MODULAR HEAT EXCHANGER
20230175782 ยท 2023-06-08
Inventors
Cpc classification
F28F7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F5/0042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0246
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B21/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A modular heat exchanger includes: two finned heat sinks, each finned heat sink has multiple guiding plates and a mounting recess; a securing assembly for securing the two finned heat sinks; a heat conduction pipe mounted in the mounting recesses; multiple modular blocks linearly arranged, and each modular block has multiple inlet through holes and multiple outlet through holes; multiple water pipes, each water pipe has two ends mounted through the inlet through holes and the outlet through holes respectively; and multiple coolers mounted to an outer sidewall defined on at least one of the modular blocks. It is convenient to assemble, disassemble or expand the modular heat exchanger, so as to improve performance of the modular heat exchanger. When one of the coolers fails, it is able to reach and detach said failed cooler by disassembling some parts of the modular heat exchanger, which is convenient.
Claims
1. A modular heat exchanger comprising: two finned heat sinks, and each of the two finned heat sinks formed as a rectangular cylinder and having a front side surface, a rear side surface, an inner side surface and an outer side surface; the inner side surface and the outer side surface oppositely defined on the finned heat sink and disposed between the front side surface and the rear side surface; and each of the two finned heat sink further having multiple guiding plates separately arranged between the front side surface and the rear side surface such that multiple independent spaces are formed in the finned heat sink; each of the independent spaces defined between two of the guiding plates that are arranged next to each other and formed through the inner side surface and the outer side surface; and a mounting recess formed in the inner side surface and communicating with the independent spaces; the inner side surface of one of the finned heat sinks attached to the inner side surface of the other finned heat sink; the mounting recesses of the two finned heat sinks forming a mounting chamber; and the mounting chamber forming a front opening defined on the front side surfaces of the two finned heat sinks and a rear opening defined on the rear side surface of the two finned heat sinks; a securing assembly including an upper cover and a lower cover, wherein a receiving chamber is surrounded by the upper cover and the lower cover, and the two finned heat sinks are mounted in the receiving chamber; a heat conduction pipe being hollow and cylindrical, mounted in the mounting chamber, and mounted through the front opening and the rear opening, wherein an outer sidewall of the heat conduction pipe is attached to the two heat sinks; multiple modular blocks linearly arranged one after the other, and each of the modular blocks having multiple inlet through holes, the inlet through holes of each of the modular blocks aligning with the inlet through holes of an adjacent one of the modular blocks, and the inlet through holes of the modular blocks that align with each other forming an inlet channel; and multiple outlet through holes, the outlet through holes of each of the modular blocks aligning with the outlet through holes of an adjacent one of the modular blocks, and the outlet through holes of the modular blocks that align with each other forming an outlet channel; multiple water pipes having two ends, one of the ends of the water pipe mounted through one of the inlet channels and abutting against the modular blocks, and the other one of the ends of the water pipes mounted through one of the outlet channels and abutting against the modular blocks; and multiple coolers, and each of the coolers mounted to an outer sidewall that is defined on at least one of the modular blocks; the modular blocks linearly arranged in the heat conduction pipe; and the coolers attached to an inner sidewall of the heat conduction pipe.
2. The modular heat exchanger as claimed in claim 1, wherein the mounting recess of each of the two finned heat sinks is V-shaped in cross-section; the mounting chamber is rectangular cuboid; and the heat conduction pipe is rectangular in cross-section.
3. The modular heat exchanger as claimed in claim 1, wherein the upper cover of the securing assembly has a top panel; two side panels extending from two opposites sides of the top panel respectively; and multiple venting holes formed through the two side panels and corresponding in position to the independent spaces of the two finned heat sinks respectively; and the lower cover is formed as a sheet and is securely mounted to the upper cover via multiple fasteners.
4. The modular heat exchanger as claimed in claim 2, wherein the upper cover of the securing assembly has a top panel; two side panels extending from two opposites sides of the top panel respectively; and multiple venting holes formed through the two side panels and corresponding in position to the independent spaces of the two finned heat sinks respectively; and the lower cover is formed as a sheet and is securely mounted to the upper cover via multiple fasteners.
5. The modular heat exchanger as claimed in claim 3 further comprising a fan mounted to one of the side panels of the upper cover and corresponding in position to the venting holes on said side panel.
6. The modular heat exchanger as claimed in claim 4 further comprising a fan mounted to one of the side panels of the upper cover and corresponding in position to the venting holes on said side panel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0020] With reference to
[0021] With reference to
[0022] The guiding plates 15 are separately arranged between the front side surface 11 and the rear side surface 12, such that multiple independent spaces are formed in the finned heat sink 10. Each of the independent spaces is defined between two of the guiding plates 15 that are arranged next to each other, and is formed through the inner side surface 13 and the outer side surface 14.
[0023] The mounting recess 16 is formed in the inner side surface 13 and communicates with the independent spaces. The mounting recess 16 is V-shaped in cross-section. However, the shape of the mounting recess 16 is not limited thereto, and may be modified according to a user's needs. The inner side surface 13 of one of the finned heat sinks 10 is attached to the inner side surface 13 of the other finned heat sink 10. The mounting recesses 16 of the two finned heat sinks 10 form a mounting chamber 17 that is rectangular cuboid. The mounting chamber 17 forms a front opening defined on the front side surfaces 11 of the two finned heat sinks 10 and a rear opening defined on the rear side surface 12 of the two finned heat sinks 10.
[0024] The securing assembly 20 includes an upper cover 21 and a lower cover 22. The upper cover 21 has a top panel 211, two side panels 212, and multiple venting holes 213. The two side panels 212 extend from two opposites sides of the top panel 212 respectively. The venting holes 213 are formed through the two side panels 212 and correspond in position to the independent spaces of the two finned heat sinks 10 respectively. The lower cover 22 is formed as a sheet and is securely mounted to the upper cover 21 via multiple fasteners. A receiving chamber is surrounded by the upper cover 21 and the lower cover 22. The two finned heat sinks 10 are mounted in the receiving chamber and is held by the securing assembly 20.
[0025] With further reference to
[0026] Each of the modular blocks 40 is a rectangular block and has multiple inlet through holes 41 and multiple outlet through holes 42. The modular blocks 40 are linearly arranged one after the other. The inlet through holes 41 of each of the modular blocks 40 align with the inlet through holes 41 of an adjacent one of the modular blocks 40. The inlet through holes 41 of the modular blocks 40 that align with each other form an inlet channel 43, such that a plurality of said inlet channels 43 are formed in the modular blocks 40. The outlet through holes 42 of each of the modular blocks 40 align with the outlet through holes 42 of an adjacent one of the modular blocks 40. The outlet through holes 42 of the modular blocks 40 that align with each other form an outlet channel 44, such that a plurality of said outlet channels 44 are formed in the modular blocks 40.
[0027] In the preferred embodiment, said multiple inlet through holes 41 include two inlet through holes 41 and said multiple outlet through holes 42 include two outlet through holes 42. Each of the inlet through holes 41 is disposed opposite to one of the outlet through holes 42. However, a configuration of the inlet through holes 41 and the outlet through holes 42 is not limited thereto.
[0028] Each of the water pipes 50 is U-shaped and has two ends. One of the ends of the water pipe 50 is mounted through one of the inlet channels 43 and abuts against the modular blocks 40, and the other one of the ends of the water pipes 50 is mounted through one of the outlet channels 44 and abuts against the modular blocks 40. In the preferred embodiment, said multiple water pipes 50 includes two water pipes 50 that are arranged crosswise. However, a form of each of the water pipes 50 and an arrangement of the water pipes 50 are not limited thereto, and may be modified according to the user's needs.
[0029] Each of the coolers 60 is mounted to an outer sidewall that is defined on at least one of the modular blocks 40. In the preferred embodiment, each of the coolers 60 is a thermoelectric cooling chip, is formed as a sheet and has an inner surface 61 and an outer surface 62. The thermoelectric cooling chip is a standard component and a further detailed structure of the thermoelectric cooling chip is omitted.
[0030] The inner surface 61 of the coolers 60 is attached to the outer sidewall that is defined on at least one of the modular blocks 40. When the inner surface 61 of each of the cooler 60 is a cold side, the coolers 60 are configured to reduce temperatures of the water pipes 50. However, a configuration of each of the coolers 60 is not limited thereto and can be modified according to the user's needs. The coolers 60 are attached to the outer sidewall that is defined on at least one of the modular blocks 40. Since the modular blocks 40 are linearly arranged in the heat conduction pipe 30, the outer surfaces 62 of the coolers 60 are attached to an inner sidewall of the heat conduction pipe 30.
[0031] The fan 70 is mounted to one of the side panels 212 of the upper cover 21 and corresponds in position to the venting holes 213 on said side panel 212. In the preferred embodiment, the fan 70 is, but is not limited to be, mounted to said side panel 212 via multiple fasteners. Otherwise, the fan 70 may be omitted.
[0032] When the modular heat exchanger is in use, a variety of molds, such as transferring heat to or from cold air, warm air, cold water or hot water, are available for implementation. The only difference is that an input fluid is different and temperature of the input fluid is different. With reference to
[0033] In addition to using one modular heat exchanger alone, multiple modular heat exchangers can also be combined in parallel or in series according to needs of use. A number of the modular blocks 40 can also be changed according to demand. Ways to combine the modular heat exchangers in parallel or in series are conventional techniques, and therefore are omitted.
[0034] In the forgoing process, since each of the water pipes 50 is bent into the U shape, time for the cooling water to flow through the modular blocks 40 can be increased, thereby improving heat dissipation performance of the modular heat exchanger.
[0035] In the forgoing process, when one of the coolers 60 fails and needs to be repaired, the user disassembles the securing assembly 20 and then removes the finned heat sink 10 that is disposed beside said cooler 60 that needs to be repaired. Thus, the cooler 60 that needs to be repaired can be removed individually without removing the water pipes 50.
[0036] Compared with a conventional air conditioner that controls temperature of an output air through start or stop of a compressor, the temperature controlled by the compressor would rise or drop on a sudden. Even if the conventional air conditioner is a variable frequency air conditioner, changes in the temperature of the output air are still noticeable and a lot of electric power would be consumed. Moreover, noise would be generated when the compressor operates. As for the modular heat exchanger of the present invention, temperature of each of the coolers 60 is controlled by adjusting voltage input into the coolers 60. Therefore, the modular heat exchanger of the present invention provides constant temperature and linear temperature change, and is power saving and quiet during operation.
[0037] Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and features of the invention, the disclosure is illustrative only. Changes may be made in the details, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.