一种制冷设备紊流增强换热结构

By using snap-fit ​​connection components and pulley structures in the refrigeration equipment, the problems of inconvenient replacement and wear of the cleaning mechanism are solved, achieving efficient and stable cleaning results, and improving maintenance efficiency and equipment lifespan.

CN224517547UActive Publication Date: 2026-07-17TIANJIN TIANDA BEIYANG CHEM TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TIANJIN TIANDA BEIYANG CHEM TECH CO LTD
Filing Date
2025-08-30
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

The existing cleaning mechanism of the refrigeration equipment is not easy to replace. After long-term use, the sliding block and slide rail have high resistance and are prone to wear, which affects the cleaning effect.

Method used

The cleaning plate is secured and reliable by using snap-fit ​​connection components and a pulley structure. The spring elasticity ensures the cleaning plate is firmly secured, and the locking mechanism is released by pushing the movable block in the opposite direction, enabling quick disassembly and installation. Pullers are installed at the bottom of the cleaning plate to reduce friction and ensure stability and smooth movement.

Benefits of technology

It improves maintenance efficiency, reduces friction and wear during the cleaning process, ensures the stability and smoothness of the cleaning mechanism, and extends its service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

本实用新型公开了一种制冷设备紊流增强换热结构,涉及制冷设备技术领域,包括安装架,安装架的两侧均固定连接有盖板,安装架的内部等距设置有翅片管,翅片管的一端之间固定连接有连接管,其中一个翅片管的一端固定连接有进水口,另一个翅片管的一端固定连接有出水口。本实用新型公开的一种制冷设备紊流增强换热结构,通过采用卡扣式连接组件,利用弹簧的弹性作用,确保清洁板在安装时牢固可靠,同时,可以快速拆卸清洁板,方便清洗,确保清洁板清理的效果,在清洁板底部设置滑轮,配合第三弹簧的弹性使抵紧板向下压着滑轮,让滑轮与内部底壁接触,这不仅保证了清洁板在移动过程中的稳定,还能减少摩擦和阻力,降低部件磨损。
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Claims

1. A turbulent flow enhanced heat transfer structure for a refrigeration appliance comprising a mounting frame (1), characterised in that, The mounting frame (1) has cover plates (2) fixedly connected to both sides. Finned tubes (3) are equidistantly arranged inside the mounting frame (1). Connecting pipes (4) are fixedly connected to one end of each finned tube (3). One end of one finned tube (3) is fixedly connected to a water inlet (5), and the other end of the finned tube (3) is fixedly connected to a water outlet (6). A lead screw (7) is rotatably connected inside the mounting frame (1). A motor (8) is installed on one side of the mounting frame (1). One end of the output shaft is fixedly connected to one end of the lead screw (7). The outer side of the lead screw (7) is threaded with a first cleaning plate (9) and a second cleaning plate (10). The first cleaning plate (9) and the second cleaning plate (10) are both provided with bristles (11). A connecting component is provided between one side of the first cleaning plate (9) and the second cleaning plate (10). A fan (29) is provided inside the cover plate (2). A support component is provided at the bottom of the first cleaning plate (9) and the second cleaning plate (10).

2. A turbulent flow enhanced heat transfer structure for a refrigeration appliance as defined in claim 1, wherein, The connecting assembly includes two mounting slots (12), both of which are opened on one side of the first cleaning plate (9). An mounting rod (13) is fixedly connected inside the mounting slot (12), and a retaining plate (14) is slidably connected to the outside of the mounting rod (13). A first spring (15) is provided on the top of the retaining plate (14).

3. A turbulent flow enhanced heat transfer structure for a refrigeration appliance as defined in claim 2, wherein, A connecting groove (16) is provided on one side of the second cleaning plate (10), and one side of the card plate (14) abuts against one side of the inner wall of the connecting groove (16).

4. A turbulent flow enhanced heat transfer structure for a refrigeration appliance as defined in claim 1, wherein, The second cleaning plate (10) has a through groove (17) on one side, and a movable block (18) is slidably connected inside the through groove (17). One side of the movable block (18) extends into the inside of the connecting groove (16) and is fixedly connected to a pressing block (19). A second spring (20) is fixedly connected between the bottom and top of the movable block (18).

5. A turbulent flow enhanced heat transfer structure for a refrigeration appliance as defined in claim 1, wherein, A positioning plate (21) is fixedly connected to one side of the first cleaning plate (9), and a positioning groove (22) is provided on one side of the second cleaning plate (10). The outer side of the positioning plate (21) is slidably connected to the inside of the positioning groove (22).

6. A turbulent flow enhanced heat transfer structure for a refrigeration appliance as defined in claim 1, wherein, The support assembly includes a bottom groove (23), which is respectively opened at the bottom of the first cleaning plate (9) and the second cleaning plate (10). A pulley (24) is provided inside the bottom groove (23), and a shaft (25) is rotatably connected inside the pulley (24). A limiting groove (26) is opened on one side of the inner wall of the bottom groove (23), and the inside of the limiting groove (26) is slidably connected to one end of the shaft (25). The bottom of the pulley (24) abuts against the bottom of the inner wall of the mounting bracket (1).

7. A turbulent flow enhanced heat transfer structure for a refrigeration appliance as defined in claim 6, wherein, A third spring (27) is fixedly connected to the top of the inner wall of the bottom groove (23), and a retaining plate (28) is fixedly connected to the bottom of the third spring (27). The bottom of the retaining plate (28) is slidably connected to the top of the pulley (24), and the outer side of the retaining plate (28) is slidably connected to the inside of the bottom groove (23).