Long Sleeve compression tops offer added support of the shoulder structure, core and arms, in addition to skin protection from sun and competition/training abrasions. BODYSCIENCE Athlete Compression Tights have been Designed and made in Australia. BODYSCIENCE Athlete Compression Tights specified panel design forms the corner stone of these unique...
Long Sleeve compression tops offer added support of the shoulder structure, core and arms, in addition to skin protection from sun and competition/training abrasions.
BODYSCIENCE Athlete Compression Tights have been Designed and made in Australia.
BODYSCIENCE Athlete Compression Tights specified panel design forms the corner stone of these unique garments. With specific muscle panel alignment providing unmatched strength, support and fit to targeted muscle groups. KNOWN AS “TARGETED COMPRESSION.” Take your athletic performance to the next level.
Our Athlete Series compression tights are hand crafted from our unique high performance compression fabric which includes superior moisture wicking qualities, meaning that the material is able to ‘draw’ sweat away from where it is produced helping to dissipate body heat. Warp Knit construction resulting in an increased number of fibres means greater durability. A greater ‘elastometric fibre content,’ creates material that can stretch further and return to it’s original shape without distortion and a UV Protection of 50+ protects from the harsh New Zealand sun.
INCREASED VO2MAX AND ANAEROBIC THRESHOLD
Recent research in trained athletes reported that compression garments increased VO2max by 10% and anaerobic threshold by 40% (13). Given that these two physiological variables are highly correlated to success in endurance sports compression garments may provide a significant competitive advantage for endurance athletes.
REDUCED MUSCLE OSCILLATION
It has been suggested that excess oscillatory displacement of a muscle during a dynamic movement may contribute to fatigue and interfere with neurotransmission and optimal muscle recruitment patterns (14). Recent research reported that compression garments were able to significantly reduce longitudinal and anterior-posterior muscle oscillation by 0.32 and 0.40cm respectively upon landing from a maximal vertical jump (7).
Proprioception or joint position sense has major implications to athletic performance, particularly in the areas of technique and injury prevention. Research investigating hip joint proprioception reported significantly greater joint position sense at both 45 and 60 degrees hip flexion (11).
INCREASED EXPLOSIVE MUSCULAR POWER
Explosive muscular power is highly correlated with success in most sports. Research in track and field athletes has reported a 5.2% increase in maximal vertical jump height when vertical jumps are measured wearing compression garments (7).
REDUCED BLOOD LACTATE CONCENTRATIONS
High intensity exercise produces lactic acid which presents a challenge to the body’s ability to maintain pH within the narrow physiological range. This in turn can negatively impact the force generating capacity of the muscle which results in muscle fatigue and impaired athletic performance. Data published by Berry and McMurray (1) showed a 14% decrease in blood lactate concentrations 15 minutes following high intensity exercise when compression garments were worn during and after exercise.
Muscle damage is an inevitable consequence of high intensity exercise and any technique that can facilitate muscle repair and faster recovery is of large benefit to the athlete. A study in elite Rugby Union players reported that compression garments worn immediately after a rugby match significantly reduced markers of muscle damage (creatine kinase) compared to passive recovery at 36 and 84 hours post match (8)
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