Mold cooling and refrigerating device with intelligent temperature control function
Through the intelligent temperature control of the partitioned storage components and cooling components, the problems of low cooling efficiency and high energy consumption of existing refrigeration devices are solved, and efficient, precise temperature regulation and low-cost cooling of mold cooling are achieved, extending the service life of the mold.
Patent Information
- Application Number
- CN202511171238.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-21
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2045-08-21
AI Technical Summary
Existing refrigeration devices lack the ability to autonomously adjust different areas, resulting in low cooling efficiency and an inability to meet the needs of high-speed, precise temperature control in multiple areas of complex molds or equipment. At the same time, traditional cooling systems have high energy consumption and uneven coolant mixing, affecting product quality and mold service life.
The use of partitioned storage components and cooling components, combined with cooling mechanisms and auxiliary mechanisms, can achieve partitioned storage, mixing and temperature regulation of cooling media in different areas. Through the coordination of external air and cooling media, intelligent temperature control is provided to reduce mold cooling costs, and cooling efficiency is improved through stirring rods and magnetic connection blocks.
It realizes intelligent temperature control of mold cooling, improves cooling efficiency, avoids local temperature deviation, extends mold service life, reduces energy consumption costs, and facilitates maintenance.
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Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of refrigeration devices, and in particular to a mold cooling refrigeration device with intelligent temperature control. Background Art
[0002] Refrigeration equipment is required during mold operation. Mold cooling is primarily to control its temperature and ensure a stable operating state during the molding process. Cooling quickly dissipates heat generated by the mold, reducing temperature fluctuations and preventing mold deformation or cracking, thereby improving the product's dimensional accuracy and surface quality. Effective cooling also shortens molding cycles, improves production efficiency, extends mold life, and reduces maintenance costs.
[0003] Patent publication number CN113819668A discloses a refrigeration device comprising a housing, a fan, and a heat-conducting member. The housing has independently arranged first and second heat-dissipating chambers, and is provided with an air inlet and an air outlet, both of which communicate with the first heat-dissipating chamber. The second heat-dissipating chamber contains a heat-conducting medium. The fan is attached to the housing and is configured to provide a driving force for driving an external airflow through the air inlet to the air outlet. One end of the heat-conducting member extends into the first heat-dissipating chamber and contacts the heating element, while the other end extends into the second heat-dissipating chamber and contacts the heat-conducting medium therein. The refrigeration device provided by the present invention has excellent heat dissipation performance.
[0004] Existing refrigeration devices mostly use a single, centralized cooling method, lack the ability to independently adjust for different areas, and are not convenient for achieving rapid cooling and intelligent temperature adjustment, resulting in low cooling efficiency and unable to meet the needs of high-speed and precise temperature control in multiple areas of complex molds or equipment. In addition, traditional refrigeration systems often rely on natural circulation or simple circulation methods for coolant mixing, which makes it difficult to ensure sufficient and uniform mixing of coolant in each area, which may cause local temperature deviations, thereby affecting product quality and mold service life. At the same time, existing technologies often rely on compressor cooling systems, which are not conducive to reducing the energy consumption cost of mold cooling during the refrigeration process, that is, not conducive to reducing cooling costs. Therefore, the present invention is proposed. Summary of the Invention
[0005] The object of the present invention is to provide a mold cooling and refrigeration device with intelligent temperature control to solve the problems raised in the above background technology.
[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a mold cooling and refrigeration device with intelligent temperature control, comprising a main board and partition cooling mechanisms installed on the top and bottom of the main board, a top plate installed on the top of the partition cooling mechanism, the partition cooling mechanism comprising a partition storage component and a cooling component, a cooling mechanism connected to the cooling component installed on the top plate, the cooling mechanism absorbs the outside air and cools it down, and then introduces it into the cooling component, and then the cooling component completes the cooling of the partition storage component, a liquid inlet box is installed on the outside of the cooling component located at the top of the main board, a liquid outlet box is installed on the outside of the cooling component located at the bottom of the main board, and the partition storage component is connected to the inlet and outlet boxes. An auxiliary mechanism is installed between the liquid box and the liquid outlet box. The partitioned storage assembly includes an air storage column. Both cooling assemblies are connected to the air storage column. The air storage column is installed between the main board and the top plate. An annular block is installed on the outer wall of the air storage column. Several installation positions are formed between the annular block, the main board and the top plate. Storage boxes for storing cooling media at different temperatures are placed in the installation positions. A liquid guide tube connected to the liquid outlet box is embedded in the main board. A first liquid valve is installed on the liquid guide tube. A bottom groove corresponding to the liquid guide tube is opened on the bottom outer wall of the storage box. The temperature adjustment of the cooling medium is completed by the liquid guide tube in cooperation with the bottom groove and the first liquid valve. The storage box is disassembled and assembled in the installation position through a connecting mechanism.
[0007] Furthermore, air ducts connected to the air storage column are embedded and installed on both ends and the outer walls of both sides of the annular block, a first air valve is installed on the outer wall of the air duct, and an air inlet groove adapted to the air duct is opened on the outer wall of the storage box facing the outer wall of the annular block. The storage box is a hollow structure, and the cooling gas is introduced into the cooling assembly through the cooling assembly and the air duct to complete the cooling of the cooling medium in the storage box.
[0008] Furthermore, the cooling assembly includes several cooling columns installed between the inner walls on both sides of the storage box, several grooves are provided on the outer walls of the cooling columns, annular grooves are provided on both sides of the middle part of the outer wall of the cooling columns, connecting blocks are inserted in the top and bottom of the annular grooves, a stirring rod is installed on the connecting block, a first mounting plate is installed in the middle part of the inner wall of the cooling column, a cylinder is installed on the outer wall of the first mounting plate, several fan blades are installed on the outer wall of the cylinder, horizontal columns are installed on the outer walls of both ends of the cylinder, vertical blocks are installed on the top outer wall and the bottom outer wall of the horizontal column, a magnet is embedded in the top outer wall of the vertical block, and the connecting block is made of magnetic metal.
[0009] Furthermore, the cooling mechanism includes a circular plate, a cooling column for storing cooling medium inside is installed on the outer wall of the circular plate facing the air storage column, a plurality of first circular grooves are provided on the outer walls of the circular plate and the cooling column, a plurality of second circular grooves are provided on the cooling column, a plurality of heat-absorbing columns plugged into the second circular grooves are installed on the outer wall of the circular plate facing the air storage column, a second mounting plate is installed in the first circular groove of the circular plate, and an air intake fan driven by a drive motor is installed on the second mounting plate, the cooling of the air is completed by the cooling column and the first circular groove, and the temperature of the cooling medium in the cooling column is completed by the heat-absorbing column.
[0010] Furthermore, the heat absorbing column includes a heat conductive carrier and a heat absorbing material. The heat conductive carrier includes a heat conductive grid installed on the outer wall of the heat absorbing column. The heat conductive grid is made of a heat conductive metal material. The heat absorbing material includes a phase change material that can be repeatedly charged and discharged. The heat absorbing material also includes a reversible heat absorbing material or a reversible complex.
[0011] Furthermore, the auxiliary mechanism includes an auxiliary box, in which several auxiliary tubes are embedded and installed, an exhaust groove is opened on the outer wall of the storage box, the air inlet pipe port of the auxiliary tube is inserted into the exhaust groove, a connecting tube is embedded and installed on the top plate, the top of the connecting tube is installed on the bottom outer wall of the liquid inlet box, a second liquid valve is installed on the outer wall of the liquid inlet box, and several conduits connected to the auxiliary tubes are installed on the top outer wall of the liquid outlet box.
[0012] Furthermore, a liquid inlet pipe is installed on the outer wall of the liquid inlet box, and a liquid discharge pipe is installed on the outer wall of the liquid outlet box, and a cooling medium circulation circuit is formed through the liquid inlet pipe, liquid inlet box, connecting pipe, storage box, liquid guide pipe, liquid outlet box and liquid discharge pipe.
[0013] Furthermore, slots are provided on the outer wall of the annular block at the top and bottom of the air duct, and a plug-in column inserted into the slot is installed on the outer wall of the storage box facing the outer wall of the annular block. Side grooves are provided on the inner walls at both ends of the annular groove, and side blocks inserted into the side grooves are installed on the connecting block.
[0014] Compared with the prior art, the present invention has the following beneficial effects: The mold cooling and refrigeration device with intelligent temperature control can partition and store cooling media with different temperatures through the provided partition storage component, and can correspondingly cool the cooling media stored in different partitions through the provided cooling mechanism in conjunction with the cooling component, and can mix the cooling media stored in different partitions through the provided liquid outlet box in conjunction with the liquid guide tube and the first liquid valve, so as to obtain a cooling medium that meets the required use temperature. Specifically, temperature sensors can be installed in the storage box and the liquid outlet box, and the required cooling medium temperature can be obtained through temperature monitoring through the temperature sensor. The provided cooling mechanism can provide cooling gas by using outside air in conjunction with the cooling medium and the heat-absorbing column, thereby reducing the cost required for mold cooling, and the storage box can be easily disassembled by placing it in the installation position, which is beneficial for the staff to perform subsequent maintenance on the storage box and its internal components. The auxiliary mechanism can complete the mixing of the liquid in the liquid outlet box, thereby avoiding local temperature deviation, which affects the product quality and the service life of the mold.
[0015] At the same time, when the cooling operation is carried out, air can enter the cooling column. The impact force generated when the gas enters the cooling column will drive the fan blades and the cylinder to rotate, and then drive the horizontal column and the vertical block to rotate. When the magnet and the connecting block are made of magnetic metal, the connecting block and the stirring rod can be driven to rotate, thereby completing the mixing of the cooling medium inside the storage box. By setting the groove, the contact area between the cooling medium and the cooling column can be increased, thereby improving the cooling efficiency of the cooling medium.
[0016] At the same time, the heated liquid can be placed and taken out through the inlet pipe and the outlet pipe, so as to utilize and save resources. The gas can be introduced into the liquid outlet box through the provided conduit, and the gas enters the liquid outlet box through the impact force of the gas to complete the mixing of the liquid in the liquid outlet box. In order to improve the mixing efficiency, a pressure pump can be installed on the conduit to avoid the phenomenon of insufficient gas pressure resulting in low mixing efficiency. The provided plug-in column is inserted into the slot to provide a plug-in effect, thereby improving the connectivity of the storage box in the installation position. At the same time, an electromagnet can be embedded in the slot. At the same time, the plug-in column is made of magnetic metal, which can further improve the connectivity. The side groove is matched with the side groove to prevent the stirring rod and the connecting block from falling off on the cooling column. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic diagram of the structure of some auxiliary mechanisms of the present invention; Figure 3 This is a schematic diagram of the top structure of the mainboard of the present invention; Figure 4 It is a schematic diagram of the cooling column structure of the present invention; Figure 5This is a schematic diagram of the bottom structure of the circular plate of the present invention; Figure 6 This is a schematic diagram of the installation position structure of the present invention; Figure 7 This is a schematic diagram of the internal structure of the storage box of the present invention; Figure 8 It is a schematic diagram of the cross-sectional structure of the cooling column of the present invention.
[0018] Figure: 1, main board; 2, partition cooling mechanism; 201, gas storage column; 202, storage box; 203, ring block; 204, slot; 205, air guide tube; 206, cooling column; 207, air inlet groove; 208, plug column; 209, groove; 210, stirring rod; 211, connecting block; 212, vertical block; 213, first mounting plate; 214, cylinder; 215, horizontal column; 3, auxiliary Auxiliary mechanism; 301, auxiliary box; 302, auxiliary pipe; 303, connecting pipe; 304, conduit; 4, top plate; 5, cooling mechanism; 501, circular plate; 502, cooling column; 503, first circular groove; 504, second circular groove; 505, second mounting plate; 506, heat-absorbing column; 507, air intake fan; 6, liquid inlet box; 7, liquid outlet box; 8, liquid inlet pipe; 9, liquid discharge pipe; 10, liquid guide pipe. DETAILED DESCRIPTION
[0019] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0020] The refrigeration devices required for mold cooling mainly include water cooling systems and refrigerant cooling systems. Water cooling systems are the most commonly used cooling method, removing heat from the mold through circulating cooling water. Compressor refrigeration systems (refrigerant systems) are typically used during the cooling process, using a compressor, evaporator, and condenser to achieve low-temperature cooling. Although this provides good cooling results, it is not easy to reduce the energy consumption required for cooling. Mold cooling refrigeration devices with intelligent temperature control integrate high-precision sensors to monitor the coolant temperature in real time and adjust the coolant temperature according to demand, achieving precise and stable cooling effects, significantly improving the mold's service life and product quality. They are important key equipment for improving production efficiency and product quality in modern advanced manufacturing.
[0021] like Figures 1-8As shown, the present invention provides a technical solution: a mold cooling and refrigeration device with intelligent temperature control, comprising a main board 1 and a partition cooling mechanism 2 installed on the top and bottom of the main board 1, a top plate 4 is installed on the top of the partition cooling mechanism 2, the partition cooling mechanism 2 includes a partition storage component and a cooling component, a cooling mechanism 5 connected to the cooling component is installed on the top plate 4, the cooling mechanism 5 absorbs the outside air and cools it down, and then introduces it into the cooling component, and then the cooling component completes the cooling of the partition storage component, a liquid inlet box 6 is installed on the outside of the cooling component located at the top of the main board 1, a liquid outlet box 7 is installed on the outside of the cooling component located at the bottom of the main board 1, an auxiliary mechanism 3 is installed between the partition storage component and the liquid inlet box 6 and the liquid outlet box 7, The partitioned storage component includes an air storage column 201, and both cooling components are connected to the air storage column 201. The air storage column 201 is installed between the main board 1 and the top plate 4. An annular block 203 is installed on the outer wall of the air storage column 201. Several installation positions are formed between the annular block 203, the main board 1 and the top plate 4. Storage boxes 202 for storing cooling media of different temperatures are placed in the installation positions. A liquid guide tube 10 connected to the liquid outlet box 7 is embedded in the main board 1, and a first liquid valve is installed on the liquid guide tube 10. A bottom groove corresponding to the liquid guide tube 10 is opened on the bottom outer wall of the storage box 202. The temperature adjustment of the cooling medium is completed by the liquid guide tube 10 in cooperation with the bottom groove and the first liquid valve. The storage box 202 is disassembled and assembled in the installation position through a connecting mechanism.
[0022] It should be noted that during use, it is necessary to ensure that there is sufficient cooling medium in the liquid inlet box 6 and the liquid outlet box 7. The cooling medium can be coolant, etc. By setting a partition storage component, cooling media with different temperatures can be stored in different partitions. By setting a cooling mechanism 5 in conjunction with the cooling component, the cooling media stored in different partitions can be cooled accordingly. By setting a liquid outlet box 7 in conjunction with the liquid guide tube 10 and the first liquid valve, the cooling media stored in different partitions can be mixed to obtain a cooling medium that meets the required temperature. Specifically, a temperature sensor can be installed in the storage box 202 and the liquid outlet box 7. The temperature sensor is used to complete temperature monitoring to obtain the required cooling medium temperature. By setting a cooling mechanism 5, external air is used in combination with the cooling medium and the heat-absorbing column 506 to provide cooling gas, thereby reducing the cost required for mold cooling. By placing the storage box 202 in the installation position, the storage box 202 can be easily disassembled, which is beneficial for the staff to subsequently maintain the storage box 202 and its internal components. The auxiliary mechanism 3 is used to complete the mixing of the liquid in the liquid outlet box 7 to avoid local temperature deviation, thereby affecting product quality and mold service life.
[0023] like Figure 6 and Figure 7As shown, air guide tubes 205 connected to the air storage column 201 are embedded and installed on both ends and the outer walls of both sides of the annular block 203, and a first air valve is installed on the outer wall of the air guide tube 205. An air inlet groove 207 adapted to the air guide tube 205 is provided on the outer wall of the storage box 202 facing the outer wall of the annular block 203. The storage box 202 is a hollow structure, and the cooling gas is introduced into the cooling assembly through the cooling assembly in conjunction with the air guide tube 205 to complete the cooling of the cooling medium in the storage box 202.
[0024] It should be noted that the gas storage column 201 is used to receive the cooled gas, and the gas in the gas storage column 201 can be introduced into the storage box 202 through the gas guide tube 205. The first gas valve is set to control the gas to enter the storage boxes 202 in different partitions, so as to complete the cooling of the cooling medium in different storage boxes 202. A temperature sensor can be installed in the gas storage column 201 to monitor the gas temperature, and the gas is distributed into the corresponding storage box 202 by monitoring the gas temperature.
[0025] like Figure 7 and Figure 8 As shown, the cooling assembly includes several cooling columns 206 installed between the inner walls on both sides of the storage box 202, and several grooves 209 are provided on the outer walls of the cooling columns 206. Annular grooves are provided on both sides of the middle part of the outer wall of the cooling columns 206, and connecting blocks 211 are inserted into the top and bottom of the annular grooves. A stirring rod 210 is installed on the connecting block 211, and a first mounting plate 213 is installed in the middle part of the inner wall of the cooling column 206. A cylinder 214 is installed on the outer wall of the first mounting plate 213, and several fan blades are installed on the outer wall of the cylinder 214. Horizontal columns 215 are installed on the outer walls of both ends of the cylinder 214, and vertical blocks 212 are installed on the top outer wall and the bottom outer wall of the horizontal column 215. A magnet is embedded in the top outer wall of the vertical block 212, and the connecting block 211 is made of magnetic metal.
[0026] It should be noted that after the first air valve in the air storage column 201 is started, it enters the internal hollow space of the storage box 202 through the air guide tube 205, and the cooling column 206 is connected to the internal hollow space of the storage box 202, so that when the cooling operation is performed, air can enter the cooling column 206. The impact force generated when the gas enters the cooling column 206 will drive the fan blades and the cylinder 214 to rotate, and then drive the horizontal column 215 to cooperate with the vertical block 212 to rotate. The magnet and the connecting block 211 are made of magnetic metal, which can drive the connecting block 211 and the stirring rod 210 to rotate, thereby completing the mixing of the cooling medium inside the storage box 202. By setting the groove 209, the contact area between the cooling medium and the cooling column 206 can be increased, thereby improving the cooling efficiency of the cooling medium.
[0027] like Figure 3-Figure 5As shown, the cooling mechanism 5 includes a circular plate 501, and a cooling column 502 for storing cooling medium inside is installed on the outer wall of the circular plate 501 facing the air storage column 201, a plurality of first circular grooves 503 are provided on the outer walls of the circular plate 501 and the cooling column 502, and a plurality of second circular grooves 504 are provided on the cooling column 502, and a plurality of heat-absorbing columns 506 inserted into the second circular grooves 504 are installed on the outer wall of the circular plate 501 facing the air storage column 201, a second mounting plate 505 is installed in the first circular groove 503 on the circular plate 501, and an air intake fan 507 driven by a driving motor is installed on the second mounting plate 505, the cooling of the air is completed by the cooling column 502 cooperating with the first circular groove 503, and the temperature of the cooling medium in the cooling column 502 is completed by the heat-absorbing column 506.
[0028] It should be noted that the circular plate 501 cooperates with the heat-absorbing column 506 to form a detachable component, which is convenient for subsequent maintenance of the components on the circular plate 501. The outside air is introduced into the gas storage column 201 through the first circular groove 503 and the air intake fan 507. A gas collecting hopper is installed between the cooling column 502 and the gas storage column 201 to introduce the gas into the gas storage column 201. When the air enters the cooling column 502, the air can be cooled. The cooling medium in the cooling column 502 can be cooled through the heat-absorbing column 506, so as to continue to cool the air.
[0029] like Figure 5 As shown, the heat absorbing column 506 includes a heat conducting carrier and a heat absorbing material. The heat conducting carrier includes a heat conducting grid installed on the outer wall of the heat absorbing column 506. The heat conducting grid is made of a heat conducting metal material. The heat absorbing material includes a phase change material that can be repeatedly charged and discharged. The heat absorbing material also includes a reversible heat absorbing material or a reversible complex.
[0030] It should be noted that the phase change material (PCM) needs to be an organic PCM (such as paraffin / fatty acid) or a water-based / water-wrapped PCM that can be repeatedly charged and discharged and whose phase change temperature window is near the target cold zone temperature. If the target temperature is high, medium-temperature phase change materials can be considered. The thermal conductive carrier can be selected from graphite sheets / powders, metal grids (aluminum, copper grids), copper / aluminum foams, carbon fiber fillers, etc., to improve the overall thermal conductivity and shorten the heat diffusion path. During use, the packaging and interface materials of the heat absorbing column 506 are made of thermal adhesive / thermal interface material (TIM) or thermal conductive tape, and the metal shell (aluminum or copper) forms a columnar structure. The external thermal interface coating or coating is used to improve durability. The reversible heat absorbing material is selected to have significant heat release / heat absorption in the target temperature window. Chemical systems, such as reversible adsorption materials (molecular sieves, activated carbon modified materials, oxides, etc.) or reversible complexes (certain metal complexes / organic coordination compounds), when the heat-absorbing column 506 needs to release heat, a slot can be opened in the middle of the heat-absorbing column 506, and the heat-conducting carrier and the heat-absorbing material are between the heat-absorbing column 506 and the slot. A copper column is installed inside the slot for heat conduction. At the same time, an exhaust fan is installed at the bottom of the heat-absorbing column 506, and a vertical slot is opened on the circular plate 501 to discharge heat, thereby assisting the heat dissipation of the heat-absorbing column 506.
[0031] like Figure 2-Figure 3 As shown, the auxiliary mechanism 3 includes an auxiliary box 301, in which several auxiliary tubes 302 are embedded and installed. An exhaust groove is provided on the outer wall of the storage box 202, and the air inlet pipe port of the auxiliary tube 302 is inserted into the exhaust groove. A connecting tube 303 is embedded and installed on the top plate 4, and the top of the connecting tube 303 is installed on the bottom outer wall of the liquid inlet box 6. A second liquid valve is installed on the outer wall of the liquid inlet box 6, and several conduits 304 connected to the auxiliary tube 302 are installed on the top outer wall of the liquid outlet box 7.
[0032] It should be noted that the auxiliary pipe 302 and the exhaust groove are detachable soft connections. A sealing ring can be installed on the auxiliary pipe 302 to improve the sealing performance. At the same time, sealing rings can also be installed on all pipelines to improve the overall sealing performance of the device. The auxiliary box 301 is provided to store liquids that need to be heated, etc. The auxiliary box 301 is provided with an inlet pipe and an outlet pipe. The heated liquid can be placed and taken out through the inlet pipe and the outlet pipe, so as to utilize and save resources. The gas can be introduced into the liquid outlet box 7 through the provided conduit 304, and enters the liquid outlet box 7 through the impact force of the gas to complete the mixing of the liquid in the liquid outlet box 7. In order to improve the mixing efficiency, a pressure pump can be installed on the conduit 304 to avoid the phenomenon of insufficient gas pressure resulting in low mixing efficiency.
[0033] like Figure 1-Figure 3As shown, a liquid inlet pipe 8 is installed on the outer wall of the liquid inlet box 6, and a liquid discharge pipe 9 is installed on the outer wall of the liquid outlet box 7. A cooling medium circulation loop is formed through the liquid inlet pipe 8, the liquid inlet box 6, the connecting pipe 303, the storage box 202, the liquid guide tube 10, the liquid outlet box 7 and the liquid discharge pipe 9.
[0034] It should be noted that by connecting the liquid inlet pipe 8 and the liquid discharge pipe 9 to the cooling medium interface on the mold, and then through the cooling medium circulation loop, the cooling medium can be circulated to continuously cool down and control the temperature, so as to cool down the mold. During specific use, valves and liquid pumps can also be installed on the liquid inlet pipe 8 and the liquid discharge pipe 9.
[0035] like Figure 6-Figure 8 As shown, slots 204 are provided on the outer wall of the annular block 203 at the top and bottom of the air guide tube 205, and a plug 208 inserted into the slot 204 is installed on the outer wall of the storage box 202 facing the outer wall of the annular block 203. Side grooves are provided on the inner walls at both ends of the annular groove, and side blocks inserted into the side grooves are installed on the connecting block 211.
[0036] It should be noted that by inserting the provided pin 208 into the slot 204, a plug-in effect can be provided, thereby improving the connectivity of the storage box 202 in the installation position. At the same time, an electromagnet can be embedded in the slot 204. At the same time, the pin 208 is made of magnetic metal, which can further improve the connectivity. By providing side grooves that cooperate with the side grooves, the stirring rod 210 and the connecting block 211 can be prevented from falling off on the cooling column 206.
[0037] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is limited by the accompanying embodiments and their equivalents.
Claims
1. A mold cooling and refrigeration device with intelligent temperature control, comprising a main board (1) and partition cooling mechanisms (2) mounted on the top and bottom of the main board (1), characterized in that: A top plate (4) is installed on the top of the partition cooling mechanism (2). The partition cooling mechanism (2) includes a partition storage component and a cooling component. A cooling mechanism (5) connected to the cooling component is installed on the top plate (4). The cooling mechanism (5) absorbs external air and cools it down before introducing it into the cooling component. The cooling component then cools the partition storage component. A liquid inlet box (6) is installed on the outside of the cooling component located on the top of the main board (1). A liquid outlet box (7) is installed on the outside of the cooling component located on the bottom of the main board (1). An auxiliary mechanism (3) is installed between the partition storage component and the liquid inlet box (6) and the liquid outlet box (7). The partition storage component includes an air storage column (201). Both cooling components are connected to the air storage column (201). The gas storage column (201) is installed between the main board (1) and the top board (4), and an annular block (203) is installed on the outer wall of the gas storage column (201). A plurality of installation positions are formed between the annular block (203), the main board (1) and the top board (4), and storage boxes (202) for storing cooling media at different temperatures are placed in the installation positions. A liquid guide tube (10) connected to the liquid outlet box (7) is embedded in the main board (1), and a first liquid valve is installed on the liquid guide tube (10). A bottom groove corresponding to the liquid guide tube (10) is opened on the bottom outer wall of the storage box (202). The temperature of the cooling medium is adjusted by the liquid guide tube (10) in conjunction with the bottom groove and the first liquid valve. The storage box (202) is assembled and disassembled in the installation position through a connecting mechanism.
2. The mold cooling and refrigeration device with intelligent temperature control according to claim 1, characterized in that: Air guide tubes (205) connected to the air storage column (201) are embedded and installed on both ends and the outer walls of both sides of the annular block (203). A first air valve is installed on the outer wall of the air guide tube (205). An air inlet groove (207) adapted to the air guide tube (205) is opened on the outer wall of the storage box (202) facing the outer wall of the annular block (203). The storage box (202) is a hollow structure. The cooling medium in the storage box (202) is cooled by introducing cooling gas into the cooling assembly through the cooling assembly in conjunction with the air guide tube (205).
3. The mold cooling and refrigeration device with intelligent temperature control according to claim 1, characterized in that: The cooling assembly includes a plurality of cooling columns (206) installed between the inner walls of both sides of the storage box (202), a plurality of grooves (209) are provided on the outer wall of the cooling column (206), annular grooves are provided on both sides of the middle of the outer wall of the cooling column (206), a connecting block (211) is inserted in the top and bottom of the annular groove, a stirring rod (210) is installed on the connecting block (211), a first mounting plate (213) is installed in the middle of the inner wall of the cooling column (206), a cylinder (214) is installed on the outer wall of the first mounting plate (213), a plurality of fan blades are installed on the outer wall of the cylinder (214), a horizontal column (215) is installed on the outer wall of both ends of the cylinder (214), a vertical block (212) is installed on the top outer wall and the bottom outer wall of the horizontal column (215), a magnet is embedded and installed on the top outer wall of the vertical block (212), and the connecting block (211) is made of magnetic metal.
4. The mold cooling and refrigeration device with intelligent temperature control according to claim 1, characterized in that: The cooling mechanism (5) comprises a circular plate (501), a cooling column (502) for storing a cooling medium is installed on the outer wall of the circular plate (501) facing the gas storage column (201), a plurality of first circular grooves (503) are provided on the outer walls of the circular plate (501) and the cooling column (502), a plurality of second circular grooves (504) are provided on the cooling column (502), a plurality of heat-absorbing columns (506) plugged into the second circular grooves (504) are installed on the outer wall of the circular plate (501) facing the gas storage column (201), a second mounting plate (505) is installed in the first circular groove (503) on the circular plate (501), and an air intake fan (507) driven by a driving motor is installed on the second mounting plate (505), the cooling of the air is completed by the cooling column (502) cooperating with the first circular groove (503), and the temperature of the cooling medium in the cooling column (502) is completed by the heat-absorbing column (506).
5. The mold cooling and refrigeration device with intelligent temperature control according to claim 4, characterized in that: The heat absorbing column (506) includes a heat conducting carrier and a heat absorbing material. The heat conducting carrier includes a heat conducting grid installed on the outer wall of the heat absorbing column (506). The heat conducting grid is made of a heat conducting metal material. The heat absorbing material includes a phase change material that can be repeatedly charged and discharged. The heat absorbing material also includes a reversible heat absorbing material or a reversible complex.
6. The mold cooling and refrigeration device with intelligent temperature control according to claim 1, characterized in that: The auxiliary mechanism (3) comprises an auxiliary box (301), wherein a plurality of auxiliary tubes (302) are embedded and installed in the auxiliary box (301), an exhaust groove is provided on the outer wall of the storage box (202), and the air inlet of the auxiliary tube (302) is plugged into the exhaust groove, a connecting tube (303) is embedded and installed on the top plate (4), the top of the connecting tube (303) is installed on the bottom outer wall of the liquid inlet box (6), a second liquid valve is installed on the outer wall of the liquid inlet box (6), and a plurality of conduits (304) connected to the auxiliary tubes (302) are installed on the top outer wall of the liquid outlet box (7).
7. The mold cooling and refrigeration device with intelligent temperature control according to claim 1, characterized in that: A liquid inlet pipe (8) is installed on the outer wall of the liquid inlet box (6), and a liquid discharge pipe (9) is installed on the outer wall of the liquid discharge box (7). A cooling medium circulation loop is formed through the liquid inlet pipe (8), the liquid inlet box (6), the connecting pipe (303), the storage box (202), the liquid guide pipe (10), the liquid discharge box (7) and the liquid discharge pipe (9).
8. The mold cooling and refrigeration device with intelligent temperature control according to claim 3, characterized in that: The outer wall of the annular block (203) is provided with slots (204) at the top and bottom of the air guide tube (205), and the outer wall of the storage box (202) facing the outer wall of the annular block (203) is provided with a plug post (208) inserted into the slot (204). The inner walls at both ends of the annular groove are provided with side grooves, and the connecting block (211) is provided with side blocks inserted into the side grooves.
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