Performance Analysis of a Single Light Source Bidirectional Visible Light Communication Reverse Reflection Link
Abstract
:1. Introduction
- (1)
- We established a single light source duplex visible light communication system model and derived the effective incidence angle of the light source that can reach the receiving end of the uplink and the maximum travel distance of the reverse reflector through geometric optics.
- (2)
- In order to further verify the reliability of the formula, we establish a simulation model of the uplink of single-light source duplex visible light communication. Through simulation verification and formula derivation, we obtain the influence of the changes in system parameters on the effective incidence angle of the light source and the maximum travel distance of the reverse reflector.
- (3)
- The effective incidence angle and the maximum travel distance of the reverse reflector represent the effective reflected light power of the system and the movement performance of the reverse reflector, respectively. The results show that increasing the lens aperture, decreasing the lens focal length, and increasing the link distance are conducive to increasing the moving range of the reverse reflector and maintaining the stability of the angle range of the incident light so as to stabilize the power reception at the receiving end.
2. System Model
3. Retroreflective End Mobility Analysis
3.1. Lenses at Both Ends Are Coaxial
3.2. The Lenses at Both Ends Are Non-Coaxial
3.2.1. When the Optical Axis of the Modulation End Lens Moves Upward
3.2.2. Modulation End Lens Moves Down
4. Numerical Analysis
4.1. Retroreflective End Movable Range
4.2. Effective Angle of Incidence
5. Zemax Simulation Analysis
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Parameter | Numerical Value |
---|---|
LED luminous power | 1 W |
LED divergence angle | 60° |
link distance | 3 m |
Distance between the LED and receiver lens | 180 mm |
lens material | BK7 |
Lens diameter | 150 mm |
lens focal length | 150 mm |
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Zhang, Y.; Ren, J.; Li, K.; Mou, H. Performance Analysis of a Single Light Source Bidirectional Visible Light Communication Reverse Reflection Link. Photonics 2024, 11, 18. https://doi.org/10.3390/photonics11010018
Zhang Y, Ren J, Li K, Mou H. Performance Analysis of a Single Light Source Bidirectional Visible Light Communication Reverse Reflection Link. Photonics. 2024; 11(1):18. https://doi.org/10.3390/photonics11010018
Chicago/Turabian StyleZhang, Ying, Jiawei Ren, Kexin Li, and Haibo Mou. 2024. "Performance Analysis of a Single Light Source Bidirectional Visible Light Communication Reverse Reflection Link" Photonics 11, no. 1: 18. https://doi.org/10.3390/photonics11010018
APA StyleZhang, Y., Ren, J., Li, K., & Mou, H. (2024). Performance Analysis of a Single Light Source Bidirectional Visible Light Communication Reverse Reflection Link. Photonics, 11(1), 18. https://doi.org/10.3390/photonics11010018