The State of the Art of Biomechanics Applied in Ergonomic Furniture Design
Abstract
:1. Introduction
- (1)
- Investigate applications of biomechanics in furniture design;
- (2)
- Compare and analyze the main biomechanical analysis and testing methods;
- (3)
- Improve the flow of furniture design by introducing biomechanics and propose the future study directions for furniture design based on biomechanics.
2. Research Methodology
3. Findings and Discussions
3.1. Biomechanics Utilized in Different Types of Furniture
3.1.1. Common Furniture
3.1.2. Special Furniture
3.1.3. Transportation Vehicle Seats
3.2. Biomechanical Analysis and Testing Methods
3.2.1. Mechanical Models
- (1)
- Skeleton model
- (2)
- Muscle path model
- (3)
- Musculotendon actuation model
- (4)
- Muscle excitation–contraction coupling model
- (5)
- Motor task goal model
3.2.2. Computer-Aided Ergonomics
3.2.3. Experimental Test Methods
4. Conclusions and Projections
- (1)
- The application of biomechanics in common furniture design: More attention should be paid to the use of biomechanics from the perspective of human–furniture interaction for the styling and functional design of furniture, including household furniture and office furniture, which concerns human health and comfort.
- (2)
- The method of using biomechanics in the furniture design process: Combine the Anybody Modeling System (AMS), finite element method (FEM), and computer-aided design (CAD) to simulate the human–furniture interaction process in the use of furniture, which will contribute to the digital design of furniture and improve the rationality and efficiency of furniture design.
- (3)
- Systematization of the way biomechanics are used in furniture design: An in-depth analysis of the existing research would summarize the similarities and differences and combine existing mechanical analysis, computer-aided ergonomics, and experimental tests to propose a set of systematic biomechanics research methods.
- (4)
- Improving the reliability of biomechanics in furniture design: The research of personalized musculoskeletal modeling means and analysis and evaluation methods that reflect individual differences will become a trend. Individual parameters will be varied to obtain more accurate biomechanical analysis results.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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LifeMOD | Opensim | AnyBody Technology | |
---|---|---|---|
License | Commercial | Open-source and developable system | Commercial |
Dynamics analysis | Forward and inverse | Forward and inverse | Inverse |
Model building | GUI guided, | GUI guided, | text-based, |
scaled | scaled | via AnyScript language | |
Muscle modeling | One solution approach | Different solution approaches | One solution approach |
Test Method | Equipment | Usage Scenarios | ||
---|---|---|---|---|
Kinematic parameter | Optical camera | Visible light | Monitoring, Rebroadcast video equipment | Movement patterns |
Infrared light | Motion capture system | |||
Inertial sensing | Inertial sensors | |||
Physiological parameter | Surface electromyography test | EMG Systems | Muscle activity characteristics | |
Kinetic parameter | Mechanical sensors | Force measuring platform, Human body pressure measurement system | Human–machine interaction forces |
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Liu, Y.; Hu, W.; Kasal, A.; Erdil, Y.Z. The State of the Art of Biomechanics Applied in Ergonomic Furniture Design. Appl. Sci. 2023, 13, 12120. https://doi.org/10.3390/app132212120
Liu Y, Hu W, Kasal A, Erdil YZ. The State of the Art of Biomechanics Applied in Ergonomic Furniture Design. Applied Sciences. 2023; 13(22):12120. https://doi.org/10.3390/app132212120
Chicago/Turabian StyleLiu, Yan, Wengang Hu, Ali Kasal, and Yusuf Ziya Erdil. 2023. "The State of the Art of Biomechanics Applied in Ergonomic Furniture Design" Applied Sciences 13, no. 22: 12120. https://doi.org/10.3390/app132212120
APA StyleLiu, Y., Hu, W., Kasal, A., & Erdil, Y. Z. (2023). The State of the Art of Biomechanics Applied in Ergonomic Furniture Design. Applied Sciences, 13(22), 12120. https://doi.org/10.3390/app132212120