CARACTERIZACIÓN DE ELECTRODOS TEXTILES PARA MEDICIONES EMG

IMPEDANCIA Y MORFOLOGÍA DE SEÑAL

Autores/as

  • Pedro Felipe Pereira da Fonseca pedro.labiomep@fade.up.pt
    Universidade do Porto, Portugal
  • Márcio Borgonovo-Santos marcio.santos@riedel.net
    Universidade do Porto, Portugal
  • André Catarino whiteman@det.uminho.pt
    Universidade do Minho, Portugal
  • Miguel Velhote Correia mcorreia@fe.up.pt
    Universidade do Porto, Portugal
  • João Paulo Vilas-Boas jpvb@fade.up.pt
    Universidade do Porto, Portugal

DOI:

10.51283/rc.v25i2.12697

Palabras clave:

Sistemas Vestibles, Electrodos Textiles, Electromiografía, Indumentaria Sensorial

Resumen

Los electrodos textiles son una alternativa a los electrodos de cloruro de plata convencionales en los sistemas portátiles. Su fácil integración en las vestimentas y la comodidad que brinda al usuario las convierten en un interesante desarrollo de la ingeniería textil. El potencial de tales electrodos para permitir una recopilación de datos más discreta en el contexto de la salud y el deporte puede permitir el desarrollo de vestimentas biosensibles para su uso en biomecánica. Sin embargo, la validación adecuada de los señales registradas es primordial y pocos estudios han presentado metodologías consistentes para registros electromiográficos basados en textiles. Este estudio presenta la validación de las propiedades eléctricas y morfológicas de señales electromiográficas registradas con electrodo textil, en comparación con electrodos convencionales de cloruro de plata. Los resultados indican que ambos los electrodos tienen relaciones señal-ruido idénticas, pero con una respuesta de frecuencia de impedancia distinta. La morfología de la envoltura electromiográfica también se identifica entre electrodos, aunque generalmente de menor amplitud en el electrodo textil.

Citas

BECK, Travis W. e colaboradores. The effects of electrode placement and innervation zone location on the electromyographic amplitude and mean power frequency versus isometric torque relationships for the vastus lateralis muscle. Journal of electromyography and kinesiology, v. 18, n. 2, p. 317-328, 2008.

BIFULCO, Paolo e colaboradores. A wearable device for recording of biopotentials and body movements. In: IEEE International Symposium on Medical Measurements and Applications, 2011. Digest of technical papers. Bari, Italy, p. 469-472, 2011.

CATRYSSE, Michael e colaboradores. Towards the integration of textile sensors in a wireless monitoring suit. Sensors and actuators A: physical, v. 114, n. 2, p. 302-311, 2004.

CHAN, Adrian; LEMAIRE, Edward. Flexible dry electrode for recording surface electromyogram. In: IEEE Instrumentation & Measurement Technology, 2010. Conference Proceedings. Austin, USA, p. 1234-1237, 2010.

CHO, Gilsoo; LEE, Seungsin; CHO, Jayoung. Review and reappraisal of smart clothing. International journal of human-computer interaction, v. 25, n. 6, p. 582-617, 2009.

COOSEMANS, Johan; HERMANS, Bart; PUERS, Robert. Integrating wireless ECG monitoring in textiles. In: International Conference on Solid-State Sensors, Actuators and Microsystems, 13th, 2005. Digest of technical papers. Seul, Korea, p. 5-9, 2005.

GRUETZMANN, Anna; HANSEN, Stefan; MÜLLER, Jörg. Novel dry electrodes for ECG monitoring. Physiological measurement, v. 28, n. 11, p. 1375-1390, 2007.

GUO, Li e colaboradores. Systematic review of textile-based electrodes for long-term and continuous surface electromyography recording. Textile research journal, v. 90, n. 2, p. 227-244, 2019.

HERMENS, Hermie J. e colaboradores. Development of recommendations for SEMG sensors and sensor placement procedures. Journal of electromyography and kinesiology, v. 10, n. 5, p. 361-374, 2000.

HILDENBRAND, Kasee; NOBLE, Larry. Abdominal muscle activity while performing trunk-flexion exercises using the ab roller, abslide, fitball, and conventionally performed trunk curls. Journal of athletic training, v. 39, n. 1, p. 37-43, 2004.

ISLAM, G. M. Nazmul; ALI, Mohammad Azan; COLLIE, Stewart. Textile sensors for wearable applications: a comprehensive review. Cellulose, v. 27, n. 11, p. 6103-6131, 2020.

KIM, Siyeon; LEE, Sojung; JEONG, Wonyoung. EMG measurement with textile-based electrodes in different electrode sizes and clothing pressures for smart clothing design optimization. Polymers, v. 12, n. 10, p. 2406, 2020.

LAFERRIERE, Pascal; LEMAIRE, Edward D.; CHAN, Adrian. D. C. Surface electromyographic signals using dry electrodes. IEEE Transactions on Instrumentation and Measurement, v. 60, n. 10, p. 3259-3268, 2011.

LI, Xiaoyan.; ARUIN, Alexander S. Muscle activity onset time detection using teager-kaiser energy operator. In: IEEE Engineering in Medicine and Biology Society. 2005. Conference Proceedings… p. 7549-7552, 2005.

LINZ, Torsten.; GOURMELON, Lena; LANGEREIS, Geert. Contactless EMG sensors embroidered onto textile. In: International Workshop on Wearable and Implantable Body Sensor Networks, 4th, 2007. IFMBE Proceedings… Springer, Berlin, Heidelberg, 2007.

MAROZAS, Vaidotas e colaboradores. A comparison of conductive textile-based and silver/silver chloride gel electrodes in exercise electrocardiogram recordings. Journal of electrocardiology, v. 44, n. 2, p. 189-194, 2011.

OLIVEIRA, Liliam F. e colaboradores. Effect of the shoulder position on the biceps brachii emg in different dumbbell curls. Journal of sports science & medicine, v. 8, n. 1, p. 24-29, 2009.

PANI, Danilo e colaboradores. Validation of polymer-based screen-printed textile electrodes for surface EMG detection. IEEE transactions on neural systems and rehabilitation engineering, v. 27, n. 7, p. 1370-1377, 2019.

RAINOLDI, Alberto e colaboradores. Geometrical factors in surface EMG of the vastus medialis and lateralis muscles. Journal of electromyography and kinesiology, v. 10, n. 5, p. 327-336, 2000.

SCILINGO, Enzo Pasquale e colaboradores. Performance evaluation of sensing fabrics for monitoring physiological and biomechanical variables. IEEE transactions on information technology in biomedicine, v. 9, n. 3, p. 345-352, 2005.

TAJ-ELDIN, Mohammed e colaboradored. A review of wearable solutions for physiological and emotional monitoring for use by people with autism spectrum disorder and their caregivers. Sensors, v. 18, n. 12, p. 4271, 2018.

XU, Pengjun.; ZHANG, Hui; TAO, Xiaoming. M. Textile-structured electrodes for electrocardiogram. Textile progress, v. 40, n. 4, p. 183-213, 2008.

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Publicado

2021-07-28

Cómo citar

Fonseca, P. F. P. da, Borgonovo-Santos, M., Catarino, A., Correia, M. V., & Vilas-Boas, J. P. (2021). CARACTERIZACIÓN DE ELECTRODOS TEXTILES PARA MEDICIONES EMG: IMPEDANCIA Y MORFOLOGÍA DE SEÑAL. Corpoconsciência, 25(2), 221–235. https://doi.org/10.51283/rc.v25i2.12697

Número

Sección

Seção Temática - APLICAÇÕES DA BIOMECÂNICA NO CONTEXTO DA SAÚDE, TREINAMENTO E R

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