Sled exercises provide a training stimulus that closely mimics real-world physical demands of sports. This article provides examples of how to implement sled training into a program.
This NSCA Coach article provides a proposes a framework for standardizing SEB resistance training based on principles of kinetic and potential energy. Visit NSCA online to read more on exercise science and sport performance.
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September 12, 2020by Brandon Loewen, CSCS, Bridget Ann Frugoli Melton, EdD, CSCS, TSAC-F, Gregory A. Ryan, PhD, CSCS,*D, TSAC-F, and Ronald L. Snarr, PhD, CSCS,*D, NSCA-CPT
The purpose of this article is to address the key elements when designing a training program for firefighters, provide evidence for utilizing circuit training, and suggest recommendations on how to incorporate circuit training into the training program.
Using the sled closely mimics real-time sports performance movements and activities because of the horizontal resistance opposing the vertical movements typically seen in a weight room setting. This article highlights a variety of sled training exercises designed to target the core musculature.
Sprinting is a key component for many individual and team sports. Therefore, to enhance sprint performance, various training methods are widely used by coaches and practitioners, including maximum sprint speed and resisted sprint training. Resisted sprinting with sled towing is a method that has recently received considerable attention from the sport science community. However, to date, no consensus exists regarding its acute and chronic effects in team sport athletes. This narrative review aimed to (a) review and analyze the mechanics of sprinting under unresisted and resisted conditions with a specific focus on team sport disciplines; (b) provide a thorough and applied discussion on the importance of considering acute and chronic effects of sled loading on technique, electromyographic activity, and force production, as well as on the role of muscle architecture and neural factors in sled training; (c) analyze the effects of increasing sled loads during acceleration and maximum velocity phases on contact and flight phases, while concomitantly examining kinetic, kinematic, and neuromuscular aspects, because all these factors affect each other and cannot be properly understood in isolation.
This infographic takes a look at resisted sled training and the benefits it may have on sprint performance. It also offers insight into when and how to utilize resisted sled training.