution, and that much of what existed was based on poorly controlled studies. Furthermore, they suggested the investigation of several performance variables for future research, yet none of them included aerobic base/contribution (neuromuscular skills, strength, power, peripheral adaptations, travel, hydration, detraining and sport specific programs). Since then, it seems that the game has continued to evolve exponentially, gearing more and more towards a power and strength oriented sport. I am confident that this would be exemplified given the opportunity to compare fitness testing results over the past 20 years, though these quantitative measures have not been made available.


2.2- Using maximal oxygen update (VO2max) scores as predictor ice hockey performance
            In the above section, we reviewed the appropriate aerobic contributions to ice hockey performance. Though there is variance in the capacity in which its importance is valued, one cannot deny that it plays a role in performance.
            One’s VO2max is defined as the amount of oxygen an individual can extract from the air and deliver to his tissues (Twist and Rhodes, 1993). VO2max testing protocols have, and continue to be in many governing bodies, one of the gold standards of fitness test for ice hockey performance (along with the Wingate test). I do not deny that benefits exist, such as testing-retesting protocols for a given athlete to see if they have maintained their aerobic fitness levels on the off-season or following an injury, but it should by no means be considered a gold standard for ice hockey performance. Durocher et al. (2010) observed that off-ice VO2max and lactate threshold (LT) were not adequate predictors of on-ice VO2max and LT (in college elite males). These observations, supported by several others in the industry, pose a serious challenge to the use of a cycle ergometry in assessing aerobic capacity (VO2max).
Firstly, with different modes of testing existing (row, bike), the use of a cycle ergometry continues to be the acceptable method for testing in ice hockey. The “groin” muscles, which are major contributors in skating biomechanics, are “spared” in this method of testing (Boyle, 2006). Furthermore, the use of a cycle ergometry does not incorporate a full body movement relative to that of a skating stride. Though the use of VO2max testing is still under question by some, in an attempt to combat the aforementioned variables to make its testing values more acceptable, I suggest the use of a sports-specific on ice aerobic power test called FAST (Petrella et al, 2007). Otherwise, I would suggest the use of treadmill protocol due to its incorporation of the “groin muscles” and the research supporting sprinting speed to skating performance. In addition, the use of a beep test could be advantageous due to the change of direction, which further mimics the nature of ice hockey.
            Secondly, Mike Boyle (2006) states that, “The use of VO2max is frequently utilized to evaluate the condition of athletes involved in endurance sports like distance running, cycling and rowing. This assessment has never been shown to correlate to performance in sports that are intermittent in nature like hockey or court sports.” (Boyle, 2006, p.5) In short, how does the use of an aerobic fitness test represent a primarily anaerobic sport? A high value of VO2max may seem appetizing, however it has been suggested by some that a better dictator of ice hockey performance is a higher lactate threshold (a measure of efficiency; %VO2max at which lactate begins to accumulate), or rather the amount of “useable aerobic capacity” (Boyle, 2006)
            Thirdly, Sheppard et al. (2009) determined that maximal oxygen uptake tests are of little use in ranking athletes of similar ability. This finding in itself is strong evidence that the VO2max testing may be overvalued.
            Fourthly, according to Dr. Timothy Noakes, “Testing for maximum oxygen consumption has produced a brainless model of human exercise performance” (Noakes, 2008, p.551). Though controversial in his work, Dr. Noakes references heavily to make some strong arguments regarding the use of the test. He believes the testing protocol is flawed because it contains three features foreign to performance, including its progressive and graded nature of intensity, the variable duration which negates the ability for optimal performance, and most important the inability for the testing subject to regulate the intensity (Noakes, 2008, p. 555). By predetermining the work rate, Dr. Noakes notes that the test is beyond the control of the experimental subject’s brain, removing pacing strategies and the motor unit recruitment, which results during exercise performance (Noakes, 2008, p. 555).The current VO2max is oriented towards completing the activity without homeostatic failure and the development of a “limiting” skeletal muscle fatigue (Noakes, 2008, p.555). Dr. Noakes uses “limiting” in a semi-sarcastic fashion, as the use of 1-2 factors to determine performance is reductionist in nature, and that several hypothetical models of fatigue exist beyond the one that orients the VO2max test (what about central governor hypothesis?). In summary, “As the VO2max test does not evaluate the athlete’s ability to choose and sustain the optimum pace during exercise of different durations, it cannot be the optimum test either to evaluate a subject’s athletic potential or to understand the biological basis of superior athletic performance.” (Noakes, 2008, p.555).
Lastly, as noted previously, the high volumes of endurance/aerobic training methods can create a muscle fiber type transition unfavorable to ice hockey players. Often in elite sports, athletes focus specifically on the fitness tests that they will undergo during tryouts. In an attempt to make a team, many players may focus on increasing their VO2max testing score with steady state aerobic training, thereby possibly affecting overall on-ice performance; for smaller, younger and/or less explosive players, these transitions can be potentially catastrophic (Boyle, 2006).  Thus, by decreasing the importance of high VO2max scores, we can help negate poor training goals that may actually hinder performance.
I do not believe that removing V02max testing is necessary, but I believe that it is time for exercise physiologists and strength and conditioning coaches to be reasonable with regards to its value in evaluating performance in ice hockey. More important in cardiovascular fitness testing, other than the Wingate test, is finding ways to test recovery and energy regeneration. I suggest the use of a modified phosphate decrement test or repeated shuttle test to analyze performance decline related to recovery/fatigue. The use of a yo-yo intermittent test (modified beep test with short rest intervals) would be useful for aerobic capacity test, while FAST, a sport specific on-ice testing protocol, could be used for aerobic power. Finding an efficient way of testing %VO2max (use of blood lactates) would be beneficial as well.

A protocol developed by Mr. Boyle, which requires strong mental toughness and conditioning is the 10/10 treadmill test; 10% incline at 10 miles/hour until exhaustion (Boyle, 2006). Both traits are required for elite hockey players, and the nature of the incline protocol also stresses the gluteal muscles and hip flexors similarly to skating. Also, it is a true test of anaerobic endurance and aerobic power (record at BU is 3:15). Though the test may be more subjective and less quantitative in nature, its relative comparison is great.

2.       “My 2 cents” and Future Considerations
In the final section, I hope to delve into “my 2 cents” and to make suggestions for future research. Following the review of strength and conditioning and testing practices in elite ice hockey players, it is evident that the delivery and theoretical applications vary significantly. So, where do I find myself in this spectrum of ideologies?
      Regarding exercise and conditioning prescription, my guiding attitude is based primarily around injury prevention; if an athlete is injured, they cannot perform. After having been exposed to training young elite hockey players, it became quickly evident that a significant need for balanced training existed. Many of these athletes, a lot of whom are playing 6 days/week, already display significant imbalances in movement patterns, in musculature, and in flexibility. The extensive demand of the in-season schedule, as well as the demand to maintain elite fitness levels in the off-season, makes for a demanding commitment, which can often lead to overuse injuries. Poor recovery techniques, barely-existent warm up and cool downs, demanding travel schedules, and the “unnatural” movements involved in ice hockey also contribute to issues surrounding the sport. This is often evident throughout a season and late into the playoffs, where teams are plagued with injuries and grinding to perform. Thus, our job as strength and conditioning specialists is to program catering to individual needs that will maximize consistent performances, while maintaining efficient mobility and movement patterns while minimizing injuries. Nutritional considerations and maximal recovery techniques must be implemented in the culture. Furthermore, when we are programming, we must have the ability to understand the tradeoff between gains in the weight room versus mobility and performance detriments; there are always risks with increase intensity of resisted training. At what point is the risk worth the reward?
            I believe that programming should be specific to individual needs and demands. Designing a mass program catering to the “perfect training program for ice hockey players” must not apply. Variability in skill level, strength, size, experience, playing position and fitness levels are just a few of the variables that must be taken into account when programming. Furthermore, it is rare to have all athletes from a team or group to be injury free. Thus, a “Cookie-cutter” program for all hockey athletes cannot be optimal in my opinion. Maintaining efficient fundamental movements, range of motion, mobility and muscle balance are essential foundations for performance. The use of progressions of exercise prescription to attain performance goals in the weight room is also necessary, as you cannot run before you can walk.
Sport specificity, one of the major training principles, has its place in all training. However, its definition in practice and theory often varies depending on whom you ask. Concerns that I have with using sport specific training to mimic movement patterns seen in the sport exist. Firstly, I question the use sport specific movements during in-season training because we may be further likely to tax those muscle groups already prone to overuse injuries, such as the hip flexors and groin muscles. Secondly, in attempting to imitate movement patterns, velocities, and angles under resisted loads, it may possible to affect the biomechanics of the movement. I believe that specificity on this level does have its place, however this should be done on the ice surface and not in the gym (Matthews et al, 2010). Further research on this topic would be beneficial to sport specific programming. We must ask ourselves what our goals are when we go into strength and conditioning facility. For example, are we trying to make better and fit athletes, or are we trying to make better hockey players? I believe that the latter reason can be accomplished by playing the sport itself, while the former can contribute to the athletic attributes needed to excel in on-ice performance.
            As previously stated, I do not support the use of prolonged endurance training for the purpose of building an athlete’s “aerobic base” or aerobic capacity. The literature supports well the use of HITT as a method of building both the anaerobic and aerobic energy systems, while decreasing training volume and increasing the specificity of training.
            V02max testing must not be used as a primary protocol for determining ice hockey performance for the aforementioned reasons. What should be further integrated in fitness testing protocols are test pertaining to injury prevention and/or injury risk assessment. For example, significant research supporting the use of the functional movement screen (FMS) and Y-balance test as predictors for the risk of injury exist. It is not the “end-all-be-all”, however using them during the pre-season, mid-season, and post-season could give some insight on a player’s maintenance and progress throughout the season and how it pertains to their performance. Also, the importance of power and strength fitness components should be more heavily valued; the broad and vertical jump, balance, 10 and 40 meter sprint test, Wingate test, and body composition were all determinants of skating speed (Behm et al., 2005; Farlinger et al., 2007). Furthermore, Peyer et al. (2011) determined that leg press, chin-ups, bench press, and repeat sprint performance were significantly correlated to physiological characteristics of NCAA Division 1 hockey players and their relation to game performance. Further research is also needed in evolving more efficient off-ice determinants of ice hockey performance, as current standards display inconsistent results.
            Further investigations and research are required for the successful evolution of hockey. Having access to NHL combine results of the past and future could enable much of the research needed. Investigating career performance variables (such as games played and missed, points, and longevity of career etc…) and how they pertain to individual testing variables could provide helpful insight and correlations. Along with the use of GPS studies, this data could be used to study positional variances, possibly providing more accurate information of strength and conditioning variables. Lastly, investigating injury prevention and risk assessment techniques as they apply to the nature of injuries in the game of ice hockey would be very beneficial.
            The future of Ice hockey is promising, and continuing to grow internationally. By increase research, the collaboration of those involved, and the efficiency in which the game is approached, Hockey Canada will continue to be a dominating force.








References
Boyle, M. (2006). Aerobic versus Anaerobic Training. Strengthcoach.com. Retrieved             
September 2011, from www.strengthcoach.com.
Boyle, M. (2011). Mike’s bio. Mike Boyle strength and conditioning. Retrieved from
http://www.bodybyboyle.com/mike_boyle
Behm, D.G., Wahl, M.J., Button, D.C.,  Power, K.E.,  Anderson, K.G. (2005).
Relationship between Hockey Skating Speed and Selected Performance Measures.  Journal of Strength and Conditioning Research, 19(2), 326–331.

Blatherwick, J. (n.d.). Introduction and Purpose. Overspeed.info. Retrieved August 15th, 2011,
from http://overspeed.info/
Carey, D.G., Drake, M.M., Pliego, G.J., Raymond, R.L. (2007). Do hockey players need aerobic 
fitness? Relation between VO2max and fatigue during high-intensity intermittent ice skating. Journal of strength and conditioning research / National Strength & Conditioning Association, 21(3), 963-6.
Comparison of on-ice and off-
ice graded exercise testing in collegiate hockey players. Journal of
Farlinger, C.M., Kruisselbrink, L.D., Fowles, J.R. (2007) Relationships to skating performance
in competitive hockey players. Journal of Strength and Conditioning Research,  21(3), 915-922.
Muscle mechanics: adaptations with exercise-training.
Exercise Physiology: Bioenergetics. Lecture conducted from
University of British Columbia, Vancouver, BC.
Gibala, M.J., Little, J.P., Essen,M.V.,Wilkin, J.P., Burgomaster, K.A., Safdar, A., Raha, S.,
Tarnopolsky, M.A. (2006). Short-term sprint interval versus traditional endurance
training: similar initial adaptations in human skeletal muscle and exercise performance.
Journal of Physiology, 575(3), 901-911.
Complex training in ice hockey: the effects of a
heavy resisted sprint on subsequent ice-hockey sprint performance.
Montgomery, D.L. (1988). Physiology of Ice Hockey. Journal of Sports Medicine (Auckland,
N.Z.),
Noakes, T.D. (2008). Testing for maximum oxygen consumption has produced a brainless model
of human exercise performance. British Journal of Sports Medicine, 42, 551-555.

Petrella, N.J., Montelpare, J.M., Nystrom, M., Plyley, M., Faught, B.E. (2007). Validation of

the FAST skating protocol to predict aerobic power in ice hockey players. Journal of Applied Physiology, Nutrition, and Metabolism 32:(4), 693-700.

Physiological
characteristics of National Collegiate Athletic Association Division I ice hockey players
and their relation to game performance.



Potteiger, J.A., Smith, D.L., Maier, M.L.,  Foster, T.S. (2010). Relationship between body

composition, leg strength, anaerobic power, and on-ice skating performance in division I
men's hockey athletes. Journal of Strength and Conditioning Research, 24(7): 1755-
1762.

Tuesday, 25 October 2011

The neck, my favourite structure that supports the head.

     I currently coach football, wrestling and rugby and work as a strength and conditioning coach for these sports as well.  Over the years I have had many athletes and coaches alike ask what is the best exercise for strengthening the neck?  My usual answer was to do 50meter sprints in a 40meter gym to not only strengthen the neck but also to improve one’s physical appearance.  All joking aside, my neck injuries are what ended my athletic career and is a very common injury concern for all contact sport athletes.  I have had a lot of help from Andrea on this article and I hope that you find it useful.  She is smart and I am not and I trust her views on this issue!  I hope to have some videos up in the near future of some of the movements described in this article.
               
     You may be asking yourself why anyone would write about the neck, unless it details how to get rid of the pack of hotdogs on the back of it, or the more attractive turkey gobbler in the front.  At Level 10 Fitness Inc. we work with a myriad of athletes and active rehab clients.  For the average person, neck strengthening is never really an issue unless they are coming off an injury and need to reactivate muscles that may have been shut down from the trauma.    For athletes, neck strengthening is always an issue specifically in contact sports.   The intent of this article is meant more to touch on athletes involved in MMA, wrestling, rugby and football where head to head, head to body and head to ground contact at high velocities may occur.  This does not mean athletes from other sports should stop reading.  Any sport where there is physical contact with other bodies, the ground or barriers at high speeds should be weary of neck injuries.  Please keep in mind, we are airing on the side of caution when we talk about what movements to avoid!  Remember, what works for one does not always work for all!
     As per any of my informative articles, I consult Andrea Engelmann (one of our physiotherapists and trainers) to ensure that my ranting is offset by some useful information!   Basically anything that sounds smart is from Andrea, and the rest of the nonsense is from me. 
The function of the neck:
1.       Support the weight of the head.
2.       Act as a mobile multi-directional platform for the head.
3.       Protect the spinal cord and associated major nerves and blood vessels. 
Why would anyone strengthen the neck?
1.       Contact sport conditioning and traumatic injury prevention/reduction.
2.       Improve posture and prevent postural strain related injuries.
3.       Decrease existing neck, headache or arm pain related to postural strain.
Traumatic Injury-the big concerns:
1.       Spinal cord injury-often a force that causes a fracture, which allows a dislocation of the vertebrae and injury to the spinal cord inside.
·         The magnitude of the forces involved make it unlikely that neck strengthening can be considered preventative.    To give you an idea of some of the collisions in these contact sports, I looked up some info from the show ‘Sport Science’ on the FSN network.
o   “Ultimate fighter Rampage Jackson registered a head injury criteria (HIC) number about four times as high as that of a 35mph head-on crash when he body-slammed a 180-lb crash test dummy”.
o   “A blind-side hit by NFL  linebacker Joey Porter generated 1.600 lb-f, about the same as that generated by a bull, kicking with its hind legs”.
2.       Vertebral Fracture (without spinal cord injury)
·         If fracture is unstable a shift can cause a spinal cord injury (i.e. that’s why you see the spine board come out with a big NFL hit).
·         Flexion, Extension, Shearing and Compression forces can all cause fractures, with combined flexion and rotation (MMA, wrestling, Rugby) frequently yielding unstable fractures.
3.       Vertebral Artery
·         Extreme extension or extreme rotation-and especially the combination position the vertebrae such that they pinch down/kink the vertebral artery, decreasing blood flow to the brain and upper spinal cord.   If the movement is violent enough, the vertebral artery can be torn in this vulnerable position.
4.       Cervical “Bulged” Disc
·         Not as common as the lumbar disc injury, and occurs in younger persons (20-40).
·         Most often caused by axial compression (force down head, compressing neck).
·         Intense muscular effort (i.e. heavy lift) especially with strong recruitment of upper trap-Shrugging movements.    The common prescription for neck strengthening has been to incorporate “shrugs” into programs as a means to protect the neck.  The problem that we encounter with this is most of our athletes already have over-active/tight upper traps (see postural concerns #6) and can lead to shoulder injuries as well if not treated correctly.  The Upper trap inserts into the base of the skull so intense muscular contraction can cause enough compression to actually “blow” a disc in the neck.
·         The above injuries are often associated with large forces and any amount of neck strength exercises cannot be presented as able to prevent these serious outcomes from contact sports-the risk of serious injury cannot be eliminated (as we saw in the sport science show). Although we are aware of the fact that we cannot reduce the chance of injury with major trauma, it still seems reasonable to try to reduce the day to day wear and tear injuries and chronic neck strains that occur in training and competition with conservative neck strengthening.    Some of the most common are listed below.
5.       Neck Muscle Injury/inflammation
·         Acute or chronic muscle strain.
·         Acute decreased range of motion; “ropey” feeling (spasm); or “knots” aka trigger points in chronic strain.
6.       Poor Posture (forward neck and shoulders) can lead to:
·         Rotator cuff problems due to pinching tendons from poor joint positioning and mechanics created by poor posture.
·         Weakness/numbness (thoracic outlet syndrome) due to pinching of nerves and/or blood vessels at neck or shoulder girdle secondary to poor posture.
·         Tension Headaches, from tight neck muscles undergoing chronic traumatic or postural strain.
·         In only the last 2 groups of injuries described can neck strengthening be appropriately termed preventative. 
     This is clearly a large amount of information but it is important to understand these basic points before moving forward to the actions described below.    There are more advanced exercises than the ones described below, but these should act as a base first.  Any time we look to strengthen the neck, there is a risk of injury and the utmost caution should be taken.  More is not better!  Quality controlled reps must be the foundation for any of the following movements.
·         Neutral, chin tuck position, and reinforce shoulder girdle retraction (shoulders down and back) with neutral spine throughout. 
·         Isometrics in neutral.   Use your own hand and gently press and hold the head in a contracted position for 3-5 second holds to start.  In the past we have used partners to give the resistance, but have found that a partner may offer more resistance than needed.  It is important to note that only a small amount of pressure is needed.
·         Building to neutral unsupported exercises. I.e. crunches in neutral, bench press with head off the bench etc.
·         SB Neck bridge beginning with shoulders on stability ball.  Have the athlete gently press their head into the ball (extension) while keeping the space between the chin and superior aspect of the sternum constant.  As the chin begins to drop rest and repeat.  Make sure the athlete keeps their hips elevated and glutes squeezed throughout. 
·         SB Neck Bridge with dumbbell press (advanced).  Same start position as above only have the athlete use a light dumbbell (5-15lbs) and press it from their chest then pass it to the other hand and repeat.  The goal is to keep the hips elevated and maintain the space between the chin and superior aspect of the sternum constant. 
     This is just a few exercises to get you started.  As a wrestling, rugby and football coach we do use some more advanced movements in our routines, but it is important to monitor these with a close eye and make it clear that we are looking for a gradual build and any sign of pain or the symptoms noted above the athlete should stop immediately.

AVOID (For novices and use sparingly for elite athletes):
·         Neck harnesses.
·         Weighted neck exercises
·         Avoid reverse neck bridging in strength and conditioning settings-these exercises are meant for athletes for whom this is functional or directly sport related (wrestling, MMA etc).  In most cases many of these contact sport athletes are in neck bridging positions for much of their training and competition already, so it is already sufficiently incorporated into their mat work. 

My Final Thoughts:
     My athletic career was cut short due to a neck injury.  Over my playing career I worked with and under many strength coaches, physiotherapists, chiropractors, doctors and specialists.  In this time I received mixed messages as to what would be the best way to fix the pain and nerve damage that was inflicted upon me.  Many of the therapists felt the neck was not meant to be strengthened and should be left alone, while others thought I needed to strengthen it.  As an athlete, you tend to trust that your rehab specialists have the same goal as you do, which is to get you back to competition as fast as possible.  In retrospect, I think I would have taken a little advice from everyone and 1) considered not using my head as a weapon and 2) done some specialized neck strengthening.  Too often we wait until an injury occurs to do the appropriate strengthening, and mine was a case of too little too late.  Whether or not therapists like the idea of strengthening the neck, it is my opinion that it should be done to help deal with the stress of contact sports.    I am quite certain that therapists will agree that the neck is not meant to be used as it is in sport either, but we have to work with whatever the situation is to help the athlete.  It is not the ideal solution considering the neck’s purpose, but if we can put off the general wear and tear and prepare for some of the forces that get placed on it in a safe manner, why not?    
In conjunction with the neck strengthening, it is important to not fall into the shrug pit.  As strength coaches we have always worked on the upper traps to help support the neck.  However in actuality, there is more benefit to incorporate mid and lower trap work over the upper trap work (I am not saying you shouldn’t work the upper traps, just balance it with mid and lower trap work) in conjunction with neck and pec/shoulder stretching. 
Realistically, if you are in one of these contact sports, you should be getting more than enough upper trap work through your Olympic lifting and variations. 
Keep in mind that this article is taking a conservative approach.  Elite athletes that have a long training history may be able to incorporate more advanced movements not listed in this article. If you have any questions or concerns, please don’t hesitate to contact me.

Yours in Strength,
Joe McCullum
 @level10fitness, @bigjoesrant

Monday, 12 September 2011

Agility Ladders-A few pro's and con's


I get a lot of questions and comments regarding the use of agility ladders for training purposes.  Many physio therapists and strength and conditioning coaches believe that ladders actually de-train the athletes and serve no purpose in developing agility and speed, while others feel the complete opposite and can't live without them.  I will try to break down the use of the agility ladder so that you can see both sides and make an informed decision for yourselves.
           
As a strength and conditioning coach I get a lot of questions regarding the efficacy of agility ladders as a tool for increasing foot speed, agility and reaction.  Before I go further I want to reiterate that there is no “magic” piece of equipment that will make our athletes faster and more agile, but there are movements and patterns that will help in conjunction with a structured strength and conditioning program.   One must not consider the ladder as the only tool to increase agility (the ability to stop and start in unpredictable situations) and speed.  I have written some pros and cons below along with some detail as to other functions for the ladders.
Cons:
·         Although there are many different patterns that can be used while training with an agility ladder, the foot/hand placement patterns are all very similar.   After the athlete has used the ladder a few times, we are no longer really working on agility as much as change of direction (see above description).   
·         If the athlete’s body position is poor during movements in the ladder, we are reinforcing negative patterns and bad body position (this is the same for any movement).
·         Does not rely heavily on any reactive type components to fit the definition of “agility”. If you are mildly creative, you can add a reactive component to every drill.
Pros:
  • They are easy to use for large groups or beginners.  One ladder can serve a fairly large group at a time when space and time are limited.    If I am on a field and have access to a large amount of cones and space, I may opt to do more reactive type agilities instead.   Considering a large amount of my training hours are confined to a gym space, this becomes tough.
  • Safety!  The agility ladders are an easy low level quick foot drill that can be used by all ages and abilities.  This does not mean there is no chance of injury, but the chance is reduced due to the amount of space traveled by the athlete vs. using cones or agility poles/markers.
  •  From a warm up standpoint the ladders allow us to raise the athlete’s heart rate fairly quickly and increase proprioception of the ankle, knee and hip joints or the wrist, shoulder and elbow if doing upper body movements.
  • Can be used by all populations.  Ladders are great for gym classes, boot camps and injury rehabilitation.  Although the goals of the athlete vs. non athlete may differ, the benefit for the non-athlete population is still high even though the pace is usually greatly reduced.   I use the ladders with many of my older clients as well for balance and body awareness and have had great success.
  • The ladders act as a progression and foundation to more advanced and unpredictable movements.   Most athletes will be able to master all movements in the ladder in a short period of time and then we can progress to more reactive type drills.  
  • Competitions!  When in a group setting it is a great tool to use for sparking a competitive edge within your athletes.  Our athletes need to compete on a regular basis and these types of drills give us a safe and practical outlet for this.  Most ladders will come in two parts that can be separated easily and lined up side by side. 
My final thoughts:
The agility ladders may serve as a useful tool other than increasing agility.  It is easy to be sceptical with any movement or device in any strength and conditioning setting, but as teachers and coaches we need to look at the bigger picture.  Sure, for an elite athlete the ladders may not be the best tool for increasing agility, but there is still benefit to using them (as mentioned above).   There is no device or movement that is the be all to end all for any population with regards to strength and conditioning, however,  a  little variation and balance can go a long way.   Be creative when using the ladders, there are no set patterns that need to be followed and the options are endless.  It is also important to keep in mind, the majority of us in this field are not training 8 hours a day with elite athletes.  Check your ego before you rip on ladders and remember; if your client/athletes can’t do the basics well, the ladders are the least of your worries.  Try a few of the following techniques next time you use them:
  • Have the athletes do some of the same patterns they would do running in a bear crawl position.  This is a great warm up for building upper body strength and stability as well as promoting “fast” hand/arm movements. 
  • Incorporate a ball.  This can be the ball used in their sport, or use tennis balls to incorporate hand eye coordination into the movement.
  • Give audible cues to stop, start or change direction.  Acceleration and deceleration are the foundations of speed movement and agility.  Have the athlete run through the set pattern and tell them to stop mid way though without losing their foot pattern or change direction and go back the way they came.
  • Incorporate backward and lateral movements.  Most movements done forward can be done backward.  

If you have any questions or comments, please don’t hesitate to contact me at joe@level10fitness.com
Yours in Strength,
Joe McCullum

Monday, 5 September 2011

The role of the Strength and Conditioning coach while travelling

                Quite often I get asked what the role of the strength and conditioning (S & C) coach is when we travel with our teams.   For some, it is difficult to comprehend why we would be included on the travel roster of teams when our work is done in the weight room and on the field, ice, court, mat etc.  As both a sport coach and S & C coach, I have seen the benefits of why our teams travel with this extra coach.
                I have been fortunate to travel all over North America, Cuba, Japan, Cayman Islands, Wales, England and Ireland with basketball, football, wrestling and rugby.  My next trip is to the Under 20 World Trophy Tournament for rugby in Moscow this May.  The preparation for this trip will have included 7 weekend camps at Shawnigan Lake School on Vancouver Island that I will also been involved with.
                I have listed the duties I fulfill when travelling with teams below.  Some S & C coaches may have a different opinion so I will explain a little bit about why I do what I do when travelling.  Please keep in mind these are the main roles we fill when travelling and do not include programming, field and weight training sessions etc.
Team and staff contact hours/recognition
·         This is a great time to be in contact with players and coaches and to reiterate the role of the
S & C staff to the athletes.  In Canada, most S & C coaches working with our national programs                   are based in one city while the athletes are all over the country and in some cases the world. 

Recovery and Regeneration-team bonding
·         Ice Baths-At the end of most practices and every game, the S & C coach will set up and monitor ice baths (including ordering ice and setting up and acquiring the appropriate vessels to use).  Whether you like them or not, they are great for team bonding, reducing imflamation and ridding the body of waste products.
·         Hydro Therapy-I know some coaches don’t see the benefit to this, but I have had great success with this as a recovery tool whether there is science to prove its benefit or not.  From a performance standpoint, I see it as a great means to build the team bond and have some fun through low impact activities.  I try to mix in some fun with work by having the athletes do relays, play games, synchronized swimming as a means to get their minds off sport for a little while.
Nutritional Guidelines-I am in contact with the hotels well before we travel to ensure we are getting the correct nutritional values and variety needed for performance.
·         This can be quite challenging when travelling to foreign countries.  At world cups/championships the sport governing body will quite often outline meal plans for the hotels to ensure all participants are receiving adequate meals that their stomachs and minds can tolerate.  The traditional meals in foreign countries will not always bode well with the western athlete (Traditional Japanese breakfast was rice, pickled vegetables and fish eggs).   This can pose a bit of a problem!  Example: For last year’s U-20 World cup of Rugby in Japan, the host hotels were given strict nutritional guidelines to follow.  They were asked to provide “X” amounts of protein, starches, vegetables, fruit etc.  The problem with this was we received the same meals everyday!  After one week of eating the same meals, the athletes start to lose their appetites.  It is our job to meet with the catering managers and try to modify meals to ensure the athletes are getting what they need.  In Cuba, trying to get a meal other than rice and beans or ham and cheese sandwiches was next to impossible.  The athlete’s nutritional plans play a vital role in performance, recovery and regeneration so the S & C coach must be inventive and creative in their methods to ensure that the best possible product is made available to them and that it is somewhat enjoyable.  As S & C coaches we sometimes have to consider what the best options are and decide whether they are practical or not.  Many coaches have a pre-set menu in mind when they travel with teams.  We know what is optimal, but one must consider the psyche of the athlete.  If we feed them chicken and rice for every meal, they will dread meal times and their appetites will diminish.  We must consider that many training camps include 2-3 training sessions per day which results in a high caloric output.
·         In the Cayman Islands, we stayed in a Church camp and were responsible for making all of our own meals.   We had a small kitchen with one fridge and a large dining area.  The daily temperatures were above 30 degrees Celsius with limited refrigeration.   Although this was not an ideal situation, I cooked all meals with the help of the players.  It was a great way for the team to bond and learn how to cook (shocking how little 20 year olds know about food preparation).  It was not in my job description to be a cook, but I realized the importance of them receiving healthy meals each day with regards to enhancing their training sessions, competitions and recovery. 
Rolling and Stretching
·         When travelling with teams, there is generally a very high volume of training sessions for the athletes in a short period of time.  Because our country is such a large land mass, we usually do not get to train as a team very often and need to make the most of the time available to us.  Consequently this results in many aches, strains and stiff muscles.  To help aid in recovery, I will set up a training table to stretch, activate and do light massage to ensure our athletes will be ready to perform on a daily basis.
Active Rehab, Liaising with therapists and team doctors
·         If teams have the luxury of travelling with a therapist and team doctor, the S & C coach will often help with some of the prescribed exercises to treat injuries and to allow for the therapist to have more contact with more players.  In rugby, we generally travel with 26 players and one therapist making his/her job very busy.   In contact sports, it is not uncommon for the therapist to be working from early morning to late night on a daily basis and any help the S & C coach can offer can go a long way in aiding the therapist and team.
Warm ups and cool downs
·         The S & C coach will generally sit in on coaches meetings to see what the daily practice plans are.  This helps us tailor the warm ups to suit the needs of the upcoming practice.  In some cases the practice entails a large amount of contact which would need a different warm up than one that is more skill oriented.  In game or competition settings, the S & C coach helps to ensure the athletes are physically and mentally prepared for the game.
·         After every training session and game, the S & C coach leads the team through an appropriate cool down based off the athletes needs.  I find this acts as a great way to increase the team bond and ensure that the athlete understands the value and benefit of these methods so that they will create healthy habits for the future.
Workouts
·         In many cases, the athletes will be on the road for weeks at a time and they must maintain their strength and power throughout the competition and training sessions.  Quite often this poses a problem when travelling to other countries.  In Japan the weight room was the size of a small locker room.  There was minimal equipment and it was not set up for a team to use.  We had to lift in small groups and I was forced to be inventive with my methods.  I have been to other countries where there is no possibility of getting into a weight room.  If this occurs, we must make do with what we have even though it may not be ideal.
Testing
·         Testing is usually done when we are able to hold local camps and training sessions.  It is hard to organize testing when you only have a limited amount of time with the team and some camp locations may not be able to accommodate the large numbers of athletes.   As an S & C coach this can pose a dilemma.  Ultimately it is our job to help increase the performance of the team and our job is often validated by test results.   In many of the camps I am involved in; we assemble for a weekend and are forced to pack in up to 13 training sessions in 3 days.  Most sport coaches are also put in a difficult spot because they must select the best players for their squads to ensure the best team is put forth.  It takes careful deliberation by the entire staff as to when and what to test (regardless of protocols) as we want to avoid potential injuries as these athletes bodies are being pushed to the limit in such a short period of time.   
·         AS an S & C coach I believe testing plays a vital role in ensuring the athletes are being accountable and are doing everything in their power to increase performance.  Having said this, many teams have set protocols in place and for the most part they are all valid, but we must consider what is the best value for our short time we have to spend with our athletes.  When I worked in the States, I saw my athletes every day and new every individuals past injury history, technical capabilities, previous loads (although our athletes across the country receive programs on a regular basis, we are unable to ensure they are following the programs correctly) and they had a set competitive season (in Canada, many of our sport seasons do not occur at the same time of year, some individuals are on multiple teams etc).   This allowed for set testing dates with multiple staff members aiding in the process.  In Canada, we tend to have one S & C coach in charge of testing an entire team which can lead to a lengthy process.
Data compilation
·         After testing is completed, the S & C coach is responsible for inputting data from the testing protocols and supplying it to the entire staff and team in a professional and legible fashion.
·         When I travel with teams I will quite often record pertinent information from competitions as it relates to the strength and conditioning field.  This includes work to rest ratios, average shift times etc.

My Final Thoughts:
                After being on well over 100 trips as an S & C coach I am finding my role with the team evolves with each tour.  My ultimate goal is to for the teams and athletes that I work with to win, and I am happy to do what it takes to help facilitate this.  Unfortunately this is an ego driven industry and many of my counterparts feel that it is demeaning to go outside their scope of expertise.  I have filmed practices, games, driven rental vans, loaded equipment for the sake of helping the team.  I am a firm believer that we all have roles to fill, but in a team setting no one is “above” any role that will help the team achieve their goals.   When we travel it is not for the purpose of sightseeing, it is to compete and win (I am talking about with a national team or higher).    I mentioned the “psyche” of the athlete earlier.  Most S & C coaches are former athletes themselves and must remember what they have gone through in their playing days.  Just because a book or study says we should do something, doesn’t necessarily make it so.  Keep in mind much of the literature we use as guidelines does not always fit into our situation.  It must be evaluated and its validity must be weighed in with your current situation.
                After working in many different gyms with many different athletes I have always believed in the motto “check your ego at the door”.  If you are travelling with a team, remember what the teams goals are, not your own.  If you are doing this for financial gain, you are in the wrong country and industry!  Save your resume for when applying for jobs, don’t tell the athletes how great you are but let them know about their abilities and how you can help them achieve their goals!

Yours in Strength,
Joe McCullum