Force platform

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Woman walking on a force platform.
Stairway instrumented with two AMTI strain-gauged force platforms.
Laboratory walkway instrumented with three Kistler piezoelectric force platforms for posture and gait analysis.

Force platforms or force plates are measuring instruments that measure the ground reaction forces generated by a body standing on or moving across them, to quantify balance, gait and other parameters of biomechanics. Most common areas of application are medicine and sports.

Operation[edit]

The simplest force platform is a plate with a single pedestal, instrumented as a load cell. Better designs have a pair of rectangular plates, although triangular can also work, one over another with load cells or triaxial force transducers between them at the corners.[1]

The simplest force plates measure only the vertical component of the force in the geometric center of the platform. More advanced models measure the three-dimensional components of the single equivalent force applied to the surface and its point of application, usually called the centre of pressure (CoP), as well as the vertical moment of force.[2] Cylindrical force plates have also been constructed for studying arboreal locomotion, including brachiation.

Force platforms may be classified as single-pedestal or multi-pedestal and by the transducer (force and moment transducer) type: strain gauge, piezoelectric sensors, capacitance gauge, piezoresistive, etc., each with its advantages and drawbacks.[3] Single pedestal models, sometimes called load cells, are suitable for forces that are applied over a small area. For studies of movements, such as gait analysis, force platforms with at least three pedestals and usually four are used to permit forces that migrate across the plate. For example, during walking ground reaction forces start at the heel and finish near the big toe.[2]

Force platforms should be distinguished from pressure measuring systems that, although they too quantify centre of pressure, do not directly measure the applied force vector. Pressure measuring plates are useful for quantifying the pressure patterns under a foot over time but cannot quantify horizontal or shear components of the applied forces.[2]

The measurements from a force platform can be either studied in isolation, or combined with other data, such as limb kinematics to understand the principles of locomotion. If an organism makes a standing jump from a force plate, the data from the plate alone is sufficient to calculate acceleration, work, power output, jump angle, and jump distance using basic physics. Simultaneous video measurements of leg joint angles and force plate output can allow the determination of torque, work and power at each joint using a method called inverse dynamics.

Recent developments in technology[edit]

Advancements in technology have allowed force platforms to take on a new role within the kinetics field. Traditional laboratory-grade force plates cost (usually in the thousands) have made them very impractical for the every day clinician. However, Nintendo introduced the Wii Balance Board (WBB) (Nintendo, Kyoto, Japan) in 2007 and changed the structure of what a force plate can be. By 2010, it was found that the WBB is a valid and reliable force plate when directly compared to the "gold-standard" laboratory-grade force plate, while costing less than $100.[4] More so, this has been verified in both healthy and clinical populations.[5][6] This is possible due to the four force transducers found in the corners of the WBB. These studies are conducted using customized software, such as LabVIEW (National Instruments, Austin, TX, USA) that can be integrated with the board to be able to measure the amount of body sway or the CoP path length during trials for time. The other benefit to having a posturography system, such as the WBB, is that it is portable so clinicians around the world are able to measure body sway quantitatively, instead of relying on the subjective, clinical balance assessments currently in use.

Major manufacturers[edit]

See also[edit]

References[edit]

  1. ^ Flemming Bonde-Petersen, "A simple force platform", European Journal of Applied Physiology, Volume 34, Number 1 / December, 1975, pp.51-54 doi:10.1007/BF00999915
  2. ^ a b c Robertson DGE, et al., Research Methods in Biomechanics, Champaign IL:Human Kinetics Pubs., 2004.
  3. ^ Iwan W. Griffiths, (2006) "Principles of Biomechanics & Motion Analysis". ISBN 0-7817-5231-0
  4. ^ Clark, R. A., Bryant, A. L., Pua, Y., McCrory, P., Bennell, K., & Hunt, M. (2010). Validity and reliability of the Nintendo Wii Balance Board for assessment of standing balance. Gait & posture, 31(3), 307-310.
  5. ^ Holmes, J. D., Jenkins, M. E., Johnson, A. M., Hunt, M. A., & Clark, R. A. (2013). Validity of the Nintendo Wii® balance board for the assessment of standing balance in Parkinson’s disease. Clinical Rehabilitation, 27(4), 361-366.
  6. ^ Hubbard, B., Pothier, D., Hughes, C., & Rutka, J. (2012). A portable, low-cost system for posturography: a platform for longitudinal balance telemetry. Journal of otolaryngology-head & neck surgery= Le Journal d'oto-rhino-laryngologie et de chirurgie cervico-faciale, 41, S31.