Development of an Objective Portable Measurement Device for Spinal Joint Accessory Motion Testing
Abstract
:1. Introduction
2. System Design
2.1. Multiprobe Measurement Front End
2.1.1. Mechanical Design
2.1.2. Sensing Subsystem
2.1.3. Integration platform
2.2. Real-Time Graphics Display and Data-Relay Module
2.3. Data Storage and Detailed Data Analysis Station
3. Correction of Displacements and Forces from Unsteady Hand Movement
3.1. Nullifying the Additional Readings Caused by Unsteady Hand Movement
- is the gap distance between probes (system parameter),
- is the encoder offset (system parameter),
- is the tilt angle, (a.k.a. the pitch angle in the 3D case, as shown in Figure 5
- is the P–A displacement,
- is the encoder reading,
- is the additional reading caused by tilt when the probes are on the same level, and
- is the extruded displacement along the tilt angle to the indented level.
- is the applied force,
- is the measured force,
- is the P–A component of the applied force,
- is the load cell offset, and
- is the direction cosine along the Z axis.
3.2. System Parameter Identification Procedure
- is the gap distance between probes (system parameter),
- is the encoder offset (system parameter), and
- is the tilt angle.
3.3. Data Processing
4. System Verification
4.1. Testing Rig
4.2. Single-Spring Test
4.3. Spinal Simulator Test
5. Results of System Verification
5.1. Single-Spring Test
5.2. One-Probe Test and Simulation
5.3. Two-Probe Test and Simulation
6. Discussion
6.1. Instrument Design
6.2. Single-Spring Test
6.3. Spinal Simulation Test
7. Summary & Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Spring | Reference Value 1.3 | JAMTD Mean (SD) 1 | 95% CI | CV 2 |
---|---|---|---|---|
I | 3.177 | 3.109 (0.098) | 3.011−3.197 | 3.2% |
II | 4.197 | 4.305 (0.167) | 4.158−4.472 | 3.9% |
III | 11.376 | 11.336 (0.314) | 11.042−11.621 | 2.8% |
IV | 17.553 | 17.505 (0.314) | 17.211−17.789 | 1.8% |
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Wu, H.-K.; Lai, H.-J.; Teng, T.; Yu, C.-H. Development of an Objective Portable Measurement Device for Spinal Joint Accessory Motion Testing. Sensors 2020, 20, 100. https://doi.org/10.3390/s20010100
Wu H-K, Lai H-J, Teng T, Yu C-H. Development of an Objective Portable Measurement Device for Spinal Joint Accessory Motion Testing. Sensors. 2020; 20(1):100. https://doi.org/10.3390/s20010100
Chicago/Turabian StyleWu, Hsiao-Kuan, Hung-Jen Lai, Ting Teng, and Chung-Huang Yu. 2020. "Development of an Objective Portable Measurement Device for Spinal Joint Accessory Motion Testing" Sensors 20, no. 1: 100. https://doi.org/10.3390/s20010100
APA StyleWu, H. -K., Lai, H. -J., Teng, T., & Yu, C. -H. (2020). Development of an Objective Portable Measurement Device for Spinal Joint Accessory Motion Testing. Sensors, 20(1), 100. https://doi.org/10.3390/s20010100