Research on Biomedical Engineering
http://www.rbejournal.periodikos.com.br/article/doi/10.1590/2446-4740.01217
Research on Biomedical Engineering
Original Article

Development of a low cost force platform for biomechanical parameters analysis

Silva, Marcelo Guimarães; Moreira, Pedro Vieira Sarmet; Rocha, Henrique Martins

Downloads: 0
Views: 871

Abstract

Introduction: The maintenance of balance and body orientation during standing is essential to perform different activities. One of the devices used to measure balance them is the force platform. This device measures the ground reaction force (GRF) and displacement of the center of pressure (COP), both biomechanical parameters involved in human motion. This article proposes a new design for non-commercial low-cost force platforms for scientific research purposes. Methods for calibration and validation are also described. Methods: A force platform, developed according to International Standards of Measurement and dedicated to measuring feet contact forces was built for approximately one tenth of the cost of commercial platforms. Calibration was performed by loading known masses, centralized or distributed, on the platform. An experimental study was conducted with four volunteers in different conditions to validate and verify the practical applicability of the device. Results: The platform calibration showed an adequate connectivity, linearity and reliable measurement of the variables proposed in this research, being suitable for studies of human postural behavior. Conclusion: Based on the validation results, we believe the low-cost platform can be used as stabilometric device to measure postural control and balance in clinical or sports experiments. However future studies will be required to provide a final validation and compare its performance with other force platforms.    

Keywords

Force platform, Biomechanical parameters, Low-cost development, Ground-reaction force, COP displacement.    

References

Alvarenga R, Porto F, Braga R, Cantreva R, Espinosa G, Itaborahy A, Soares PP, Gurgel J. Construction and calibration of a low-cost force plate for human balance evaluation. Rev Port Cien Desp. 2011; 11(Suppl 2):961-4. 

Bagesteiro LB, Laranja RAC, Tamagna A. The development of a force platform: Numerical and experimental analysis. Advances in Biochemical Engineering/Biotechnology. 1998; 39(2):325-30. 

Barela AMF, Duarte M. Utilização da plataforma de força para aquisição de dados cinéticos durante a marcha humana. Journal of Motor Behavior. 2011; 6(1):56-61. 

Cedraro A, Cappello A, Chiari L. A portable system for in-situ re-calibration of force platforms: Theoretical validation. Gait & Posture. 2008; 28(3):488-94. PMid:18450453. http://dx.doi.org/10.1016/j.gaitpost.2008.03.006. 

Dias JA, Mattos DJS, Wentz MD, Domenech SC, Kaufmann P, Borges NG Jr. Validity of a new stabilometric force platform for postural balance evaluation. Rev Bras Cineatropom Desempenho Hum. 2011; 13(5):367-72. http://dx.doi.org/10.5007/1980-0037.2011v13n5p367. 

Duarte M, Freitas SMSF. Revision of posturography based on force plate for balance evaluation. Brazilian Journal of Physical Therapy. 2010; 14(3):183-92. PMid:20730361. http://dx.doi.org/10.1590/S1413-35552010000300003. 

Geurts AC, Nienhuis B, Mulder TW. Intra subject variability of selected force-platform parameters in the quantification of postural control. Archives of Physical Medicine and Rehabilitation. 1993; 74(11):1144-50. PMid:8239951. 

Gil-Gómez JA, Llorens R, Alcaniz M, Colomer C. Effectiveness of a Wii balance board-based system (eBaViR) for balance rehabilitation: a pilot randomized clinical trial in patients with acquired brain injury. Journal of Neuroengineering and Rehabilitation. 2011; 30(1):8-30. PMid:21600066. http://dx.doi.org/10.1186/1743-0003-8-30. 

Gurgel J, Porto F, Russomano T, Cambraia R, de Azevedo DFG, Glock FS, Beck JCP, Helegda S. Development and calibration of a pedal with force and moment sensors. In: Proceedings of the 28th International Conference of the Engineering in Medicine and Biology Society (IEEE 2006); 2006 Aug 30-Sept 3; New York. New York: IEEE-EMBS; 2006. p. 4144-6. http://dx.doi.org/10.1109/IEMBS.2006.260719. 

Gurgel JL, Porto F, Castro L, Russomano T, Beck J, Schroeder I. Desenvolvimento e avaliação de um procedimento de calibração para pedal sensor de forças e momentos. In: Anais do XI Congresso Brasileiro de Biomecânica; 2005 June 19-22; João Pessoa, PB, Brazil. João Pessoa: SBB; 2005. p. 1677-81. 

Herran AM, Zapirain BG, Zorrilla AM. Gait Analysis Methods: An overview of wearable and non-wearable systems, highlighting clinical applications. Sensors. 2014; 14(1):3362-94. PMid:24556672. http://dx.doi.org/10.3390/s140203362. 

Huurnink A, Fransz DP, Kingma I, VanDieën JH. Comparison of a laboratory grade force platform with a Nintendo Wii Balance Board on measurement of postural control in single-leg stance balance tasks. Journal of Biomechanics. 2013; 46(7):1392-5. PMid:23528845. http://dx.doi.org/10.1016/j.jbiomech.2013.02.018. 

Kavounoudias A, Gilhodes JC, Roll R, Roll JP. From balance regulation to body orientation: Two goals for muscle proprioceptive information processing? Experimental Brain Research. 1999; 124(1):80-8. PMid:9928792. http://dx.doi.org/10.1007/s002210050602. 

Moreira D, Godoy JRP, Braz RG, Machado EFB, Santos HFS. Abordagem cinesiológica do chute no futsal e suas implicações clínicas. RBCM. 2004; 12(2):81-5. 

Pagnacco G, Oggero E, Wright CHG. Biomedical instruments versus toys: a preliminary comparison of force platforms and the Nintendo Wii balance board. Biomedical Sciences Instrumentation. 2011; 47(2):12-7. PMid:21525589. 

Rana N. Application of force sensing resistor (FSR) in design of pressure scanning system for plantar pressure measurement. In: Proceedings of the 2nd International Conference on Computer and Electrical Engineering; 2009 Dec 28-30; Dubai. Dubai: UAE; 2009. p. 678-85. http://dx.doi.org/10.1109/ICCEE.2009.234.

Remaud A, Boyas S, Caron G, Bilodeau M. Attentional demands associated with postural control depend on task difficulty and visual condition. Journal of Motor Behavior. 2012; 44(5):329-40. PMid:22934664. http://dx.doi.org/10.1080/00222895.2012.708680. 

Roriz P, Carvalho C, Frazão O, Santos JL, Simões JA. From conventional sensors to fibre optic sensors for strain and force measurements in biomechanics applications: A review. Journal of Biomechanics. 2014; 47(6):1251-61. PMid:24612722. http://dx.doi.org/10.1016/j.jbiomech.2014.01.054. 

Rosa LM. Avaliação de equilíbrio dinâmico de jogadores de futebol durante o chute [thesis]. São Paulo: Universidade Estadual Paulista; 2010. 

Urquiza MA. Desenvolvimento de uma plataforma de força multiaxial para instrumentação biomédica [dissertation]. Uberlândia: Universidade Federal de Uberlândia; 2005. 

Vuillerme N, Nougier V, Prieur JM. Can vision compensate for a lower limbs muscular fatigue for controlling posture in humans? Neuroscience Letters. 2001; 308(2):103-6. PMid:11457570. http://dx.doi.org/10.1016/S0304-3940(01)01987-5. 

59ea2a210e88253f0f9aaad9 rbejournal Articles
Links & Downloads

Res. Biomed. Eng.

Share this page
Page Sections