Integrated heat exchange equipment
By setting up partition assembly and independent installation space in the housing of the energy supply device, the independence between the hydraulic module and the heating module is improved, the problem of low disassembly and assembly efficiency is solved, and more efficient disassembly and assembly and maintenance is achieved.
Patent Information
- Application Number
- CN202421944885.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-12
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2034-08-12
AI Technical Summary
In the existing energy supply devices, the independence between the hydraulic module and the heating module is low, resulting in low disassembly and assembly efficiency.
An integrated heat exchange device is designed to form an independent installation space by setting a partition assembly in the housing, and the first functional module is placed in the installation space, and the second functional module is placed outside the installation space, so that the partition assembly is used to improve the independence between modules.
It improves the independence between modules, reduces mutual influence, simplifies the disassembly and assembly process, and improves the disassembly and assembly efficiency and maintenance convenience.
Smart Images

Figure CN222978675U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of energy supply, and particularly relates to an integrated heat exchange device. Background Art
[0002] In the existing energy supply device, a heat exchange unit can be used to exchange heat of an input fluid to generate a high-temperature or low-temperature fluid and supply it outward. The shell of the energy supply device includes a hydraulic module and a heating module with a heat exchange unit. The hydraulic module and the heating module are respectively arranged on opposite sides of the upper part of the shell. A receiving space is formed in the lower part of the shell and is located below the heating module and the hydraulic module. A large number of fitting units used in cooperation with the hydraulic module and / or the heating module are installed in the receiving space. The fitting units can be, for example, a fluid driving device, a control valve on a pipeline, a measuring unit for detecting the fluid in a flow channel, etc. Since the hydraulic module and the heating module need to be connected by means of the fitting units, the independence between the hydraulic module and the heating module is relatively low. When disassembling or assembling the hydraulic module or the heating module, all the fitting units between the hydraulic module and the heating module need to be disassembled, which increases the disassembly and assembly steps and reduces the disassembly and assembly efficiency. Therefore, how to improve the independence between modules to improve the disassembly and assembly efficiency has become an urgent technical problem to be solved at present. Summary of the Utility Model
[0003] In order to overcome the above defects of the prior art, the technical problem to be solved by the embodiments of the present utility model is to provide an integrated heat exchange device for improving the independence between modules to improve the disassembly and assembly efficiency.
[0004] The above object of the present utility model can be achieved by the following technical solutions. The present utility model provides an integrated heat exchange device, including:
[0005] A shell;
[0006] A partition assembly detachably arranged in the shell and enclosing at least one relatively independent installation space with the shell;
[0007] A first functional module and a second functional module arranged in the shell, the first functional module is arranged in the installation space and connected to the partition assembly, and the first functional module can be removed from the shell together with the partition assembly.
[0008] In a preferred embodiment of the present utility model, the partition assembly includes side plates and a bottom plate connected to the side plates. The side plates, the bottom plate and at least part of the inner wall of the shell enclose an installation space, and the first functional module is arranged in the installation space and installed on the side plates and / or the bottom plate.
[0009] In a preferred embodiment of the present utility model, the side plates are vertically arranged inside the housing, the bottom plate is horizontally arranged inside the housing, and the first functional module and the second functional module are oppositely arranged on both sides of the side plates.
[0010] In a preferred embodiment of the present utility model, the housing includes a back plate and a front cover plate arranged oppositely, a left side plate and a right side plate, and a top plate and a bottom plate. The back plate, the left side plate, the right side plate, the top plate and the bottom plate enclose to form a housing main body. The front cover plate is detachably connected to the housing main body, and the partition assembly is detachably connected to the back plate.
[0011] In a preferred embodiment of the present utility model, the plate surface of the side plates is parallel to the left side plate and the right side plate, and the plate surface of the bottom plate is parallel to the top plate and the bottom plate.
[0012] In a preferred embodiment of the present utility model, the integrated heat exchange device includes at least one fastener, and the partition assembly is detachably connected to the back plate through the fastener.
[0013] In a preferred embodiment of the present utility model, when the fastener is in a state of connecting the partition assembly and the back plate, it is perpendicular to the back plate.
[0014] In a preferred embodiment of the present utility model, the side plates and the bottom plate are perpendicular to the back plate, and the fastener connects the side plates and the back plate.
[0015] In a preferred embodiment of the present utility model, the integrated heat exchange device further includes a control module arranged inside the housing. The control module is placed outside the installation space. The control module has a first connection circuit, and the first functional module has a second connection circuit. The first connection circuit and the second connection circuit are electrically connected to form a communication circuit. At least one through hole for the communication circuit to pass through is provided on the partition assembly.
[0016] In a preferred embodiment of the present utility model, the first functional module includes a combustion device and a first heat exchanger. The combustion device is used to supply heat to the first heat exchanger;
[0017] The integrated heat exchange device further includes a water inlet pipeline for conveying water into the first heat exchanger, a water outlet pipeline for outputting water from the first heat exchanger, and a first gas transmission component for supplying gas to the combustion device;
[0018] The water outlet of the water inlet pipeline is connected to the inlet of the first heat exchanger, and the water inlet of the water inlet pipeline extends out of the partition assembly and is located outside the installation space and inside the housing;
[0019] The water inlet of the water outlet pipe is connected to the outlet of the first heat exchanger, and the water outlet of the water outlet pipe extends out of the partition assembly and is located outside the installation space and inside the housing.
[0020] The air inlet of the first air delivery component extends out of the partition assembly and is located outside the installation space and inside the housing.
[0021] In a preferred embodiment of the present invention, the integrated heat exchange device further includes a second air delivery component. The air outlet of the second air delivery component is connected to the air inlet of the first air delivery component, and the air inlet of the second air delivery component extends out of the housing.
[0022] In a preferred embodiment of the present invention, the housing includes a top plate and a bottom plate arranged opposite to each other, and the partition assembly includes a bottom plate arranged opposite to the bottom plate. The water inlet of the water inlet pipe, the water outlet of the water outlet pipe, and the air inlet of the first air delivery component are all located between the bottom plate and the bottom plate.
[0023] In a preferred embodiment of the present invention, the water inlet of the water inlet pipe, the water outlet of the water outlet pipe, and the air inlet of the first air delivery component all face the bottom plate.
[0024] In a preferred embodiment of the present invention, the integrated heat exchange device further includes a first pipeline and a second pipeline arranged outside the installation space. The first pipeline is connected to the water inlet of the water inlet pipe and is used to input water into the water inlet pipe. The second pipeline is connected to the water outlet of the water outlet pipe. The first pipeline and the second pipeline are both arranged outside the installation space and at least partially arranged inside the housing.
[0025] In a preferred embodiment of the present invention, the second functional module includes a second heat exchanger located outside the installation space and inside the housing. The second heat exchanger includes a first flow channel and a second flow channel that are isolated from each other. The heat exchange medium flowing through the first flow channel and the heat exchange medium flowing through the second flow channel can perform heat exchange. The first flow channel is used to connect to an external heat source; the inlet of the first pipeline can communicate with the second flow channel, or both the inlet of the first pipeline and the outlet of the second pipeline can communicate with the second flow channel.
[0026] In a preferred embodiment of the present invention, the housing includes a left side plate and a right side plate arranged opposite to each other, and the partition assembly includes a side plate arranged opposite to the left side plate and the right side plate. The second heat exchanger is arranged between the plane where the side plate is located and one of the left side plate or the right side plate.
[0027] In a preferred embodiment of the present utility model, the integrated heat exchange device further includes a water circuit module. The water circuit module includes a third heat exchanger located outside the installation space and inside the housing. The third heat exchanger has a third flow channel and a fourth flow channel that are isolated from each other. The water flowing through the third flow channel and the water flowing through the fourth flow channel can perform heat exchange. The fourth flow channel is used for circulating domestic water. The inlet of the third flow channel can be communicated with the outlet of the second pipeline, and the outlet of the third flow channel can be communicated with the inlet of the first pipeline.
[0028] In a preferred embodiment of the present utility model, the housing includes a top plate and a bottom plate arranged opposite to each other. The partition assembly includes a bottom plate arranged opposite to the bottom plate. The third heat exchanger is arranged between the plane where the bottom plate is located and the bottom plate.
[0029] In a preferred embodiment of the present utility model, the housing includes a top plate, and a smoke outlet is arranged on the top plate. The first functional module further includes a fan, and the outlet of the fan is detachably inserted into the smoke outlet.
[0030] In a preferred embodiment of the present utility model, the housing includes a back plate and a front cover plate arranged opposite to the back plate. The combustion device includes a plurality of burner ports, and the plurality of burner ports are arranged in a row from the back plate to the front cover plate.
[0031] In a preferred embodiment of the present utility model, the housing includes a back plate and a front cover plate arranged opposite to the back plate. The first heat exchanger includes a plurality of fins and heat exchange tubes passing through the plurality of fins. The plurality of fins are arranged in a row from the back plate to the front cover plate, and the heat exchange tubes communicate the water inlet pipeline and the water outlet pipeline.
[0032] The technical solution of the present utility model has the following remarkable beneficial effects:
[0033] When the integrated heat exchange device of the present utility model is in use, the partition assembly is arranged inside the housing, and the partition assembly can enclose at least one relatively independent installation space with the housing. By arranging the first functional module inside the installation space and the second functional module outside the installation space, the partition assembly can play an isolation role, improving the independence between the first functional module and the second functional module, thereby reducing the mutual influence between the first functional module and the second functional module.
[0034] Moreover, by detachably arranging the partition assembly and the housing and connecting the first functional module to the partition assembly, the first functional module can be installed in or removed from the housing together with the partition assembly, improving the convenience and efficiency of disassembly and assembly of the first functional module, thereby improving the subsequent maintenance convenience and contributing to the modular design within the housing of the integrated heat exchange device. Description of the Drawings
[0035] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the drawings required for the description of the embodiments will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0036] The drawings described herein are for illustrative purposes only and are not intended to limit the scope of the disclosure of the present invention in any way. Additionally, the shapes and proportional dimensions of the components in the drawings are only schematic and are used to assist in understanding the present invention, rather than specifically defining the shapes and proportional dimensions of the components of the present invention. Those skilled in the art can, under the teaching of the present invention, select various possible shapes and proportional dimensions according to specific circumstances to implement the present invention.
[0037] Figure 1 It is a front view structural schematic diagram of an embodiment of the integrated heat exchange device of the present invention;
[0038] Figure 2 It is an internal structural schematic diagram of an embodiment of the integrated heat exchange device of the present invention;
[0039] Figure 3 It is a three-dimensional structural schematic diagram of an embodiment of the first functional module of the present invention;
[0040] Figure 4 It is a structural schematic diagram of the first functional module of the present invention in a loading and unloading state;
[0041] Figure 5 It is a three-dimensional structural schematic diagram of an embodiment of the integrated heat exchange device of the present invention;
[0042] Figure 6 It is a side view structural schematic diagram of an embodiment of the partition assembly of the present invention;
[0043] Figure 7 It is a front view structural schematic diagram of an embodiment of the side plate of the present invention;
[0044] Figure 8Schematic three-dimensional structure diagram of an embodiment of the partition assembly described in the present utility model;
[0045] Figure 9 System diagram of an embodiment of the integrated heat exchange device described in the present utility model.
[0046] Reference numerals of the above drawings:
[0047] 100, housing; 110, back plate; 120, front cover plate; 130, left side plate; 140, right side plate; 150, top plate; 151, smoke outlet; 160, bottom plate; 170, second gas transmission component; 171, gas inlet of the second gas transmission component; 180, first pipeline; 181, inlet of the first pipeline; 190, second pipeline; 191, outlet of the second pipeline;
[0048] 200, partition assembly; 210, side plate; 220, bottom plate; 230, through hole;
[0049] 300, first functional module; 310, combustion device; 311, burner; 320, first heat exchanger; 321, fin; 322, heat exchange tube; 330, water inlet pipeline; 331, water inlet of the water inlet pipeline; 340, water outlet pipeline; 341, water outlet of the water outlet pipeline; 350, first gas transmission component; 351, gas inlet of the first gas transmission component; 360, fan; 361, outlet of the fan;
[0050] 400, second functional module; 410, second heat exchanger; 420, first flow channel; 421, inlet of the first flow channel; 422, outlet of the first flow channel; 430, second flow channel; 431, inlet of the second flow channel; 432, outlet of the second flow channel;
[0051] 500, water circuit module; 510, third heat exchanger; 511, third flow channel; 512, fourth flow channel;
[0052] 600, control module;
[0053] 700, fastener. Detailed implementation manners
[0054] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0055] Please refer to Figures 1 to 9As shown in the figure, in an embodiment of the present utility model, an integrated heat exchange device is provided. The integrated heat exchange device includes a housing 100, a partition assembly 200, and a first functional module 300 and a second functional module 400 disposed in the housing 100. The partition assembly 200 is detachably disposed in the housing 100 and encloses at least one relatively independent installation space with the housing 100. The first functional module 300 is disposed in the installation space and connected to the partition assembly 200, and the first functional module 300 can be removed from the housing 100 together with the partition assembly 200.
[0056] Overall, when the integrated heat exchange device is in use, the partition assembly 200 is disposed in the housing 100, so that the partition assembly 200 can enclose at least one relatively independent installation space with the housing 100. By disposing the first functional module 300 in the installation space and the second functional module 400 outside the installation space, the partition assembly 200 can play an isolation role, improving the independence between the first functional module 300 and the second functional module 400, and thus reducing the mutual influence between the first functional module 300 and the second functional module 400.
[0057] Moreover, by making the partition assembly 200 be detachably disposed with the housing 100 and connecting the first functional module 300 to the partition assembly 200, the first functional module 300 can be installed in or removed from the housing 100 together with the partition assembly 200, improving the convenience and efficiency of disassembling and assembling the first functional module 300, and further improving the subsequent maintenance convenience, and contributing to the realization of modular design within the housing 100 of the integrated heat exchange device.
[0058] In an embodiment of the present utility model, as Figure 2 、 Figure 3 and Figure 4 shown in the embodiment, the partition assembly 200 includes side plates 210 and a bottom plate 220 connected to the side plates 210. The side plates 210, the bottom plate 220 and at least part of the inner wall of the housing 100 enclose an installation space, and the first functional module 300 is disposed in the installation space and installed on the side plates 210 and / or the bottom plate 220.
[0059] In a feasible embodiment, as Figure 6 、 Figure 7 and Figure 8 shown in the embodiment, the lower end of the side plate 210 is connected to one end of the bottom plate 220, and both ends of the partition assembly 200 are abutted against or close to the inner wall of the housing 100, so that the partition assembly 200 can separate an installation space in the inner cavity of the housing 100.
[0060] Among them, the installation space is generally located in the upper middle part of the housing 100, so that a certain accommodation space can be reserved in the lower part of the housing 100 to install other functional modules.
[0061] Moreover, by arranging the first functional module 300 in the installation space and installing it on the side plate 210 and / or the bottom plate 220, the side plate 210 and / or the bottom plate 220 can support the first functional module 300, improving the installation stability of the first functional module 300.
[0062] Preferably, as shown in the embodiments of Figure 3 and Figure 4 , the first functional module 300 is installed on the side plate 210. By connecting the first functional module 300 to the side plate 210, the side plate 210 can support the first functional module 300, preventing the first functional module 300 from directly pressing down on the bottom plate 220 and deforming the bottom plate 220, thereby improving the structural stability between the first functional module 300 and the partition assembly 200.
[0063] In other feasible embodiments, the side plate 210 and the bottom plate 220 can be integrally arranged, which helps to improve the structural strength between the side plate 210 and the bottom plate 220 and is beneficial to better support the first functional module 300.
[0064] Of course, the designers can adjust the specific shapes and structures of the side plate 210 and the bottom plate 220 according to the usage requirements, and no specific limitations are made here. Preferably, the side plate 210 is generally in the shape of a rectangular plate, and the bottom plate 220 is generally in the shape of a rectangular plate.
[0065] Furthermore, as shown in the embodiments of Figure 2 and Figure 5 , the side plate 210 is vertically arranged in the housing 100, the bottom plate 220 is horizontally arranged in the housing 100, and the first functional module 300 and the second functional module 400 are relatively arranged on both sides of the side plate 210.
[0066] By relatively arranging the first functional module 300 and the second functional module 400 on both sides of the side plate 210, the side plate 210 can play an isolation role, improving the independence between the first functional module 300 and the second functional module 400, and thus reducing the mutual influence between the first functional module 300 and the second functional module 400.
[0067] In the embodiments of the present utility model, as shown in Figure 1 and Figure 5In the illustrated embodiment, the housing 100 includes a back plate 110 and a front cover plate 120 disposed opposite to each other, a left side plate 130 and a right side plate 140, and a top plate 150 and a bottom plate 160. The back plate 110, the left side plate 130, the right side plate 140, the top plate 150, and the bottom plate 160 enclose to form a housing body. The front cover plate 120 is detachably connected to the housing body, and the partition assembly 200 is detachably connected to the back plate 110.
[0068] In a feasible embodiment, as Figure 1 and Figure 2 shown in the embodiment, the back plate 110, the left side plate 130, the right side plate 140, the top plate 150, and the bottom plate 220 enclose to form a housing body. The housing body is generally in the shape of a box with an opening, and the front cover plate 120 covers the opening of the housing body.
[0069] By detachably connecting the front cover plate 120 to the housing body, the front cover plate 120 has a relatively large area, and the front cover plate 120 usually avoids being set against a wall, thereby avoiding the problem that the front cover plate 120 cannot be opened.
[0070] Moreover, by removing the front cover plate 120, the first functional module 300, the partition assembly 200, the second functional module 400, and other modules inside the housing 100 can be exposed, thus facilitating the disassembly and installation of each module.
[0071] Designers can adjust the specific structure and shape of the housing 100 according to usage needs, which is not specifically limited herein. Preferably, the inner cavity of the housing 100 is generally in the shape of a cuboid.
[0072] Furthermore, as Figure 2 shown in the embodiment, the plate surface of the side plate 210 is parallel to the left side plate 130 and the right side plate 140, and the plate surface of the bottom plate 220 is parallel to the top plate 150 and the bottom plate 160.
[0073] Specifically, the upper end of the side plate 210 abuts against or is close to the top of the housing 100, and the bottom plate 220 is placed between the side plate 210 and one inner wall of the housing 100. Thus, the side plate 210, the bottom plate 220, and at least part of the inner wall of the housing 100 enclose to form an installation space.
[0074] As Figure 2 and Figure 6 shown in the embodiment, by controlling the setting directions of the side plate 210 and the bottom plate 220, the partition assembly 200 forms a generally L-shaped arrangement in the housing 100, thereby facilitating the separation of a generally cuboid-shaped installation space in the inner cavity of the housing 100, which helps to improve the utilization rate of the installation space.
[0075] Moreover, by spacing the bottom plate 220 from the bottom of the housing 100, a certain accommodation space is formed between the bottom plate 220 and the bottom of the housing 100 for installing and using other modules.
[0076] Of course, in other feasible embodiments, designers can adjust the specific installation positions of the side plates 210 and the bottom plate 220 according to the usage requirements, and no specific limitations are imposed here.
[0077] In the embodiment of the present utility model, as Figure 2 shown in the embodiment, the integrated heat exchange device includes at least one fastener 700, and the partition assembly 200 is detachably connected to the back plate 110 through the fastener 700.
[0078] By detachably connecting the partition assembly 200 and the back plate 110 by using the fastener 700, the connection stability between the partition assembly 200 and the back plate 110 is improved.
[0079] Specifically, the partition assembly 200 includes side plates 210 and a bottom plate 220, and the side plates 210 and / or the bottom plate 220 are detachably connected to the back plate 110 through the fastener 700.
[0080] Preferably, a plurality of fasteners 700 are provided, and the plurality of fasteners 700 are arranged at intervals and connect the partition assembly 200 and the back plate 110. By providing a plurality of fasteners 700, a multi-point fixing effect can be formed through their cooperation, significantly improving the connection stability between the partition assembly 200 and the back plate 110.
[0081] More preferably, the side plates 210 are detachably connected to the back plate 110 through a plurality of fasteners 700. Specifically, the plurality of fasteners 700 are arranged at intervals along the extending direction of the side plates 210.
[0082] The connection stability between the side plates 210 and the back plate 110 is significantly improved by the plurality of fasteners 700, and as described above, the first functional module 300 can be installed on the side plates 210, thereby improving the installation stability of the first functional module 300.
[0083] Of course, in other feasible embodiments, designers can adjust the connection manner of the fastener 700 according to the usage requirements. For example, the bottom plate 220 is connected to the back plate 110 through the fastener 700, or both the side plates 210 and the bottom plate 220 are connected to the back plate 110 through the fastener 700, and no specific limitations are imposed here.
[0084] To better open the front cover plate 120, the front cover plate 120 is usually arranged to avoid the wall, and a certain operating space is reserved on the front side of the front cover plate 120 for disassembling and assembling the front cover plate 120. Moreover, the front cover plate 120 usually has a relatively large area. After the front cover plate 120 is disassembled, a relatively large opening will be formed on the housing 100, so that the fastener 700 can enter the housing 100 through the opening to connect the partition assembly 200 and the back plate 110.
[0085] Moreover, to further improve the installation efficiency of the fastener 700, in the embodiment of the present utility model, when the fastener 700 is in the state of connecting the partition assembly 200 and the back plate 110, it is perpendicular to the back plate 110.
[0086] By making the fastener 700 perpendicular to the back plate 110, the problem that the fastener 700 is inclinedly installed in the housing 100 and interferes with other components in the housing 100 is avoided, and the difficulty of disassembling and assembling the fastener 700 is reduced. At the same time, with the fastener 700 perpendicular to the back plate 110, after the operator opens the front cover plate 120, only the fastener 700 needs to be disassembled and assembled from the front to complete the disassembly and assembly of the partition assembly 200 and the housing 100, making the disassembly and assembly process more convenient.
[0087] The designer can adjust the specific structure of the fastener 700 according to the use needs. For example, the fastener 700 can be set as a bolt, a screw, etc., and no specific limitation is made here.
[0088] Furthermore, the side plate 210 and the bottom plate 220 are perpendicular to the back plate 110, and the fastener 700 connects the side plate 210 and the back plate 110. Specifically, a plurality of fasteners 700 are provided, and a plurality of connection holes are provided on the side plate 210. Each connection hole penetrates the side plate 210 in the horizontal direction and is arranged at intervals in the height direction. Fasteners 700 can be arranged in each connection hole on the side plate 210, which helps to improve the connection strength between the side plate 210 and the back plate 110.
[0089] Furthermore, a plurality of connection holes can also be provided on the bottom plate 220. Each connection hole penetrates the bottom plate 220 in the horizontal direction and is arranged in the horizontal direction. Fasteners 700 can be arranged in each connection hole on the bottom plate 220, which helps to improve the connection strength between the bottom plate 220 and the back plate 110.
[0090] In the embodiment of the present utility model, as Figure 2 shown in the embodiment, the integrated heat exchange device further includes a control module 600 arranged in the housing 100. The control module 600 is placed outside the installation space. The control module 600 has a first connection circuit, and the first functional module 300 has a second connection circuit. The first connection circuit and the second connection circuit are electrically connected to form a communication circuit. At least one through hole 230 for the communication circuit to pass through is provided on the partition assembly 200.
[0091] Specifically, the partition assembly 200 includes a side plate 210 and a bottom plate 220. Since the side plate 210 needs to be disposed between the first functional module 300 and the second functional module 400 to play an isolation role, in order to avoid affecting the integrity of the side plate 210 and reducing the isolation effect, preferably, the through hole 230 is provided on the bottom plate 220. Of course, in other feasible embodiments, the through hole 230 may also be provided on the side plate 210, which is not specifically limited herein.
[0092] The designer can adjust the specific structure and installation method of the control module 600 according to the usage requirements, which is not specifically limited herein. For example, the control module 600 includes a control circuit board, and the control circuit board is disposed in the housing 100 and outside the installation space.
[0093] In the embodiment of the present utility model, as Figure 2 、 Figure 3 and Figure 9 shown in the embodiment, the first functional module 300 includes a combustion device 310 and a first heat exchanger 320, and the combustion device 310 is used to supply heat to the first heat exchanger 320; the integrated heat exchange device further includes a water inlet pipeline 330 for supplying water to the first heat exchanger 320, a water outlet pipeline 340 for outputting water in the first heat exchanger 320, and a first gas transmission component 350 for supplying gas to the combustion device 310; the water outlet of the water inlet pipeline 330 is connected to the inlet of the first heat exchanger 320, and the water inlet 331 of the water inlet pipeline extends out of the partition assembly 200 and is located outside the installation space and inside the housing 100; the water inlet of the water outlet pipeline 340 is connected to the outlet of the first heat exchanger 320, and the water outlet 341 of the water outlet pipeline extends out of the partition assembly 200 and is located outside the installation space and inside the housing 100; the gas inlet 351 of the first gas transmission component extends out of the partition assembly 200 and is located outside the installation space and inside the housing 100.
[0094] By making the water inlet 331 of the water inlet pipeline, the water outlet 341 of the water outlet pipeline and the gas inlet 351 of the first gas transmission component all penetrate through the partition assembly 200 and be located outside the installation space and inside the housing 100, thus the first functional module 300 can be quickly connected or separated from other pipelines through the water inlet 331 of the water inlet pipeline, the water outlet 341 of the water outlet pipeline and the gas inlet 351 of the first gas transmission component, which helps to improve the disassembly and assembly efficiency of the first functional module 300 and the partition assembly 200.
[0095] Furthermore, the integrated heat exchange device further includes a second gas transmission component 170, the gas outlet of the second gas transmission component 170 is connected to the gas inlet 351 of the first gas transmission component, and the gas inlet 171 of the second gas transmission component extends out of the housing 100.
[0096] Moreover, the integrated heat exchange device further includes a first pipeline 180 and a second pipeline 190 disposed outside the installation space. The first pipeline 180 is connected to the water inlet 331 of the water inlet pipeline and is used to input water into the water inlet pipeline 330. The second pipeline 190 is connected to the water outlet 341 of the water outlet pipeline. Both the first pipeline 180 and the second pipeline 190 are disposed outside the installation space and at least partially disposed within the housing 100.
[0097] By extending the air inlet 171 of the second gas transmission component out of the housing 100, the air inlet 171 of the second gas transmission component can be communicated with an external gas pipeline to supply gas. Moreover, the first pipeline 180 and the second pipeline 190 can be respectively communicated with the water inlet 331 of the water inlet pipeline and the water outlet 341 of the water outlet pipeline to convey water.
[0098] Wherein, the housing 100 includes a top plate 150 and a bottom plate 160 disposed opposite to each other. The partition assembly 200 includes a bottom plate 220 disposed opposite to the bottom plate 160. The water inlet 331 of the water inlet pipeline, the water outlet 341 of the water outlet pipeline, and the air inlet 351 of the first gas transmission component are all located between the bottom plate 220 and the bottom plate 160.
[0099] By disposing the water inlet 331 of the water inlet pipeline, the water outlet 341 of the water outlet pipeline, and the air inlet 351 of the first gas transmission component between the bottom plate 220 and the bottom plate 160, the water inlet 331 of the water inlet pipeline, the water outlet 341 of the water outlet pipeline, and the air inlet 351 of the first gas transmission component form a first interface structure on the bottom plate 220.
[0100] Preferably, the water inlet 331 of the water inlet pipeline, the water outlet 341 of the water outlet pipeline, and the air inlet 351 of the first gas transmission component all face the bottom plate 160.
[0101] By disposing the water inlet 331 of the water inlet pipeline, the water outlet 341 of the water outlet pipeline, and the air inlet 351 of the first gas transmission component on the bottom plate 220 and facing the bottom plate 160, the water inlet 331 of the water inlet pipeline, the water outlet 341 of the water outlet pipeline, and the air inlet 351 of the first gas transmission component can be installed and disassembled on the same side, improving the installation efficiency and avoiding damaging the integrity of the side plate 210.
[0102] More preferably, the water inlet 331 of the water inlet pipeline, the water outlet 341 of the water outlet pipeline, and the air inlet 351 of the first gas transmission component are all set as quick-connect interfaces, thereby improving the connection and separation efficiency and reducing the connection difficulty.
[0103] In the embodiment of the present utility model, such as Figure 2 、 Figure 5 and Figure 9In the illustrated embodiment, the second functional module 400 includes a second heat exchanger 410 located outside the installation space and inside the housing 100. The second heat exchanger 410 includes a first flow channel 420 and a second flow channel 430 that are isolated from each other. The heat exchange medium flowing through the first flow channel 420 and the heat exchange medium flowing through the second flow channel 430 can perform heat exchange. The first flow channel 420 is used to connect to an external heat source; the inlet 181 of the first pipeline can communicate with the second flow channel 430, or both the inlet 181 of the first pipeline and the outlet 191 of the second pipeline can communicate with the second flow channel 430.
[0104] In a feasible embodiment, the inlet 181 of the first pipeline can communicate with the second flow channel 430. The water in the second flow channel 430 can be heated by the external heat source, and the heated water in the second flow channel 430 can be transported into the first pipeline 180 and enter the combustion device 310 for reheating.
[0105] The designer can adjust the specific structure of the external heat source according to the usage requirements, and no specific limitation is made here. For example, the external heat source can be an outdoor heat pump unit, and the outdoor heat pump unit can generate high-temperature water as needed to supply the second heat exchanger 410.
[0106] In another feasible embodiment, as Figure 9 shown in the illustrated embodiment, both the inlet 181 of the first pipeline and the outlet 191 of the second pipeline can communicate with the second flow channel 430. By connecting the inlet 181 of the first pipeline and the outlet 191 of the second pipeline to the second flow channel 430, the second flow channel 430 located between the inlet 181 of the first pipeline and the outlet 191 of the second pipeline can be used as a flow-through channel.
[0107] Furthermore, both the inlet 421 of the first flow channel and the outlet 422 of the first flow channel are provided on the top plate 150 and outside the top plate 150. Both the inlet 431 of the second flow channel and the outlet 432 of the second flow channel are provided on the top plate 150 and outside the top plate 150. Thus, the inlet 421 of the first flow channel, the outlet 422 of the first flow channel, the inlet 431 of the second flow channel, and the outlet 432 of the second flow channel form a second interface structure on the top plate 150.
[0108] In the embodiment of the present utility model, the housing 100 includes a left side plate 130 and a right side plate 140 that are oppositely arranged. The partition assembly 200 includes a side plate 210 that is oppositely arranged with the left side plate 130 and the right side plate 140. The second heat exchanger 410 is disposed between the plane where the side plate 210 is located and one of the left side plate 130 or the right side plate 140.
[0109] By arranging the second heat exchanger 410 between the plane where the side plate 210 is located and one of the left side plate 130 or the right side plate 140, the side plate 210 can play an isolation role, reducing the mutual influence between the second heat exchanger 410 and the first functional module 300, which is beneficial to improving the use stability between the modules.
[0110] Designers can adjust the specific structure of the second heat exchanger 410 according to the usage needs, and no specific restrictions are made here. For example, the second heat exchanger 410 can be set as a plate heat exchanger.
[0111] In the embodiment of the present utility model, as Figure 2 and Figure 9 shown in the embodiment, the integrated heat exchange device further includes a water circuit module 500. The water circuit module 500 includes a third heat exchanger 510 located outside the installation space and inside the housing 100. The third heat exchanger 510 has mutually isolated third flow channels 511 and fourth flow channels 512. The water flowing through the third flow channels 511 and the water flowing through the fourth flow channels 512 can perform heat exchange. The fourth flow channels 512 are used for circulating domestic water. The inlet of the third flow channels 511 can be connected to the outlet 191 of the second pipeline, and the outlet of the third flow channels 511 can be connected to the inlet 181 of the first pipeline.
[0112] Specifically, the housing 100 includes a top plate 150 and a bottom plate 160 arranged opposite to each other. The partition assembly 200 includes a bottom plate 220 arranged opposite to the bottom plate 160. The third heat exchanger 510 is arranged between the plane where the bottom plate 220 is located and the bottom plate 160.
[0113] Furthermore, the inlet of the fourth flow channels 512, the outlet of the fourth flow channels 512, and the air inlet 171 of the second gas transmission component are all arranged on the housing 100 and located outside the housing 100. Thus, the inlet of the fourth flow channels 512, the outlet of the fourth flow channels 512, and the air inlet 171 of the second gas transmission component can form a third interface structure on the housing 100.
[0114] Designers can adjust the specific structure of the third heat exchanger 510 according to the usage needs, and no specific restrictions are made here. For example, the third heat exchanger 510 can be set as a plate heat exchanger.
[0115] In the embodiment of the present utility model, as Figure 3 and Figure 5 shown in the embodiment, the housing 100 includes a top plate 150. A smoke outlet 151 is provided on the top plate 150. The first functional module 300 further includes a fan 360. The outlet 361 of the fan is detachably plugged into the smoke outlet 151.
[0116] By detachably plugging the outlet 361 of the blower into the smoke outlet 151, the outlet 361 of the blower and the smoke outlet 151 can be quickly separated or docked, thus facilitating the improvement of the disassembly and assembly efficiency of the first functional module 300.
[0117] Designers can set a separable sealing structure, such as a sealing ring, between the outlet 361 of the blower and the smoke outlet 151 according to the usage requirements, and no specific limitation is made here.
[0118] In the embodiment of the present utility model, as Figure 9 shown in the embodiment, the housing 100 includes a back plate 110 and a front cover plate 120 disposed opposite to the back plate 110, and the combustion device 310 includes a plurality of burner ports 311, and the plurality of burner ports 311 are arranged along the direction from the back plate 110 to the front cover plate 120.
[0119] When the partition assembly 200 is installed in the housing 100, the partition assembly 200 can form an installation space in the housing 100. The width of the installation space is the width between the side plate 210 and one inner wall of the housing 100, and the thickness of the installation space is the thickness of the housing 100.
[0120] By arranging the plurality of burner ports 311 along the direction from the back plate 110 to the front cover plate 120, the extending direction of the burner ports 311 is the thickness direction of the housing 100, so that the width between the side plate 210 and one inner wall of the housing 100 does not limit the number of burner ports 311 arranged, enabling the installation space to better meet the installation requirements of the combustion heat exchange device and improving the utilization rate of the installation space.
[0121] In the embodiment of the present utility model, as Figure 9 shown in the embodiment, the housing 100 includes a back plate 110 and a front cover plate 120 disposed opposite to the back plate 110, the first heat exchanger 320 includes a plurality of fins 321 and heat exchange tubes 322 penetrating through the plurality of fins 321, the plurality of fins 321 are arranged along the direction from the back plate 110 to the front cover plate 120, and the heat exchange tubes 322 communicate with the water inlet pipeline 330 and the water outlet pipeline 340.
[0122] By arranging the plurality of fins 321 along the direction from the back plate 110 to the front cover plate 120, the extending direction of the fins 321 is the thickness direction of the housing 100, so that the width between the side plate 210 and one inner wall of the housing 100 does not limit the number of fins 321 arranged, enabling the installation space to better meet the installation requirements of the first heat exchanger 320.
[0123] All articles and references disclosed, including patent applications and publications, are incorporated herein by reference for various purposes. The term "consisting essentially of" describing a combination shall include the identified elements, ingredients, components or steps and other elements, ingredients, components or steps that do not materially affect the basic novel features of the combination. Using the terms "comprising" or "including" to describe the combinations of elements, ingredients, components or steps herein also contemplates embodiments consisting essentially of these elements, ingredients, components or steps. By using the term "may" herein, it is intended that any of the attributes described as "may" include be optional. A plurality of elements, ingredients, components or steps can be provided by a single integrated element, ingredient, component or step. Alternatively, a single integrated element, ingredient, component or step can be divided into separate multiple elements, ingredients, components or steps. The disclosure of "a" or "an" to describe an element, ingredient, component or step does not mean to exclude other elements, ingredients, components or steps.
[0124] Each embodiment in this specification is described in a progressive manner. Each embodiment focuses on the differences from other embodiments. For the same or similar parts among the various embodiments, reference can be made to each other. The above embodiments are only for illustrating the technical concept and features of the present invention, and the purpose is to enable those skilled in the art to understand the content of the present invention and implement it accordingly. It cannot be used to limit the protection scope of the present invention. All equivalent changes or modifications made according to the spirit and essence of the present invention should be covered within the protection scope of the present invention.
Claims
1. An integrated heat exchange device, characterized in that: include: case; a partition assembly, the partition assembly being detachably disposed in the shell and enclosing at least one relatively independent installation space with the shell; A first functional module and a second functional module are arranged in the shell, wherein the first functional module is arranged in the installation space and connected to the partition assembly, and the first functional module can be removed from the shell together with the partition assembly.
2. The integrated heat exchange device according to claim 1, characterized in that: The partition assembly includes a side plate and a bottom plate connected to the side plate. The side plate, the bottom plate and at least a portion of the inner wall of the shell together form an installation space. The first functional module is arranged in the installation space and installed on the side plate and / or the bottom plate.
3. The integrated heat exchange device according to claim 2, characterized in that: The side plate is vertically arranged in the shell, the bottom plate is horizontally arranged in the shell, and the first functional module and the second functional module are relatively arranged on both sides of the side plate.
4. The integrated heat exchange device according to claim 3, characterized in that: The shell includes a back plate and a front cover plate, a left side plate and a right side plate, and a top plate and a lower plate that are relatively arranged. The back plate, the left side plate, the right side plate, the top plate and the lower plate together form a shell body. The front cover plate is detachably connected to the shell body, and the partition assembly is detachably connected to the back plate.
5. The integrated heat exchange device according to claim 4, characterized in that: The plate surface of the side plate is parallel to the left plate and the right plate, and the plate surface of the bottom plate is parallel to the top plate and the lower plate.
6. The integrated heat exchange device according to claim 4, characterized in that: The integrated heat exchange device comprises at least one fastener, and the partition assembly is detachably connected to the back plate via the fastener.
7. The integrated heat exchange device according to claim 6, characterized in that: The fastener is perpendicular to the back plate when in a state of connecting the partition assembly and the back plate.
8. The integrated heat exchange device according to claim 7, characterized in that: The side panels and the bottom panel are perpendicular to the back panel, and the fasteners connect the side panels and the back panel.
9. The integrated heat exchange device according to claim 1, characterized in that: The integrated heat exchange device also includes a control module arranged in the shell, and the control module is placed outside the installation space. The control module has a first connection circuit, and the first functional module has a second connection circuit. The first connection circuit is electrically connected to the second connection circuit to form a communication circuit, and the partition assembly is provided with at least one through hole for the communication circuit to pass through.
10. The integrated heat exchange device according to claim 1, characterized in that: The first functional module includes a combustion device and a first heat exchanger, wherein the combustion device is used to supply heat to the first heat exchanger; The integrated heat exchange device further includes a water inlet pipeline for conveying water to the first heat exchanger, a water outlet pipeline for conveying water from the first heat exchanger, and a first gas conveying component for supplying gas to the combustion device; The water outlet of the water inlet pipeline is connected to the inlet of the first heat exchanger, and the water inlet of the water inlet pipeline extends out of the partition assembly and is located outside the installation space and inside the shell; The water inlet of the water outlet pipeline is connected to the outlet of the first heat exchanger, and the water outlet of the water outlet pipeline extends out of the partition assembly and is located outside the installation space and inside the shell; The air inlet of the first air delivery component extends out of the partition assembly and is located outside the installation space and inside the shell.
11. The integrated heat exchange device according to claim 10, characterized in that: The integrated heat exchange device further includes a second gas delivery component, the gas outlet of the second gas delivery component is connected to the gas inlet of the first gas delivery component, and the gas inlet of the second gas delivery component extends out of the shell.
12. The integrated heat exchange device according to claim 10, characterized in that: The shell includes a top plate and a lower plate arranged opposite to each other, the partition assembly includes a bottom plate arranged opposite to the lower plate, and the water inlet of the water inlet pipeline, the water outlet of the water outlet pipeline, and the air inlet of the first air delivery component are all located between the bottom plate and the lower plate.
13. The integrated heat exchange device according to claim 12, characterized in that: The water inlet of the water inlet pipeline, the water outlet of the water outlet pipeline, and the air inlet of the first air delivery component are all facing the lower plate.
14. The integrated heat exchange device according to claim 10, characterized in that: The integrated heat exchange device also includes a first pipeline and a second pipeline arranged outside the installation space, the first pipeline is connected to the water inlet of the water inlet pipeline and is used to input water into the water inlet pipeline, the second pipeline is connected to the water outlet of the water outlet pipeline, and the first pipeline and the second pipeline are both arranged outside the installation space and at least partially arranged in the shell.
15. The integrated heat exchange device according to claim 14, characterized in that: The second functional module includes a second heat exchanger located outside the installation space and inside the shell, the second heat exchanger includes a first flow channel and a second flow channel isolated from each other, the heat exchange medium flowing through the first flow channel and the heat exchange medium flowing through the second flow channel can exchange heat, the first flow channel is used to connect to an external heat source; the inlet of the first pipeline can be connected to the second flow channel, or the inlet of the first pipeline and the outlet of the second pipeline can both be connected to the second flow channel.
16. The integrated heat exchange device according to claim 15, characterized in that: The shell includes a left plate and a right plate arranged opposite to each other, the partition assembly includes a side plate arranged opposite to the left plate and the right plate, and the second heat exchanger is arranged between the plane where the side plate is located and one of the left plate or the right plate.
17. The integrated heat exchange device according to claim 14, characterized in that: The integrated heat exchange device also includes a water channel module, which includes a third heat exchanger located outside the installation space and inside the shell, and the third heat exchanger has a third flow channel and a fourth flow channel isolated from each other. Water flowing through the third flow channel and water flowing through the fourth flow channel can exchange heat. The fourth flow channel is used to circulate domestic water. The inlet of the third flow channel can be connected to the outlet of the second pipeline, and the outlet of the third flow channel can be connected to the inlet of the first pipeline.
18. The integrated heat exchange device according to claim 17, characterized in that: The shell includes a top plate and a lower plate that are arranged opposite to each other, the partition assembly includes a bottom plate that is arranged opposite to the lower plate, and the third heat exchanger is arranged between the plane where the bottom plate is located and the lower plate.
19. The integrated heat exchange device according to claim 10, characterized in that: The housing includes a top plate, on which a smoke outlet is arranged, and the first functional module also includes a fan, and an outlet of the fan is detachably plugged into the smoke outlet.
20. The integrated heat exchange device according to claim 10, characterized in that: The shell includes a back plate and a front cover plate arranged opposite to the back plate, and the combustion device includes a plurality of fire bars arranged in a direction from the back plate to the front cover plate.
21. The integrated heat exchange device according to claim 10, characterized in that: The shell includes a back plate and a front cover plate arranged opposite to the back plate, the first heat exchanger includes a plurality of fins and heat exchange tubes passing through the plurality of fins, the plurality of fins are arranged in a direction from the back plate to the front cover plate, and the heat exchange tubes connect the water inlet pipe and the water outlet pipe.