A boiler water treatment device protection shell
Patent Information
- Application Number
- CN202522321006.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-31
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-10-31
AI Technical Summary
[0005]为了减少锅炉加热的高温环境对锅炉用水处理装置造成影响的问题,本申请提供一种锅炉用水处理装置保护壳
1.固定保护壳为设备终端提供了安装空间,对设备终端提供了保护,盖板为设备终端与电磁发射模块连接的部分提供了保护,使得安装腔内形成密闭的空间,加强了固定保护壳对设备终端的保护效果,调节保护组件能够根据电磁发射模块的长度进行灵活调整,从而对电磁发射模块进行有效防护,减少外界环境对电磁发射模块的影响,支流阀和抽水机配合使用能够将进水管道中的水通过连接管道输送至散热腔内,散热腔内的水吸收设备终端产生的热量并通过连接管道和排水阀回流至进水管道内,从而实现对设备终端的降温,降低了高温环境对设备终端的影响,减少了设备终端因高温导致故障的概率,延长了锅炉用水处理装置的使用寿命。
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Figure CN224787400U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of boiler auxiliary equipment technology, and in particular to a protective shell for a boiler water treatment device. Background Technology
[0002] Industrial water used for boiler heating in factories is usually high in salinity and hardness. Long-term use of untreated industrial water can cause serious scaling and corrosion inside the boiler, reducing its heating efficiency. Therefore, workers install water treatment devices in the boiler's inlet pipe to purify the boiler water and improve its quality.
[0003] A related boiler water treatment device includes an equipment terminal and an electromagnetic emission module. The electromagnetic emission module is arranged around the boiler inlet pipe. The equipment terminal is electrically connected to the electromagnetic emission module. The operator controls the electromagnetic emission module through the equipment terminal to emit high-frequency alternating electromagnetic pulse waves, which act on calcium and magnesium ions in the water, thereby improving the water quality of the boiler water.
[0004] However, existing boiler water treatment devices are affected by the high-temperature environment of boiler heating during use, and the heat at the equipment terminals causes frequent malfunctions, resulting in low working efficiency of the boiler water treatment devices. Utility Model Content
[0005] In order to reduce the impact of the high-temperature environment of boiler heating on boiler water treatment devices, this application provides a protective shell for boiler water treatment devices.
[0006] This application provides a protective shell for a boiler water treatment device, which adopts the following technical solution: A protective shell for a boiler water treatment device, comprising: A fixed protective shell is installed on the boiler's water inlet pipe. The fixed protective shell has an installation cavity and a heat dissipation cavity inside, which is located outside the installation cavity. The fixed protective shell provides protection for the equipment terminal of the boiler water treatment device. The cover plate is fixedly installed at the opening end of the fixed protective shell. The cover plate is provided with an installation groove. The electromagnetic emission module of the boiler water treatment device passes through the installation groove and is wrapped around the water inlet pipe. The adjustment and protection component is fixedly installed on the electromagnetic emission module and provides protection for the electromagnetic emission module. A branch valve is fixedly installed on the periphery of the inlet pipe. A water pump is installed on the branch valve, and the output end of the water pump is connected to the heat dissipation chamber through a connecting pipe. The drain valve is fixedly installed on the periphery of the water inlet pipe and is connected to the heat dissipation cavity through a connecting pipe.
[0007] By adopting the above technical solution, the fixed protective shell provides installation space for the equipment terminal and protects the equipment terminal. The cover plate protects the part connecting the equipment terminal and the electromagnetic emission module, forming a sealed space in the installation cavity, which enhances the protective effect of the fixed protective shell on the equipment terminal. The adjustable protection components can be flexibly adjusted according to the length of the electromagnetic emission module, thereby effectively protecting the electromagnetic emission module and reducing the impact of the external environment on the electromagnetic emission module. The branch valve and the water pump work together to transport water in the inlet pipe to the heat dissipation cavity through the connecting pipe. The water in the heat dissipation cavity absorbs the heat generated by the equipment terminal and flows back to the inlet pipe through the connecting pipe and the drain valve, thereby cooling the equipment terminal, reducing the impact of high temperature environment on the equipment terminal, reducing the probability of equipment terminal failure due to high temperature, and extending the service life of the boiler water treatment device.
[0008] Optionally, the adjustment protection components include: The snap-fit protective shell has snap-fit blocks that are embedded in the gaps of the electromagnetic emission module. The snap-fit protective shell is fixedly connected to the electromagnetic emission module through the snap-fit blocks. Multiple sets of snap-fit protective shells and electromagnetic emission modules are provided corresponding to each other. The node protective shell has two ends that are fixedly connected to two sets of snap-fit protective shells.
[0009] By adopting the above technical solution, the snap-fit protective shell is embedded in the gap of the electromagnetic emission module through snap-fit blocks. Multiple sets of snap-fit protective shells are fixedly connected to multiple sets of electromagnetic emission modules, which allows the snap-fit protective shell to be flexibly adjusted and provide protection for electromagnetic emission modules of different lengths. The setting of the node protective shell can protect the gap between the multiple sets of snap-fit protective shells, so that the multiple sets of snap-fit protective shells are connected as a whole, improving the installation stability of the snap-fit protective shell. The snap-fit protective shell and the node protective shell are used together and can be flexibly adjusted according to the length of the electromagnetic emission module, thereby realizing the protection of multiple sets of electromagnetic emission modules.
[0010] Optionally, the protective shell is provided with a fixing hole, and a metal cable tie is inserted into the fixing hole. The metal cable tie is wrapped around the water inlet pipe, and the metal cable tie fixes the protective shell to the water inlet pipe.
[0011] By adopting the above technical solution, metal cable ties can be used to fix the protective shell on water inlet pipes of different diameters, so that the protective shell can be adapted to pipe systems of different specifications, thereby improving the applicability and installation stability of the boiler water treatment device.
[0012] Optionally, a friction pad is provided on the side of the fixed protective shell near the water inlet pipe.
[0013] By adopting the above technical solution, the friction pad can improve the friction between the fixed protective shell and the water inlet pipe. At the same time, the friction pad can produce a certain deformation when squeezed by the metal cable tie, thereby improving the fit between the friction pad and the water inlet pipe and enhancing the connection stability between the fixed protective shell and the water inlet pipe.
[0014] Optionally, a heat-conducting plate is provided on the inner wall of the mounting cavity near the heat dissipation cavity.
[0015] By adopting the above technical solution, the heat-conducting plate can accelerate the transfer of heat from the mounting cavity to the heat dissipation cavity, improve the heat dissipation efficiency of the equipment terminal in the mounting cavity, and reduce the impact of the high-temperature working environment on the equipment terminal.
[0016] Optionally, a heat-conducting plate is provided on the side of the heat-conducting plate near the heat dissipation cavity, and multiple sets of heat-conducting plates are arranged at intervals along the length of the heat-conducting plate.
[0017] By adopting the above technical solution, the arrangement of multiple sets of heat-conducting plates can increase the contact area between the heat-conducting plate and the water in the heat dissipation cavity, thereby improving the heat dissipation efficiency of the heat-conducting plate for the terminal of the equipment installed in the cavity.
[0018] Optionally, the node protective shell can be made of flexible silicone.
[0019] By adopting the above technical solution, the flexible silicone allows the node protective shell to be flexibly adjusted according to the angle between the two sets of snap-fit protective shells. At the same time, the flexible silicone has good heat resistance and can adapt to the working requirements of high temperature environment.
[0020] Optionally, the snap-fit block can be made of rubber.
[0021] By adopting the above technical solution, using rubber as the snap-fit block can improve the fit and friction between the snap-fit protective shell and the electromagnetic emission module, thereby improving the installation stability of the snap-fit protective shell fixedly installed on the electromagnetic emission module.
[0022] In summary, the present invention provides a protective shell for a boiler water treatment device, which has at least one of the following beneficial technical effects: 1. The fixed protective shell provides installation space for the equipment terminal and protects it. The cover plate protects the connection between the equipment terminal and the electromagnetic emission module, creating a sealed space within the installation cavity. This enhances the protective effect of the fixed protective shell on the equipment terminal. The adjustable protection components can be flexibly adjusted according to the length of the electromagnetic emission module, effectively protecting it and reducing the impact of the external environment. The branch valve and water pump work together to transport water from the inlet pipe to the heat dissipation chamber through the connecting pipe. The water in the heat dissipation chamber absorbs the heat generated by the equipment terminal and flows back to the inlet pipe through the connecting pipe and drain valve, thereby cooling the equipment terminal, reducing the impact of high-temperature environments on the equipment terminal, decreasing the probability of equipment terminal failure due to high temperatures, and extending the service life of the boiler water treatment device.
[0023] 2. The arrangement of multiple sets of heat-conducting plates can increase the contact area between the heat-conducting plate and the water in the heat dissipation cavity, thereby improving the heat dissipation efficiency of the heat-conducting plate for the equipment terminals in the installation cavity. Attached Figure Description
[0024] Figure 1 A schematic diagram of the structure of a protective shell for a boiler water treatment device provided in an embodiment of this utility model; Figure 2 A schematic diagram of a fixed protective shell structure in a boiler water treatment device according to an embodiment of this utility model; Figure 3 This is a schematic diagram of the adjustment and protection component structure in the protective shell of a boiler water treatment device provided in an embodiment of the present utility model.
[0025] Explanation of the markings in the image: 11. Fixed protective shell; 12. Cover plate; 13. Branch valve; 14. Drain valve; 15. Equipment terminal; 16. Electromagnetic emission module; 17. Water inlet pipe; 18. Heat-conducting plate; 19. Heat-conducting sheet; 20. Friction pad; 21. Metal cable tie; 22. Clip block; 23. Water pump; 24. Connecting pipe; 25. Mounting cavity; 26. Heat dissipation cavity; 27. Fixing hole; 28. Mounting groove; 3. Adjustable protection components; 31. Snap-fit protective shell; 32. Node protective shell. Detailed Implementation
[0026] The following is in conjunction with the appendix Figure 1-3 This application will be described in further detail.
[0027] Combination Figure 1 , Figure 2 and Figure 3This application discloses a protective shell for a boiler water treatment device, comprising: a fixed protective shell 11, a cover plate 12, an adjusting and protective assembly 3, a branch valve 13, and a drain valve 14. The fixed protective shell 11 is disposed on the boiler's inlet pipe 17, and has an installation cavity 25 and a heat dissipation cavity 26 disposed inside the fixed protective shell 11, with the heat dissipation cavity 26 located outside the installation cavity 25. The fixed protective shell 11 provides protection for the equipment terminal 15 of the boiler water treatment device. The cover plate 12 is fixedly disposed at the open end of the fixed protective shell 11, and has a [missing information - likely related to a specific feature or design]. The electromagnetic emission module 16 of the boiler water treatment device passes through the mounting slot 28 and is wound around the inlet pipe 17. The adjustment and protection component 3 is fixedly installed on the electromagnetic emission module 16 and provides protection for the electromagnetic emission module 16. The branch valve 13 is fixedly installed on the periphery of the inlet pipe 17. A water pump 23 is installed on the branch valve 13. The output end of the water pump 23 is connected to the heat dissipation cavity 26 through the connecting pipe 24. The drain valve 14 is fixedly installed on the periphery of the inlet pipe 17 and is connected to the heat dissipation cavity 26 through the connecting pipe 24.
[0028] In this embodiment, the fixed protective shell 11 is rectangular, the mounting cavity 25 is convex, the equipment terminal 15 of the boiler water treatment device is located inside the mounting cavity 25, and the heat dissipation cavity 26 is inverted U-shaped. The mounting cavity 25 is located at the center of the fixed protective shell 11, and the heat dissipation cavity 26 is located outside the mounting cavity 25, with the opening of the heat dissipation cavity 26 facing the water inlet pipe 17. The fixed protective shell 11 is provided with a fixing hole 27, which is rectangular. A metal cable tie 21 passes through the fixing hole 27 and is wrapped around the water inlet pipe 17. 21. The fixed protective shell 11 is fixedly installed on the water inlet pipe 17. The binding principle of the metal cable tie 21 is existing technology in this field, so the binding principle of the metal cable tie 21 is not specifically limited in this embodiment. A friction pad 20 is provided on the side of the fixed protective shell 11 near the water inlet pipe 17. The friction pad 20 is a flexible and wear-resistant material, and is not specifically limited in this embodiment. The friction pad 20 can increase the friction between the fixed protective shell 11 and the water inlet pipe 17. When the metal cable tie 21 binds and fixes the fixed protective shell 11, the friction pad 20 is subjected to the pressure of the fixed protective shell 11 and expels friction. The deformation increases the contact area between the friction pad 20 and the water inlet pipe 17, thereby enhancing the stability of the connection between the fixed protective shell 11 and the water inlet pipe 17. One end of the cover plate 12 is fixedly connected to the fixed protective shell 11 by bolts, and the other end of the cover plate 12 is sleeved on the equipment terminal 15. Mounting grooves 28 are respectively provided on both sides of the cover plate 12 in the width direction. The mounting grooves 28 are cuboid in shape. The electromagnetic emission module 16 of the boiler water treatment device passes through the mounting groove 28 and wraps around the outer periphery of the water inlet pipe 17. Multiple sets of electromagnetic emission modules 16 are connected end to end. The adjustment protection component 3 is connected by a clip. The connection is fixed on the side of the electromagnetic emission module 16 away from the water inlet pipe 17, thus protecting the electromagnetic emission module 16. When the pump 23 is started, it will drive the water in the water inlet pipe 17 to enter the heat dissipation chamber 26 through the branch valve 13 and the connecting pipe 24. When the water flows in the heat dissipation chamber 26, it exchanges heat with the equipment terminal 15, realizing effective heat dissipation of the equipment terminal 15. After absorbing heat, the water flows back to the water inlet pipe 17 through the drain valve 14. The drain valve 14 is located downstream of the branch valve 13, which reduces the probability of the water that has absorbed too much heat returning to the heat dissipation chamber 26.A heat-conducting plate 18 is disposed on the inner wall of the mounting cavity 25 near the heat dissipation cavity 26. The heat-conducting plate 18 is rectangular and has three sets arranged along the contact surface between the mounting cavity 25 and the heat dissipation cavity 26. A heat-conducting sheet 19 is disposed on the side of the heat-conducting plate 18 near the heat dissipation cavity 26. The heat-conducting sheet 19 is rectangular and has multiple sets arranged at intervals along the length of the heat-conducting plate 18. The materials of the heat-conducting plate 18 and the heat-conducting sheet 19 can be copper or aluminum. In this embodiment, the materials of the heat-conducting plate 18 and the heat-conducting sheet 19 are not specifically limited. Plate 18 can improve the heat transfer efficiency between mounting cavity 25 and heat dissipation cavity 26, and heat-conducting plate 19 can increase the contact area between heat-conducting plate 18 and water in heat dissipation cavity 26, thereby accelerating the transfer of heat from mounting cavity 25 to water in heat dissipation cavity 26 through heat-conducting plate 18, improving the heat dissipation efficiency of boiler water treatment device, reducing the impact of ambient heat and heat generated by equipment terminal 15 during operation on equipment terminal 15, reducing the probability of equipment terminal 15 malfunctioning due to high temperature, and enabling equipment terminal 15 to operate stably for a long time.
[0029] In practical use, the operator places the equipment terminal 15 into the installation cavity 25 and fixes the cover plate 12 to the fixed protective shell 11 with bolts. The operator then fixes the fixed protective shell 11 to the outer wall of the water inlet pipe 17 with metal cable ties 21. The operator opens the branch valve 13 and the water pump 23. The water pump 23 draws the water in the water inlet pipe 17 into the heat dissipation cavity 26 through the connecting pipe 24. When the water flows in the heat dissipation cavity 26, it comes into full contact with the heat-conducting plate 18 and the heat-conducting sheet 19, thereby absorbing the heat from the environment and the heat generated by the operation of the equipment terminal 15. After absorbing the heat, the water flows to the other end of the heat dissipation cavity 26. The operator then opens the drain valve 14, allowing the water that has absorbed the heat to flow back into the water inlet pipe 17 through the connecting pipe 24.
[0030] Combination Figure 1 and Figure 3 In one specific embodiment, the adjustment protection component 3 includes: a snap-fit protection shell 31 and a node protection shell 32; the snap-fit protection shell 31 is provided with a snap-fit block 22, the snap-fit block 22 is embedded in the gap of the electromagnetic emission module 16, the snap-fit protection shell 31 is fixedly connected to the electromagnetic emission module 16 through the snap-fit block 22, and multiple sets of snap-fit protection shells 31 and electromagnetic emission modules 16 are provided correspondingly, and the two ends of the node protection shell 32 are fixedly connected to two sets of snap-fit protection shells 31 respectively.
[0031] In this embodiment, the snap-fit protective shell 31 is inverted U-shaped, and its width is the same as that of the electromagnetic emission module 16. A snap-fit block 22 is provided at the open end of the snap-fit protective shell 31. The snap-fit block 22 is cuboid in shape, with one side of its length parallel to one side of the snap-fit protective shell 31. The width of the snap-fit block 22 is the same as the gap in the middle of the electromagnetic emission module 16. The snap-fit block 22 is made of rubber, giving it good friction. The snap-fit block 22 can be embedded into the gap in the middle of the electromagnetic emission module 16 and fits tightly against it, thereby achieving the connection between the snap-fit protective shell 31 and the electromagnetic emission module 16. Multiple sets of snap-fit protective shells 31 and electromagnetic emission modules 16 are correspondingly provided. Two sets of snap-fit protective shells 31 are fixedly connected by node protective shells 32. The node protective shells 32 and snap-fit protective shells 31 can be riveted or integrally formed. This application embodiment does not make specific limitations. The node protective shells 32 are made of flexible silicone, which gives them good deformation ability. The node protective shells 32 can protect the gaps between multiple sets of snap-fit protective shells 31, so that multiple sets of snap-fit protective shells 31 can be connected into a whole, which improves the installation stability of the snap-fit protective shells 31. Because the electromagnetic emission module 16 can be flexibly adjusted in length according to the diameter of the water inlet pipe 17, the snap-fit protective shells 31 and node protective shells 32 can be flexibly adjusted according to the length of the electromagnetic emission module 16, which improves the applicability of the snap-fit protective shells 31 and node protective shells 32.
[0032] In practical use, the staff will connect the corresponding number of snap-fit protective shells 31 and node protective shells 32 in advance according to the number of electromagnetic emission modules 16. The staff will align the snap-fit block 22 with the gap of the electromagnetic emission module 16 and apply pressure to the snap-fit protective shell 31. The snap-fit block 22 will be embedded into the gap of the electromagnetic emission module 16 under pressure, so that the snap-fit protective shell 31 and node protective shell 32 are fixedly set on the side of the electromagnetic emission module 16 away from the water inlet pipe 17, and provide protection for the electromagnetic emission module 16.
[0033] The implementation principle of this application is as follows: The operator places the equipment terminal 15 into the installation cavity 25 and fixes the cover plate 12 to the fixed protective shell 11 with bolts. The operator then fixes the fixed protective shell 11 to the outer wall of the water inlet pipe 17 using metal cable ties 21. The operator selects a snap-fit protective shell 31 and a node protective shell 32 of corresponding length according to the length of the electromagnetic emission module 16. The operator aligns the snap-fit protective shell 31 with the electromagnetic emission module 16 and applies pressure to the snap-fit protective shell 31, causing the snap-fit block 22 to embed into the gap of the electromagnetic emission module 16, thereby securing the module. The protective shell 31 and the node protective shell 32 are fixedly connected to the electromagnetic emission module 16. The operator opens the branch valve 13 and the water pump 23. The water pump 23 draws the water in the inlet pipe 17 into the heat dissipation chamber 26 through the connecting pipe 24. When the water flows in the heat dissipation chamber 26, it makes full contact with the heat conduction plate 18 and the heat conduction sheet 19 and absorbs the heat from the environment and the heat generated by the operation of the equipment terminal 15. After absorbing the heat, the water flows to the other end of the heat dissipation chamber 26. The operator opens the drain valve 14 so that the water that has absorbed the heat flows back to the inlet pipe 17 through the connecting pipe 24.
[0034] This specific embodiment is merely an explanation of this application and is not intended to limit it. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but such modifications are protected by patent law as long as they fall within the scope of the claims of this application.
Claims
1. A protective shell for a boiler water treatment device, characterized in that, include: A fixed protective shell (11) is installed on the water inlet pipe (17) of the boiler. An installation cavity (25) is provided inside the fixed protective shell (11). A heat dissipation cavity (26) is provided inside the fixed protective shell (11). The heat dissipation cavity (26) is located outside the installation cavity (25). The fixed protective shell (11) provides protection for the equipment terminal (15) of the water treatment device. Cover plate (12), the cover plate (12) is fixedly installed at the opening end of the fixed protective shell (11), and the cover plate (12) is provided with an installation groove (28). The electromagnetic emission module (16) of the boiler water treatment device passes through the installation groove (28) and is wound around the water inlet pipe (17). Adjustment protection component (3), the adjustment protection component (3) is fixedly installed on the electromagnetic emission module (16), the adjustment protection component (3) provides protection for the electromagnetic emission module (16); A branch valve (13) is fixedly installed on the periphery of the water inlet pipe (17). A water pump (23) is installed on the branch valve (13). The output end of the water pump (23) is connected to the heat dissipation cavity (26) through a connecting pipe (24). Drain valve (14) is fixedly installed on the periphery of the water inlet pipe (17) and is connected to the heat dissipation cavity (26) through the connecting pipe (24).
2. The protective shell for a boiler water treatment device according to claim 1, characterized in that: The regulating protection component (3) includes: A snap-fit protective shell (31) is provided with a snap-fit block (22). The snap-fit block (22) is embedded in the gap of the electromagnetic emission module (16). The snap-fit protective shell (31) is fixedly connected to the electromagnetic emission module (16) through the snap-fit block (22). The snap-fit protective shell (31) and the electromagnetic emission module (16) are provided with multiple sets of corresponding snap-fit protective shells (31) and electromagnetic emission modules (16). The node protective shell (32) is fixedly connected at both ends to the two sets of snap-fit protective shells (31).
3. The protective shell for a boiler water treatment device according to claim 1, characterized in that: The fixed protective shell (11) is provided with a fixing hole (27), and a metal cable tie (21) is inserted into the fixing hole (27). The metal cable tie (21) is wrapped around the water inlet pipe (17) and the metal cable tie (21) fixes the fixed protective shell (11) to the water inlet pipe (17).
4. The protective shell of a boiler water treatment device according to claim 1, characterized in that: The fixed protective shell (11) is provided with a friction pad (20) on the side near the water inlet pipe (17).
5. The protective shell for a boiler water treatment device according to claim 1, characterized in that: A heat-conducting plate (18) is provided on the inner wall of the mounting cavity (25) near the heat dissipation cavity (26).
6. The protective shell of a boiler water treatment device according to claim 5, characterized in that: A heat-conducting plate (19) is provided on the side of the heat-dissipating cavity (26) of the heat-conducting plate (18), and multiple sets of the heat-conducting plate (19) are arranged at intervals along the length direction of the heat-conducting plate (18).
7. The protective shell for a boiler water treatment device according to claim 2, characterized in that: The node protective shell (32) is made of flexible silicone.
8. The protective shell of a boiler water treatment device according to claim 2, characterized in that: The snap-fit block (22) is made of rubber.