1. School of Mechanical and Vehicle Engineering, Linyi University, Linyi 276000, China
2. School of Automation and Electrical Engineering, Linyi University, Linyi 276000, China
| Abstract: | In order to effectively utilize rainwater resources in high-rise buildings, a design scheme for a rainwater power generation system based on WSN (Wireless Sensor Network) is proposed, and the situation of rainwater power generation is statistically analyzed through WSN technology. Design and simulate rainwater recycling and rainwater power generation. The intelligent control rainwater power generation device in this design is generally composed of a power generation box, a storage tank, and an intelligent display controller. This design mainly designs and analyzes the mechanical structure of the intelligent control rainwater power generation device, and the dynamic and static mechanics analysis and fluid mechanics analysis to verify the feasibility and rationality of the rainwater power generation device structure is use by Solid Works software. Based on the law of conservation of mass and the mathematical Auger formula, the outlet of the water storage section and the inlet of the power generation section are optimized and designed to make the best use of rainwater. On the basic knowledge of WSN and microcontroller, this circuit of water level sensor is designed according to the basic knowledge of WSN and single chip microcomputer, so that the water stop plug releases water intermittently to improve the sustainability of power generation. Finally, the exterior design of the rainwater power generation system is carried out by using the principles of segmentation, such as model finite element partitioning, color rendering, and dimensional changes. |
| Keywords: | High-rise Building; Rainwater Recycling; Dynamic and Static Mechanical Analysis; Hydrodynamic Analysis; Optimal Design |
| DOI: | 10.57237/j.mse.2023.04.002 |
| 1. | 山东省大学生创新创业训练计划项目资助 (No. S202310452129) |
| 2. | 国家级大学生创新创业训练计划项目资助 (No. 202110452013) |
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