Phase change energy storage radiator
By improving the installation components and sliding connection structure, the problems of difficult installation and heat loss of phase change energy storage radiators have been solved, achieving rapid installation and efficient heat dissipation, reducing labor intensity and saving energy.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG LIDONG TECHNOLOGY CO LTD
- Filing Date
- 2025-06-20
- Publication Date
- 2026-05-29
AI Technical Summary
Existing phase change energy storage radiators require the tightening of multiple bolts during installation and disassembly, resulting in high labor intensity, reduced work efficiency, and direct heat dissipation into the outside air, causing energy waste.
The system employs mounting components such as support plates, insert plates, abutment plates, and fixing blocks. Through the cooperation of drive elements and springs, it enables rapid installation and disassembly, reducing the use of bolts. The sliding connection between the support plates and insert plates ensures that heat is not directly dissipated to the outside.
It enables rapid installation and disassembly of phase change radiators, reduces labor intensity, minimizes heat loss, improves work efficiency, and saves energy.
Smart Images

Figure CN224302865U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of radiator technology, and in particular to a phase change energy storage radiator. Background Technology
[0002] Phase change energy storage radiators release heat directly into the outside air during heat dissipation. When heat dissipation requirements are high, fans are used to increase airflow speed and improve heat dissipation efficiency. However, this direct dissipation of heat into the outside air results in heat loss, causing a large amount of heat loss and energy waste during the heat dissipation process of large equipment.
[0003] The existing patent CN221670301U describes a phase change energy storage radiator, which includes an equipment box. A heating device is fixedly installed on the inner bottom wall of the equipment box, and a phase change radiator is installed on the top of the equipment box. The bottom of the phase change radiator contacts the top of the heating device, and the top of the phase change radiator extends above the equipment box. A heat exchange groove is formed on the top of the phase change radiator. This phase change energy storage radiator solves the problem of directly dissipating heat into the outside air, resulting in significant heat loss and energy waste during the heat dissipation process of large equipment. It utilizes a heat recovery device on the heat exchange top cover, pumps water from a tank into a distribution pipe, absorbs heat from the phase change radiator through the heat exchange pipe, and then recovers the heated water back into the tank using a recovery pump. The absorbed heat is then used to heat the water in the tank.
[0004] In actual installation, the bottom of the phase change radiator is connected to the heat-generating equipment by multiple bolts, which means that multiple bolts need to be tightened during installation and disassembly, greatly increasing the labor intensity of workers and reducing work efficiency. Utility Model Content
[0005] The purpose of this utility model is to provide a phase change energy storage radiator, which solves the problem that the bottom of the phase change radiator is connected to the heat-generating device by multiple bolts, which means that multiple bolts need to be tightened during installation and disassembly, greatly increasing the labor intensity of workers and reducing work efficiency.
[0006] To achieve the above objectives, this utility model provides a phase change energy storage radiator, including an equipment box and an installation assembly. The installation assembly includes a support plate, an insert plate, an abutment plate, an installation component, a fixing block, and a body. The support plate is fixedly connected to the equipment box and located on the outside of the equipment box. The insert plate is slidably connected to the support plate and located on the side of the support plate away from the equipment box. The abutment plate is fixedly connected to the insert plate and located on the side of the insert plate away from the support plate. The fixing block is connected to the support plate through the installation component, and the installation component drives the fixing block to move. The fixing block cooperates with the insert plate. The body is fixedly connected to the abutment plate and located on the side of the abutment plate away from the support plate, and abuts against the equipment box.
[0007] The support plate has a groove, which is located on the side of the support plate near the support plate and cooperates with the insert plate.
[0008] The mounting component includes a mounting shell, a connecting rod, and a driving element. The mounting shell is fixedly connected to the support plate and is located on the side of the support plate away from the insert plate, and is connected to the fixing block. The connecting rod is fixedly connected to the mounting shell and is located on the side of the mounting shell away from the support plate, and is connected to the fixing block. The driving element is mounted on the connecting rod and drives the fixing block to move.
[0009] The driving element includes a spring and a driving block. The spring is sleeved on the outside of the connecting rod, and its two ends abut against the mounting shell and the fixing block, respectively. The driving block is fixedly connected to the fixing block and is located on the side of the fixing block away from the support plate.
[0010] The installation assembly further includes a support block and a reinforcing block. The support block is fixedly connected to the equipment box and is located on the side of the equipment box near the support plate, and is connected to the support plate. The reinforcing block is fixedly connected to the abutment plate and is located on the side of the abutment plate near the main body, and is connected to the main body.
[0011] This utility model discloses a phase change energy storage radiator. A support plate is bolted to the outside of the equipment housing. An insert plate is slidably mounted on the support plate, allowing it to move up and down within the support plate. An abutment plate is bolted to the insert plate, and the insert plate enables the abutment plate to be mounted on the support plate. A fixing block is mounted on the support plate via a mounting component, which supports and drives the fixing block to move, causing it to engage with the insert plate. The insert plate has holes that mate with the fixing block, allowing the fixing block to secure the insert plate. This, in turn, ensures the abutment plate is stably mounted on the support plate. The main body is mounted on the abutment plate, which supports the main body and allows it to connect to the equipment housing. This design solves the problem of directly dissipating heat into the outside air, leading to significant heat loss and energy waste, especially in large equipment. By fixing the insert plate with the fixing block, the phase change radiator can be installed and disassembled more quickly, reducing labor intensity and improving work efficiency. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0013] Figure 1 This is a schematic diagram of the overall structure of a phase change energy storage radiator according to the first embodiment of this utility model.
[0014] Figure 2 This is a schematic diagram of the overall structure of the installation component according to the first embodiment of this utility model.
[0015] Figure 3 This is a schematic diagram of the internal structure of the mounting shell according to the first embodiment of this utility model.
[0016] In the diagram: 100-Equipment box, 101-Support plate, 102-Insert plate, 103-Abutment plate, 104-Fixing block, 105-Body, 106-Groove, 107-Mounting shell, 108-Connecting rod, 109-Spring, 110-Drive block, 111-Support block, 112-Reinforcing block. Detailed Implementation
[0017] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.
[0018] The first embodiment of this application is as follows:
[0019] Please see Figures 1 to 3 , Figure 1 This is a schematic diagram of the overall structure of a phase change energy storage radiator according to the first embodiment of this utility model. Figure 2 This is a schematic diagram of the overall structure of the installation component according to the first embodiment of this utility model. Figure 3 This is a schematic diagram of the internal structure of the mounting shell according to the first embodiment of this utility model.
[0020] This utility model provides a phase change energy storage radiator, including an equipment box 100 and an installation assembly. The installation assembly includes a support plate 101, an insert plate 102, an abutment plate 103, an installation component, a fixing block 104, and a body 105. The support plate 101 has a groove 106. The installation component includes an installation shell 107, a connecting rod 108, and a driving element. The driving element includes a spring 109 and a driving block 110. The installation assembly also includes a support block 111 and a reinforcing block 112. This solution solves the problem that the bottom of the phase change radiator is connected to the heat-generating device by multiple bolts, which requires tightening multiple bolts during installation and disassembly, greatly increasing the labor intensity of workers and reducing work efficiency.
[0021] In this specific embodiment, both the equipment box 100 and the body 105 are the equipment box 100 and phase change heat sink described in the existing patent technology CN221670301U, a phase change energy storage heat sink. The heating device is fixedly installed on the inner bottom wall of the equipment box 100. This solution enables faster installation of the phase change heat sink, reduces labor intensity, and improves work efficiency.
[0022] The support plate 101 is fixedly connected to the equipment box 100 and located outside the equipment box 100. The insert plate 102 is slidably connected to the support plate 101 and located on the side of the support plate 101 away from the equipment box 100. The abutment plate 103 is fixedly connected to the insert plate 102 and located on the side of the insert plate 102 away from the support plate 101. The fixing block 104 is connected to the support plate 101 through the mounting component, and the mounting component drives the fixing block 104 to move. The fixing block 104 cooperates with the insert plate 102. The body 105 is fixedly connected to the abutment plate 103 and is located on the side of the abutment plate 103 away from the support plate 101, and abuts against the equipment box 100. The support plate 101 is bolted to the outside of the equipment box 100. The insert plate 102 is slidably mounted on the support plate 101, allowing the insert plate 102 to move up and down within the support plate 101. The abutment plate 103 is bolted to the insert plate 102. The insert plate 102 allows the abutment plate 103 to be mounted on the support plate 101. The fixing block 104 is mounted on the support plate 101 via the mounting member. The mounting member supports and drives the fixing block 104 to move, causing the fixing block 104 to engage with the insert plate 102. The insert plate 102 has a hole that mates with the fixing block 104, allowing the fixing block 104 to fix the insert plate 102 in place. This ensures that the abutment plate 103 is stably mounted on the support plate 101. The body 105 is then installed... The plate 102 is mounted on the abutment plate 103, which supports the body 105 and allows the body 105 to connect with the equipment box 100. This solves the problem of the body 105 directly dissipating heat into the outside air, resulting in significant heat loss and energy waste during the heat dissipation process of large equipment. By fixing the insert plate 102 with the fixing block 104, the phase change heat sink can be installed more quickly, reducing labor intensity and improving work efficiency.
[0023] Secondly, the groove 106 is disposed on the side of the support plate 101 near the support plate 101 and cooperates with the insert plate 102. The groove 106 is disposed above the support plate 101, and the size of the groove 106 is equal to that of the insert plate 102, so that the insert plate 102 can only move up and down after sliding into the support plate 101. The upper part of the groove 106 is arc-shaped, so that the insert plate 102 can be quickly inserted into the groove 106.
[0024] Meanwhile, the mounting shell 107 is fixedly connected to the support plate 101 and located on the side of the support plate 101 away from the insert plate 102, and is connected to the fixing block 104; the connecting rod 108 is fixedly connected to the mounting shell 107 and located on the side of the mounting shell 107 away from the support plate 101, and is connected to the fixing block 104; the driving element is mounted on the connecting rod 108, and the driving element drives the fixing block 104 to move; the mounting shell 107 is mounted on the side of the support plate 101 away from the equipment box 100 by bolts; the connecting rod 108 is a telescopic rod, one end of the connecting rod 108 is mounted in the mounting shell 107 by bolts, and the other end of the connecting rod 108 is connected to the fixing block 104 by bolts, so that the fixing block 104 can move in the mounting shell 107; the driving element is mounted on the connecting rod 108, and the driving element drives the fixing block 104 to move, thereby fixing the insert plate 102 in place.
[0025] Additionally, the spring 109 is sleeved on the outside of the connecting rod 108, with its two ends abutting against the mounting shell 107 and the fixing block 104, respectively. The driving block 110 is fixedly connected to the fixing block 104 and is located on the side of the fixing block 104 away from the support plate 101. The spring 109 is sleeved on the outside of the connecting rod 108, with its two ends abutting against the mounting shell 107 and the fixing block 104, respectively. The spring force of the spring 109 drives the fixing block 104 to move, thereby fixing the insert plate 102. The driving block 110 is fixedly mounted on the fixing block 104, and drives the fixing block 104 away from the insert plate 102, thereby facilitating the removal of the insert plate 102 and the removal of the body 105.
[0026] Finally, the support block 111 is fixedly connected to the equipment box 100 and located on the side of the equipment box 100 near the support plate 101, and is connected to the support plate 101; the reinforcing block 112 is fixedly connected to the abutment plate 103 and located on the side of the abutment plate 103 near the body 105, and is connected to the body 105. The support block 111 is installed on the equipment box 100 by bolts, and the other side of the support block 111 is connected to the support plate 101 by bolts. The support block 111 supports the support plate 101, making the support plate 101 more stably support the abutment plate 103. The reinforcing block 112 is connected to the abutment plate 103 by bolts, and the other side of the reinforcing block 112 is connected to the body 105 by bolts. The reinforcing block 112 improves the connection strength between the abutment plate 103 and the body 105.
[0027] Using a phase change energy storage radiator according to this embodiment, during installation, the insert plate 102 is inserted into the groove 106. At this time, the fixing block 104 is squeezed and moves backward, so that the insert plate 102 is fully inserted into the support plate 101. At this time, the abutment plate 103 abuts against the support plate 101, and the body 105 abuts against the equipment box 100. Then, the driving block 110 is driven by the spring 109 to move, so that the driving block 110 fixes the insert plate 102, thereby achieving quick installation. During disassembly, the fixing block 104 is moved by the driving block 110, so that the insert plate 102 can slide out of the support plate 101. This enables faster installation and disassembly of the phase change radiator, reduces labor intensity, and improves work efficiency.
[0028] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art will understand that all or part of the processes for implementing the above embodiments and equivalent variations made in accordance with the claims of this application are still within the scope of this application.
Claims
1. A phase change energy storage radiator, comprising an equipment housing, characterized in that, It also includes installation components; The mounting assembly includes a support plate, an insert plate, an abutment plate, a mounting component, a fixing block, and a body. The support plate is fixedly connected to the equipment box and located on the outside of the equipment box. The insert plate is slidably connected to the support plate and located on the side of the support plate away from the equipment box. The abutment plate is fixedly connected to the insert plate and located on the side of the insert plate away from the support plate. The fixing block is connected to the support plate through the mounting component, and the mounting component drives the fixing block to move. The fixing block cooperates with the insert plate. The body is fixedly connected to the abutment plate and located on the side of the abutment plate away from the support plate, and abuts against the equipment box.
2. The phase change energy storage radiator as described in claim 1, characterized in that, The support plate has a groove, which is located on the side of the support plate near the support plate and cooperates with the insert plate.
3. The phase change energy storage radiator as described in claim 1, characterized in that, The mounting component includes a mounting shell, a connecting rod, and a driving element. The mounting shell is fixedly connected to the support plate and is located on the side of the support plate away from the insert plate, and is connected to the fixing block. The connecting rod is fixedly connected to the mounting shell and is located on the side of the mounting shell away from the support plate, and is connected to the fixing block. The driving element is mounted on the connecting rod and drives the fixing block to move.
4. The phase change energy storage radiator as described in claim 3, characterized in that, The driving element includes a spring and a driving block. The spring is sleeved on the outside of the connecting rod, and the two ends of the spring abut against the mounting shell and the fixing block, respectively. The driving block is fixedly connected to the fixing block and is located on the side of the fixing block away from the support plate.
5. The phase change energy storage radiator as described in claim 1, characterized in that, The mounting assembly further includes a support block and a reinforcing block. The support block is fixedly connected to the equipment box and is located on the side of the equipment box near the support plate, and is connected to the support plate. The reinforcing block is fixedly connected to the abutment plate and is located on the side of the abutment plate near the body, and is connected to the body.