Efficient cooling equipment for demineralized water cooling device
By designing a core cooling shell and brine cooling pipe network in the desalted water cooling equipment, the problem of insufficient heat exchange efficiency of traditional equipment is solved, and efficient and rapid cooling and cooling effects of brine are achieved.
Patent Information
- Application Number
- CN202422856319.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-22
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2034-11-22
AI Technical Summary
Traditional desalted water cooling equipment has deficiencies in heat exchange efficiency, resulting in insufficient heat exchange.
A high-efficiency cooling device was designed, which includes a core cooling shell, a brine cooling mechanism, and a support frame. The brine cooling pipe network is located inside the core cooling shell, forming a good heat exchange environment with the external water inlet pipe. The brine cooling pipes with reasonable spacing ensure full contact between cold water and brine.
High-efficiency heat exchange performance is achieved, and the brine is quickly cooled in the equipment to meet process requirements, reduce heat residue and improve cooling effect.
Smart Images

Figure CN223400039U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to high-efficiency cooling equipment, in particular to high-efficiency cooling equipment used in a demineralized water cooling device. Background Art
[0002] Cooling demineralized water is an essential step in many industrial production processes. Demineralized water is widely used in industries such as chemicals, power generation, and pharmaceuticals, all of which have strict temperature requirements. For example, in chemical production, specific chemical reactions require precise temperature conditions. Demineralized water, used as a heat transfer medium or a regulator of the reaction environment, requires precise temperature control. In the power industry, demineralized water is used to cool power generation equipment, and improper temperatures can affect power generation efficiency and even the lifespan of the equipment.
[0003] Traditional desalinated water cooling equipment suffers from numerous shortcomings in heat exchange efficiency. Early designs employed simple cooling equipment structures, lacking a carefully considered heat exchange layout. For example, improperly arranged heat exchange components prevented sufficient contact between the brine and the cooling medium, such as water, resulting in inadequate heat exchange.
[0004] Therefore, there is an urgent need for a better high-efficiency cooling device for desalted water cooling device on the market. Utility Model Content
[0005] The technical problem to be solved by the utility model is to overcome the defects of the above-mentioned technology and provide a high-efficiency cooling device for a desalted water cooling device.
[0006] In order to solve the above technical problems, the technical solution provided by the present utility model is a high-efficiency cooling device for a demineralized water cooling device: comprising a core cooling shell;
[0007] An auxiliary frame is fixed on the outer wall of the core cooling shell, and an external water inlet pipe is provided on the auxiliary frame, and one end of the external water inlet pipe extends to the interior of the core cooling shell;
[0008] It also includes a brine cooling mechanism; the brine cooling mechanism includes a brine core water inlet pipe body;
[0009] The other end of the brine core water inlet pipe body is provided with a core hollow plate body, the core hollow plate body extends downward, and the lower part of the core hollow plate body is provided with a brine cooling pipe network, the brine cooling pipe network forms an opening facing the cold water inlet area, and the brine cooling pipe network is located inside the core cooling shell;
[0010] The other end of the brine cooling pipe network is provided with an auxiliary hollow plate body, the upper part of the auxiliary hollow plate body is provided with a brine core water outlet pipe body, and the brine core water outlet pipe body extends to the outside;
[0011] One end of the external water inlet pipe extends to the cold water inlet area where the opening of the brine cooling pipe network is formed.
[0012] As an improvement, the brine cooling pipe network includes a plurality of brine cooling pipe bodies, one end of each brine cooling pipe body is connected to the lower part of the core hollow plate body;
[0013] One end of the brine cooling pipe body is connected to the lower part of the auxiliary hollow plate body.
[0014] As an improvement, there is a distance between adjacent brine cooling pipe bodies on the brine cooling pipe network.
[0015] As an improvement, a support frame is provided on the brine cooling mechanism, and the lower part of the support frame is fixedly connected to the inner bottom of the core cooling shell.
[0016] As an improvement, there are two support frames, which are fixedly connected to the core hollow plate body and the auxiliary hollow plate body respectively.
[0017] As an improvement, the projection of the core cooling shell in a top view is rectangular, and the opening of the core cooling shell faces upward.
[0018] As an improvement, an external water outlet pipe is provided on the lower side of the outer wall of the core cooling shell.
[0019] The advantages of this utility model over existing technologies include: Highly efficient heat exchange performance: This high-efficiency cooling device achieves efficient heat exchange through a unique design. The brine cooling network is located within the core cooling shell, creating an optimal heat exchange environment with the cold water introduced by the external water inlet pipe. The appropriate spacing between the brine cooling tubes ensures that the cold water can fully contact the brine cooling network and the brine cooling tubes, greatly improving heat exchange efficiency and achieving rapid cooling of the brine. This design effectively reduces the temperature of the brine after passing through the brine cooling network, meeting the process requirements for cooling desalted water.
[0020] Hot brine enters the equipment through the core brine inlet pipe, passes through the core hollow plate, the brine cooling network, and the auxiliary hollow plate, and throughout the process, continuously exchanges heat with the cold water delivered by the external water inlet pipe. This continuous and stable cooling process ensures a complete and efficient brine cooling path within the equipment, maximizes the cooling capacity of the cold water, reduces heat retention, and further improves the equipment's cooling effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 This is a three-dimensional schematic diagram of a high-efficiency cooling device for desalted water cooling device in this utility model. Figure 1 .
[0022] Figure 2 This is a three-dimensional schematic diagram of a high-efficiency cooling device for desalted water cooling device in this utility model. Figure 2 .
[0023] Figure 3 The utility model is a schematic diagram of the internal three-dimensional structure of a high-efficiency cooling device for a desalted water cooling device.
[0024] Figure 4 yes Figure 3 Schematic diagram of the locally enlarged structure at point A in the middle. DETAILED DESCRIPTION
[0025] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Generally, the components of the embodiments of the present invention described and shown in the drawings herein can be arranged and designed in various different configurations.
[0026] In the description of the embodiments of the present invention, it should be noted that if the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. appear, the orientation or position relationship indicated is based on the orientation or position relationship shown in the accompanying drawings, or the orientation or position relationship in which the product of the utility model is usually placed when in use. It is only for the convenience of describing the utility model and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation. Therefore, it should not be understood as limiting the present invention. In addition, the terms "first", "second", "third", etc. are only used to distinguish the description and should not be understood as indicating or implying relative importance.
[0027] Furthermore, the use of terms such as "horizontal," "vertical," and "overhanging" does not necessarily imply that the component must be absolutely horizontal or overhanging, but rather that it can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical," not that the structure must be completely horizontal, but rather that it can be slightly tilted.
[0028] In the description of the embodiments of the present invention, "a plurality of" means at least 2.
[0029] In the description of the embodiments of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "disposed," "installed," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium; and they can refer to internal connections between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on specific circumstances.
[0030] With reference to the accompanying drawings, a high-efficiency cooling device for a desalted water cooling device includes a core cooling shell 1. The core cooling shell 1 is projected in a rectangular shape when viewed from above. The opening of the core cooling shell 1 faces upward, and an external water outlet pipe 2 is provided on the lower side of the outer wall of the core cooling shell 1; an auxiliary frame 3 is fixedly provided on the outer wall of the core cooling shell 1, and an external water inlet pipe 4 is provided on the auxiliary frame 3. One end of the external water inlet pipe 4 extends into the interior of the core cooling shell 1;
[0031] The core cooling housing 1 further includes a brine cooling mechanism 5. The brine cooling mechanism 5 includes a brine core water inlet pipe 6, one end of which is connected to an external body containing high-temperature brine. The other end of the brine core water inlet pipe 6 is provided with a core hollow plate 7, which extends downward. The lower portion of the core hollow plate 7 is provided with a brine cooling network 8. The brine cooling network 8 includes a plurality of brine cooling pipes 9, one end of which is connected to the lower portion of the core hollow plate 7. The brine cooling network 8 forms an open cold water inlet area. The brine cooling network 8 is located inside the core cooling housing 1. The other end of the brine cooling network 8 is provided with an auxiliary hollow plate 10, one end of which is connected to the lower portion of the auxiliary hollow plate 10, and the upper portion of the auxiliary hollow plate 10 is provided with a brine core water outlet pipe 11, which extends to the outside. There is a distance between adjacent brine cooling pipes 9 on the brine cooling network 8.
[0032] The brine cooling mechanism 5 is provided with a support frame 12, the lower part of which is fixedly connected to the bottom of the core cooling shell 1; there are two support frames 12, which are fixedly connected to the core hollow plate 7 and the auxiliary hollow plate 10 respectively.
[0033] One end of the external water inlet pipe 4 extends to the brine cooling pipe network 8 to form an opening facing the cold water inlet area.
[0034] Equipment installation and preparation:
[0035] First, place the core cooling housing 1 in the appropriate working position, ensuring a stable installation. Since the core cooling housing 1 appears rectangular when viewed from above, its orientation must be determined according to the design plan. Its opening faces upward, providing a suitable spatial layout for subsequent component installation and operation.
[0036] An external water outlet pipe 2 is installed on the lower side of the outer wall of the core cooling shell 1 to ensure a firm connection and good sealing so that the water with increased temperature can be discharged smoothly during the operation of the equipment.
[0037] Install the auxiliary frame 3 on the outer wall of the core cooling housing 1. During installation, pay attention to the frame's positioning accuracy and stability to ensure it can firmly support the components subsequently installed. Install the external water inlet pipe 4 on the auxiliary frame 3. Pass one end of the external water inlet pipe 4 through the wall of the core cooling housing 1 and extend it into the interior of the core cooling housing 1. Ensure that the interface is sealed to prevent water leakage.
[0038] Install the brine cooling mechanism 5. Connect one end of the brine core water inlet pipe body 6 in the brine cooling mechanism 5 to an external brine supply source with a higher temperature to ensure a tight connection and no brine leakage. The other end of the brine core water inlet pipe body 6 is connected to the core hollow plate body 7, which extends downward, and a brine cooling pipe network 8 is installed at its lower part. The brine cooling pipe network 8 is composed of a number of brine cooling pipe bodies 9, and one end of each brine cooling pipe body 9 is connected to the lower part of the core hollow plate body 7, and the stability and sealing of the connection must be ensured during the connection process so that the brine will not leak during the flow. The brine cooling pipe network 8 forms an opening-facing cold water inlet area in the core cooling shell 1. The design of this area must ensure that water from the external water inlet pipe 4 can enter smoothly.
[0039] Install an auxiliary hollow plate 10 at the other end of the brine cooling network 8, connecting one end of the brine cooling tube 9 to the lower portion of the auxiliary hollow plate 10. Install a core brine outlet pipe 11 above the auxiliary hollow plate 10 and extend it to the outside to ensure smooth flow of the cooled brine out of the equipment. Ensure that adjacent brine cooling tubes 9 in the brine cooling network 8 maintain an appropriate distance to ensure effective cooling and even water distribution.
[0040] A support frame 12 is installed on the brine cooling mechanism 5, and the lower part of the support frame 12 is fixedly connected to the bottom of the core cooling shell 1. There are two support frames 12, which are fixedly connected to the core hollow plate 7 and the auxiliary hollow plate 10 respectively to ensure the stability of the brine cooling mechanism 5 in the core cooling shell 1 and avoid affecting its normal operation due to factors such as vibration during the operation of the equipment.
[0041] Equipment operation process:
[0042] After starting the equipment, the external water inlet pipe 4 is connected to the external water supply source, and cold water flows in from the external water inlet pipe 4. Since one end of the external water inlet pipe 4 extends to the cold water inlet area formed by the opening of the brine cooling pipe network 8, cold water will flow into this area. Then, the cold water will evenly pass through the brine cooling pipe network 8, and in the process of passing through the area between the brine cooling pipe bodies 9, it will take away the heat of the brine cooling pipe bodies 9 and the brine cooling pipe network 8 through heat exchange, thereby playing a role in cooling the brine cooling pipe bodies 9 and the brine cooling pipe network 8. As the heat is transferred, the temperature of the water gradually increases, and the water with increased temperature flows out of the equipment from the external water outlet pipe 2. The continuous flow of water ensures the cooling effect.
[0043] At the same time, high-temperature brine enters from the brine core water inlet pipe 6, passes through the core hollow plate body 7, and flows into the brine cooling pipe network 8. In the brine cooling pipe network 8, the brine exchanges heat with the cold water coming in from the external water inlet pipe 4 during the flow. The cold water continues to pass through the area between the brine cooling pipe network 8 and the brine cooling pipe body 9, continuously taking away heat and lowering the temperature of the brine. The brine after being cooled enters the auxiliary hollow plate body 10 from the brine cooling pipe network 8, and then flows out of the equipment from the brine core water outlet pipe body 11, completing the entire brine cooling process. During the entire operation process, the continuous water supply from the external water inlet pipe 4 and the brine core water inlet pipe body 6, as well as the smooth drainage from the external water outlet pipe 2 and the brine core water outlet pipe body 11, ensures the continuous and stable operation of the equipment and achieves efficient cooling of the brine.
[0044] Efficient heat exchange: This high-efficiency cooling system achieves efficient heat exchange through a unique design. The brine cooling network 8, located within the core cooling housing 1, creates an optimal heat exchange environment with the cold water introduced by the external water inlet pipe 4. The appropriate spacing between the brine cooling tubes 9 ensures sufficient contact between the brine cooling network 8 and the brine cooling tubes 9, significantly improving heat exchange efficiency and achieving rapid cooling of the brine. This design effectively reduces the temperature of the brine after passing through the brine cooling network 8, meeting the process requirements for cooling desalted water.
[0045] Hot brine enters through the core brine inlet pipe 6, passes through the core hollow plate 7, the brine cooling network 8, and the auxiliary hollow plate 10. Throughout this process, it continuously exchanges heat with the cold water delivered by the external water inlet pipe 4. This continuous and stable cooling process ensures a complete and efficient cooling path for the brine within the equipment, maximizes the cooling capacity of the cold water, reduces heat retention, and further improves the cooling effect of the equipment.
[0046] Clear Workflow: The entire equipment workflow is clearly defined, from the inflow, cooling, and outflow of brine, to the inflow, heating, and outflow of cooling water. Each link is designed simply and rationally. Operators can easily understand and master the equipment's operating principles and methods, facilitating daily maintenance and management. This not only reduces the need for specialized operator skills, but also improves the equipment's operability and maintenance efficiency, reducing equipment problems caused by improper operation.
[0047] The above description of the present invention and its embodiments is non-limiting. The drawings show only one embodiment of the present invention, and the actual structure is not limited thereto. In short, if a person skilled in the art is inspired by the above, and does not deviate from the purpose of the present invention, without inventive design, a structure and embodiment similar to the technical solution should fall within the scope of protection of the present invention.
Claims
1. An efficient cooling device for a desalted water cooling device, characterized in that: It includes a core cooling shell (1); An auxiliary frame (3) is fixedly provided on the outer wall of the core cooling shell (1), an external water inlet pipe (4) is provided on the auxiliary frame (3), and one end of the external water inlet pipe (4) extends to the interior of the core cooling shell (1); It also includes a brine cooling mechanism (5); the brine cooling mechanism (5) includes a brine core water inlet pipe body (6); The other end of the brine core water inlet pipe body (6) is provided with a core hollow plate body (7), the core hollow plate body (7) extends downward, and the lower part of the core hollow plate body (7) is provided with a brine cooling pipe network (8), the brine cooling pipe network (8) forms an opening-facing cold water inlet area, and the brine cooling pipe network (8) is located inside the core cooling shell (1); The other end of the brine cooling pipe network (8) is provided with an auxiliary hollow plate body (10), and the upper part of the auxiliary hollow plate body (10) is provided with a brine core water outlet pipe body (11), and the brine core water outlet pipe body (11) extends to the outside; One end of the external water inlet pipe (4) extends to the brine cooling pipe network (8) to form an opening facing the cold water inlet area.
2. The high-efficiency cooling device for a desalted water cooling device according to claim 1, characterized in that: The brine cooling pipe network (8) comprises a plurality of brine cooling pipe bodies (9), one end of each brine cooling pipe body (9) is connected to the lower portion of the core hollow plate body (7); One end of the brine cooling pipe body (9) is connected to the lower part of the auxiliary hollow plate body (10).
3. The high-efficiency cooling device for a desalted water cooling device according to claim 2, characterized in that: There is a distance between adjacent brine cooling pipe bodies (9) on the brine cooling pipe network (8).
4. The high-efficiency cooling device for a desalted water cooling device according to claim 3, characterized in that: A support frame (12) is provided on the brine cooling mechanism (5), and the lower portion of the support frame (12) is fixedly connected to the inner bottom of the core cooling shell (1).
5. The high-efficiency cooling device for a desalted water cooling device according to claim 4, characterized in that: There are two support frames (12), which are fixedly connected to the core hollow plate body (7) and the auxiliary hollow plate body (10) respectively.
6. The high-efficiency cooling device for a desalted water cooling device according to claim 5, characterized in that: The projection of the core cooling shell (1) in a top view is rectangular, and the opening of the core cooling shell (1) faces upward.
7. The high-efficiency cooling device for a desalted water cooling device according to claim 6, characterized in that: An external water outlet pipe (2) is provided on the lower side of the outer wall of the core cooling shell (1).