Preliminary Characterization of Robust Detection Method of Solar Cell Array for Optical Wireless Power Transmission with Differential Absorption Image Sensing
Abstract
:1. Introduction
2. Principle of Differential Absorption Image Sensor
3. Detection Experiments of Simulated PV
3.1. Design of Experiments
3.2. Acquired Raw Data in the Experiment
3.3. Data Processing and Software Tools
3.4. Calibration of Experiment System
3.5. Data Processing of Acquired Image
- First, 100 raw 640 × 480 px image data points of the frost glass target ( image: ) and 100 same-size images of the Si target ( image: ) are taken for each combination of parameter set (Exp = 39, 78, …, 10,000 μsec and P = 0, 1, …, 20, i = 1, 2, …, 100).
- These images are trimmed down to each image size (48 × 49, 72 × 71, 95 × 95, 143 × 143, 237 × 237, 331 × 331, 384 × 448, 384 × 480, 640 × 480 px) and grayscaled.
- For each , image data point, P20 data are regarded as background data, and their grayscaled images are subtracted from and . Then, background-free 100 and 100 grayscale images are generated, respectively.
- One hundred differential images are generated for each combination of the parameter set of exposure time and the number of filter papers by subtracting the grayscale level of the image from the image.
- Differential images are accumulated n times n=1, 2, …, 100.
- 7.
- From the binarized image by Equation (6), the connected component with maximum area is extracted, and this is regarded as the Si image.
- 8.
- The center coordinates are calculated as the center of the boundary rectangle of the extracted Si image.
- 9.
- The area is calculated as the area of the extracted Si image.
- 10.
- Regarding signal intensity, the Si portion is extracted from the image by image multiplication of the image and the binarized Si image. Then, signal intensity is calculated as the mean intensity of the extracted Si portion of the image. Noise intensity is calculated as the P20 mean intensity of the frost glass target with light source OFF. SNR is calculated as the ratio of signal intensity to the noise intensity. To avoid instability, such as that which occurred in estimation of , described in Appendix A.2, the definition of SNR uses raw image data.
4. Discussion
4.1. Detectability Criteria
4.1.1. Cooperative OWPT Utilizing Fly Eye Module
4.1.2. Cooperative/Non-Cooperative OWPT without Fly Eye Module
4.2. Assessment of Detectable Range
4.3. Improvement of Detectable Range
4.3.1. Increase of Effective Diameter of Camera Optics
4.3.2. Beam Size (Beam Divergence) Control
4.4. Effect of Background
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
Appendix A. Estimation of Calibration Parameters
Appendix A.1. Estimation of Parameter
Appendix A.2. Estimation of Intensity Reduction Factor
- Estimation of
- Estimation of
Appendix B. Differential Images and Binarized Images of Trimming Size 48 × 49 px, Exposure Time 10,000
Appendix C. Determination Error of X, Y Center Coordinates and Area (48 × 49 px Trimming Size)
Appendix D. Derivation of Equation (10)
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Asaba, K.; Moriyama, K.; Miyamoto, T. Preliminary Characterization of Robust Detection Method of Solar Cell Array for Optical Wireless Power Transmission with Differential Absorption Image Sensing. Photonics 2022, 9, 861. https://doi.org/10.3390/photonics9110861
Asaba K, Moriyama K, Miyamoto T. Preliminary Characterization of Robust Detection Method of Solar Cell Array for Optical Wireless Power Transmission with Differential Absorption Image Sensing. Photonics. 2022; 9(11):861. https://doi.org/10.3390/photonics9110861
Chicago/Turabian StyleAsaba, Kaoru, Kenta Moriyama, and Tomoyuki Miyamoto. 2022. "Preliminary Characterization of Robust Detection Method of Solar Cell Array for Optical Wireless Power Transmission with Differential Absorption Image Sensing" Photonics 9, no. 11: 861. https://doi.org/10.3390/photonics9110861
APA StyleAsaba, K., Moriyama, K., & Miyamoto, T. (2022). Preliminary Characterization of Robust Detection Method of Solar Cell Array for Optical Wireless Power Transmission with Differential Absorption Image Sensing. Photonics, 9(11), 861. https://doi.org/10.3390/photonics9110861