An internet of things photovoltaic control system
Patent Information
- Application Number
- CN202521939053.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-10
- Publication Date
- 2026-08-28
- Estimated Expiration
- 2035-09-10
AI Technical Summary
[0003]现有的光伏电池虽然是利用光伏进行发电工作,但是在实际应用过程中收到环境影响很容易发生过热现象,而影响实际使用效果,由此我们特别设计了一种物联网光伏控制系统
1. 处理模块根据传感单元和隔离单元所传递的温度数据结合物联网数据对光伏电池的工作环境以及工作状态进行检测,进而方便工作人员进行追踪维护以及危害预防,有助于提升光伏电池的工作效果。
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Figure CN224697733U_ABST
Abstract
Claims
1. An Internet of Things (IoT) photovoltaic control system, characterized in that it comprises: A photovoltaic cell (1) includes a light-receiving surface (11) and a backlight surface (12). A conductive film (2) is disposed on the light-receiving surface (11). The conductive film (2) includes a wire (21) and a light-transmitting film (22). The wire (21) is connected to the electrode of the photovoltaic cell (1). A distributed detection system (3) is set on a backlight surface (12). The distributed detection system (3) includes an optical fiber detection module (31) and a processing module (32). The processing module (32) is connected to the Internet of Things (10), and the optical fiber detection module (31) is connected to the processing module (32). The fiber optic detection module (31) includes a plate (311), a sensing unit (312), an isolation unit (313), and a guiding unit (314). Multiple sensing units (312) and isolation units (313) are disposed on both ends of the plate (311). The side of the plate (311) with the sensing unit (312) is connected to the backlight surface (12) of the photovoltaic cell (1). The guiding unit (314) is connected to the processing module (32).
2. The Internet of Things photovoltaic control system according to claim 1, characterized in that, The sensing unit (312) is coated with a thermally conductive material and is disposed on the front side of the plate (311); The sensing unit (312) is connected to a first temperature measuring device (3121) and detects the temperature data of the photovoltaic cell (1); The first temperature measuring device (3121) is connected to the processing module (32) through the guide unit (314) and transmits the detection data.
3. The Internet of Things photovoltaic control system according to claim 1, characterized in that, The isolation unit (313) is coated with a thermally conductive material and is disposed on the back of the plate (311). A heat insulation pad (4) is disposed between the isolation unit (313) and the plate (311). The isolation unit (313) is connected to a second temperature measuring device (3131) and detects ambient temperature data. The second temperature measuring device (3131) is connected to the processing module (32) through the guide unit (314) and transmits the detection data.
4. An Internet of Things photovoltaic control system according to claim 2 or 3, characterized in that, The guiding unit (314) includes a first data optical fiber (3141) and a second data optical fiber (3142). The first data optical fiber (3141) is connected to the first temperature measuring device (3121) and the processing module (32). The second data fiber (3142) connects the second temperature measuring device (3131) and the processing module (32).
5. The Internet of Things photovoltaic control system according to claim 1, characterized in that, The conductor (21) is movably connected to the light-transmitting film (22).
6. The Internet of Things photovoltaic control system according to claim 1, characterized in that, it also... include: The groove (221) is disposed on the light-transmitting film (22), and the wire (21) is connected to the groove (221).
7. The Internet of Things photovoltaic control system according to claim 1, characterized in that, The wire (21) is disposed on the edge of the light-transmitting film (22) attached to the photovoltaic cell (1).
8. The Internet of Things photovoltaic control system according to claim 1, characterized in that, The conductor (21) is a copper wire.