Skip to main content
Have a personal or library account? Click to login
Passive lower-limb exoskeletons in industry: A review of “Chairless Chairs” for reducing fatigue and musculoskeletal strain Cover

Passive lower-limb exoskeletons in industry: A review of “Chairless Chairs” for reducing fatigue and musculoskeletal strain

Open Access
|May 2026

References

  1. Allias, A., Awang, M. M., Shah, A. A., Azraee, Z., & Arif, M. (2015). Design and development of lower body exoskeleton. In Proceedings of the 2nd Integrated Design Project Conference (Vol. 3, No. 2, pp. 54–67).
  2. Halim, I., Abdullah, Z., Mahadzir, M. N. I., Zainal Abidin, M. Z., Md Ghazaly, M., & Adi, S. (2024). Design and evaluation of single-stand chairless exoskeleton for standing and sitting tasks. Journal of Engineering Science and Technology, 19(1), 298–316.
  3. Han, B., Du, Z., Huang, T., Zhang, T., Li, Z., Bai, O., & Chen, X. (2019). Mechanical framework design with experimental verification of a wearable exoskeleton chair. In Proceedings of the IEEE International Conference on Robotics and Automation (pp. 4040–4045). doi: 10.1109/ICRA.2019.8794466
  4. Hong, Y. P., Koo, D., Park, J. I., Kim, S., & Kim, K. S. (2015). The SoftGait: A simple and powerful weight-support device for walking and squatting. In Proceedings of the IEEE International Conference on Intelligent Robots and Systems (pp. 6336–6341). 10.1109/IROS.2015.7354282
  5. Hyundai. (2018, October 22). Hyundai motor group ventures further into new robotics industry. Hyundai News. https://www.hyundai.news/uk/articles/press-releases/hyundai-motor-group-ventures-further-into-new-robotics-industry.html
  6. Ikeuchi, Y., Ashihara, J., Hiki, Y., Kudoh, H., & Noda, T. (2009). Walking assist device with bodyweight support system. In Proceedings of the 2009 IEEE/RSJ International Conference on Intelligent Robots and Systems (pp. 4073–4079). 10.1109/IROS.2009.5354543
  7. Kar, G., & Hedge, A. (2020). Effects of a sit-stand-walk intervention on musculoskeletal discomfort, productivity, and perceived physical and mental fatigue, for computer-based work. International Journal of Industrial Ergonomics, 78, 102983. doi: 10.1016/j.ergon.2020.102983
  8. Kawahira, H., Nakamura, R., Shimomura, Y., Oshiro, T., & Okazumi, S. (2018). Clinical use of a wearable lower limb support device for surgeries involving long periods of standing. Journal of the Japan Society for Computer Aided Surgery, 20(3), 121–125. doi: 10.5759/JSCAS.20.121
  9. Kim, S., Moore, A., Srinivasan, D., Akanmu, A., Barr, A., Harris-Adamson, C., Rempel, D. M., & Nussbaum, M. A. (2019). Potential of exoskeleton technologies to enhance safety, health, and performance in construction: Industry perspectives and future research directions. IISE Transactions on Occupational Ergonomics and Human Factors, 7(3–4), 185–191. doi: 10.1080/24725838.2018.1561557
  10. Kong, Y. K., Park, C. W., Cho, M. U., Kim, S. Y., Kim, M. J., Hyun, D. J., Bae, K., Choi, J. K., Ko, S. M., & Choi, K. H. (2021). Guidelines for working heights of the lower-limb exoskeleton (Cex) based on ergonomic evaluations. International Journal of Environmental Research and Public Health, 18(10), 5199. doi: 10.3390/ijerph18105199
  11. Lee, K. M., & Wang, D. (2015). Design analysis of a passive weight-support lower-extremity-exoskeleton with compliant knee-joint. In Proceedings of the IEEE International Conference on Robotics and Automation (pp. 5572–5577). doi: 10.1109/ICRA.2015.7139978
  12. Luger, T., Seibt, R., Cobb, T. J., Rieger, M. A., & Steinhilber, B. (2019). Influence of a passive lower-limb exoskeleton during simulated industrial work tasks on physical load, upper body posture, postural control and discomfort. Applied Ergonomics, 80, 152–160. doi: 10.1016/j.apergo.2019.05.018
  13. Matsuzaki, I., Ebara, T., Tsunemi, M., & Fujishiro, M. (2019). Sit-stand endoscopic workstations equipped with a wearable chair. VideoGIE, 4(11), 498–500. doi: 10.1016/j.vgie.2019.06.009
  14. Noh, J., Kwon, J., Yang, W., Oh, Y., & Bae, J. H. (2016). A 4-bar mechanism based for knee assist robotic exoskeleton using singular configuration. In Proceedings of the IECON 2016 - 42nd Annual Conference of the IEEE Industrial Electronics Society (pp. 674–680). doi: 10.1109/IECON.2016.7793059
  15. Page, M. J., McKenzie, J. E., Bossuyt, P. M., Boutron, I., Hoffmann, T. C., Mulrow, C. D., Shamseer, L., Tetzlaff, J. M., Akl, E. A., Brennan, S. E., Chou, R., Glanville, J., Grimshaw, J. M., Hróbjartsson, A., Lalu, M. M., Li, T., Loder, E. W., Mayo-Wilson, E., McDonald, S., ... Moher, D. (2021). The PRISMA 2020 statement: An updated guideline for reporting systematic reviews. BMJ, 372, n71. doi: 10.1136/bmj.n71
  16. Pérez Vidal, A. F., Rumbo Morales, J. Y., Ortiz Torres, G., Sorcia Vázquez, F. De J., Cruz Rojas, A., Brizuela Mendoza, J. A., & Rodríguez Cerda, J. C. (2021). Soft exoskeletons: Development, requirements, and challenges of the last decade. Actuators, 10(7), 166. doi: 10.3390/act10070166
  17. Pillai, M. V., Van Engelhoven, L., & Kazerooni, H. (2020). Evaluation of a lower leg support exoskeleton on floor and below hip height panel work. Human Factors, 62(3), 489–500. doi: 10.1177/0018720820907752
  18. Ramachandran, S., Rohit, S. T., Sanjay, P. M., Vijesh, M. V., & Visal, P. (2018). Design, analysis and development of chairless chair exoskeleton system [Project report]. Nehru College of Engineering and Research Centre, University of Calicut.
  19. Siddha, B., Biradar, V., Darwatkar, V., Shubham, D., & Suresh, W. (2018). Chairless chair. International Journal for Research in Applied Science & Engineering Technology, 5(6), 218–221.
  20. Wang, Z., Wu, X., Zhang, Y., Chen, C., Liu, S., Liu, Y., Peng, A., & Ma, Y. (2021). A semi-active exoskeleton based on EMGs reduces muscle fatigue when squatting. Frontiers in Neurorobotics, 15, 625479. doi: 10.3389/fnbot.2021.625479
  21. Waters, T. R., & Dick, R. B. (2015). Evidence of health risks associated with prolonged standing at work and intervention effectiveness. Rehabilitation Nursing, 40(3), 148–165. doi: 10.1002/rnj.166
  22. Wijegunawardana, I. D., Kumara, M. B. K., De Silva, H. H. M. J., Viduranga, P. K. P., Ranaweera, R. K. P. S., Gopura, R. A. R. C., & Madusanka, D. G. K. (2019). ChairX: A robotic exoskeleton chair for industrial workers. In Proceedings of the 2019 IEEE International Conference on Rehabilitation Robotics (pp. 587–592). doi: 10.1109/ICORR.2019.8779501
  23. Yan, Z., Han, B., Du, Z., Huang, T., Bai, O., & Peng, A. (2021). Development and testing of a wearable passive lower-limb support exoskeleton to support industrial workers. Biocybernetics and Biomedical Engineering, 41(1), 221–238. doi: 10.1016/j.bbe.2020.12.010
  24. Zhu, A., Shen, Z., Shen, H., Wu, H., & Zhang, X. (2018). Design of a passive weight-support exoskeleton of human-machine multi-link. In Proceedings of the 2018 15th International Conference on Ubiquitous Robots (pp. 296–301). doi: 10.1109/URAI.2018.8441899
Language: English
Page range: 192 - 201
Submitted on: Jan 16, 2026
Accepted on: May 5, 2026
Published on: May 21, 2026
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2026 Elisha Claret Wilson Dass, Karmegam Karuppiah, Ayuni Nabilah Alias, Murugadas Ramdas, Nina Fatma Ali, Hassan Sadeghi Naeini, published by University of Physical Education in Warsaw
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.