一种建筑非承重墙光伏储能结构
By designing hollow square tube connecting rods to form heat dissipation grooves on non-load-bearing walls of buildings, the photovoltaic energy storage structure solves the problem of low heat dissipation efficiency of battery modules, achieves efficient heat dissipation and energy storage, and reduces electricity costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- EAST (HENAN) COMM TECH CO LTD
- Filing Date
- 2025-06-20
- Publication Date
- 2026-07-17
AI Technical Summary
The battery pack fits snugly against the frame after installation, resulting in low heat dissipation efficiency and affecting battery efficiency.
Design a photovoltaic energy storage structure for a non-load-bearing wall of a building. A heat dissipation groove is formed by hollow square tube connecting rods, and the battery is fixed in the installation gap. The structure uses the chimney effect to dissipate heat and stores electrical energy through the photovoltaic panel and the battery.
It improves the battery's heat dissipation efficiency, reduces temperature, and increases operating efficiency. It also reduces electricity costs by storing electrical energy and using it during off-peak hours.
Smart Images

Figure CN224519941U_ABST
Abstract
Claims
1. A photovoltaic energy storage structure for a non-load-bearing wall of a building, characterized in that: It includes a photovoltaic mounting layer (1) and a battery mounting layer (2). The battery mounting layer (2) is fixedly installed on the outside of the non-load-bearing wall; The photovoltaic mounting layer (1) is fixedly installed on the outer side of the battery mounting layer (2); The battery mounting layer (2) includes multiple heat sinks and multiple batteries (7). The heat sinks include several connecting rods (5) extending in the vertical direction. An installation gap is formed between adjacent connecting rods (5). The batteries (7) are fixedly installed in the installation gap. The connecting rod (5) is a hollow square tube, and a heat dissipation groove is formed inside the connecting rod. The connecting rod (5) is connected to the installation gap. The heat dissipation groove is used to dissipate heat from the battery (7). The photovoltaic mounting layer (1) includes a mounting frame (3) fixedly connected to the heat dissipation frame. The mounting frame (3) extends in the vertical direction, and a photovoltaic panel (4) is fixedly connected between adjacent mounting frames (3). The photovoltaic panel (4) is electrically connected to the storage battery (7) to store the electricity generated by the photovoltaic panel (4) in the storage battery (7).
2. The building non-bearing wall photovoltaic energy storage structure according to claim 1, characterized in that: The heat dissipation frame of the battery mounting layer (2) also includes multiple battery mounting partitions (6). The battery mounting partitions (6) are vertically fixed between adjacent connecting rods (5). Multiple battery mounting partitions (6) are spaced apart in the extension direction of the connecting rods (5) to form multiple mounting units for placing batteries (7) between adjacent connecting rods (5).
3. The building non-bearing wall photovoltaic energy storage structure according to claim 2, characterized in that: Multiple mounting units between the connecting rods (5) are used to install batteries (7) at intervals so that empty mounting units are formed between adjacent batteries (7) on the upper and lower sides. The battery mounting partition (6) is provided with heat dissipation holes (9) that run through the upper and lower sides.
4. The building non-bearing wall photovoltaic energy storage structure according to claim 3, characterized in that: The connecting rod (5) has multiple through-holes (8) on the side facing the mounting unit to connect the mounting unit and the heat dissipation groove of the connecting rod.
5. A photovoltaic energy storage structure for a non-load-bearing wall of a building according to any one of claims 1-4, characterized in that: The mounting frame (3) is an I-beam fixed to the outside of the connecting rod (5), and the adjacent I-beam spans three connecting rods; The cross-section of the I-beam is an I-beam structure extending from front to back. The I-beam extends vertically, and the left and right ends of the I-beam form a vertically continuous mounting groove. The photovoltaic panel (4) is set between two opposing mounting grooves, and the left and right ends of the photovoltaic panel (4) are both snapped into the mounting grooves.