Intelligent temperature control type stamping die for producing basin stand
By using intelligent temperature-controlled stamping molds with an annular cooling chamber and adjustable refrigeration circulation system during the basin production process, the problem of excessive temperature of the basin stamping mold is solved, and the uniform thickness and high-quality molding of the basin frame are achieved.
Patent Information
- Application Number
- CN202511041187.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-28
- Publication Date
- 2025-08-29
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The temperature inside the existing basin stamping mold is too high, which affects the molding quality of the workpiece.
An intelligent temperature-controlled stamping mold is designed, using an annular cooling chamber and an adjustable refrigeration circulation system, and the upper mold assembly is cooled through cooling oil, and the temperature is monitored and controlled in real time.
Ensure that the ring temperature does not exceed the deformation temperature threshold when forming the basin frame, ensure that the thickness of the basin frame is uniform and the molding quality is good.
Smart Images

Figure CN120551284A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of intelligent manufacturing technology, and more specifically to an intelligent temperature-controlled stamping die, specifically an intelligent temperature-controlled stamping die for producing basin racks. Background Art
[0002] The loudspeaker (horn) is mainly composed of a basin frame, a magnetic circuit system, a vibration system (voice coil and diaphragm) and sealing protective parts. The basin frame is a key structural component in loudspeaker manufacturing, which plays the role of supporting and positioning other components. Its precision and strength directly affect the sound quality and reliability.
[0003] The metal basin rack is one of the best basin racks currently available. It is made using a stamping mold. It is first punched into a ring shape using a continuous blanking mold, and then formed into a trumpet shape using a basin-shaped stamping mold. Finally, it is polished and surface treated to obtain the basin rack. In the basin-shaped stamping mold, the metal sheet not only deforms, but also produces material slippage (the inner material slides toward the outer material). The mold generates high temperature when in use, which affects the molding quality of the workpiece (large rebound after molding). For this reason, the present invention provides an intelligent temperature-controlled stamping mold for producing basin racks. Summary of the Invention
[0004] In view of the shortcomings of the existing technology, the present invention provides an intelligent temperature-controlled stamping die for producing basin frames, which solves the problem that the temperature inside the basin-shaped stamping die is too high, affecting the molding quality of the workpiece.
[0005] To achieve the above objectives, the present invention is implemented through the following technical solutions: An intelligent temperature-controlled stamping die for producing a basin stand, comprising: The template structure includes a lower base plate, guide columns, an upper base plate, and a middle plate. A hydraulic component is fixedly installed on the upper base plate, and the bottom telescopic end of the hydraulic component is fixedly installed on the middle plate; A lower mold assembly, wherein the lower mold assembly is fixedly mounted on the top surface of the lower base plate; An upper mold assembly, wherein the upper mold assembly is fixedly mounted on the bottom of the middle plate and cooperates with the lower mold assembly; The upper mold assembly includes: an annular frame, an annular sleeve, and a module. The top of the annular frame is fixedly installed with the bottom of the middle plate. The inner side of the annular sleeve is provided with an upper mold forming cavity. The top of the annular sleeve is provided with an annular cooling cavity. The top of the annular sleeve is fixedly installed with the bottom of the annular frame. Two groups of inlet / outlet oil pipes are fixedly installed on the outer side of the annular sleeve. The module is embedded and fixedly installed on the inner side of the annular sleeve. A temperature detection component for detecting the temperature of the inner wall of the upper mold forming cavity is installed on the inner side of the annular frame. At least 50% of the module is located inside the annular cooling cavity. It also includes: an adjustable refrigeration cycle system, the two groups of inlet / outlet oil pipes are installed in the adjustable refrigeration cycle system, and the temperature detection component is communicatively connected with the controller of the adjustable pump component of the adjustable refrigeration cycle system.
[0006] Preferably, the lower base plate and the upper base plate are fixedly mounted on both ends of the guide pillars respectively, the middle plate is arranged parallel between the lower base plate and the upper base plate, and the middle plate is slidably fitted with the guide pillars.
[0007] Preferably, the lower mold assembly includes: A connecting plate, the top of which is fixedly connected to a support platform, and the top of which is fixedly connected to a cross-shaped positioning piece; A table, the bottom of which is provided with a cross-shaped positioning opening, the top of which is fixedly connected to a frustum portion, the top of which is provided with a guide cone portion, the outer side of which is fixedly connected to a number of positioning side plates distributed in a circular array, the outer side of which is provided with a number of side openings, which correspond to the modules, and an annular pad is provided on the top of the table and on the outer side of the frustum portion.
[0008] Preferably, the annular frame comprises: an upper flange and a lower flange arranged in parallel, wherein the bottom of the upper flange and the top of the lower flange are fixedly connected via a plurality of arc-shaped connecting portions; The upper flange is fixedly installed on the middle plate.
[0009] Preferably, the annular sleeve comprises: An outer straight cylindrical portion, wherein the top end of the outer straight cylindrical portion is fixedly connected to the lower flange, the bottom end of the outer straight cylindrical portion extends inwardly to form an inner conical cylindrical portion, the fixed top of the inner conical cylindrical portion is provided with an inner straight cylindrical portion, and the top of the inner straight cylindrical portion is sealed with the bottom of the lower flange; A mounting opening is provided on the side surface of the inner conical cylinder portion, the module is located inside the mounting opening, and the side surface of the module is fixed to the outer straight cylinder portion by screws.
[0010] Preferably, the oil inlet / outlet pipe includes: A double-ended connector, wherein the first end of the double-ended connector is threadedly connected to the outer wall of the annular sleeve, the second end of the double-ended connector is threadedly connected to an elbow, the end of the elbow away from the double-ended connector is connected to a hose, and the hose is connected to an adjustable refrigeration cycle system.
[0011] Preferably, the adjustable refrigeration cycle system includes: An oil tank, wherein a cooler is provided inside the oil tank; An adjustable pump assembly, wherein the oil inlet of the adjustable pump assembly is connected to the oil tank through a pipeline, the oil outlet of the adjustable pump assembly is connected to one of the oil inlet / outlet pipes through a pipeline, and the other oil inlet / outlet pipe is connected to the oil tank.
[0012] Preferably, a protective frame is fixedly installed on the top of the upper base plate, a C-shaped enclosure is fixedly installed on the top of the lower base plate, and the lower mold assembly is located on the inner side of the C-shaped enclosure.
[0013] Preferably, the temperature detection component includes: A vertical frame, the top of which is fixedly connected to the bottom of the middle plate, an oblique frame is fixedly installed on the bottom of the vertical frame, and an infrared temperature sensor is fixedly installed on the end of the oblique frame.
[0014] Preferably, a recess is provided on the side of the upper base plate, a positioning frame is provided inside the recess, the hose is located inside the positioning frame, and a baffle member located outside the positioning frame is fixedly installed on the side of the upper base plate.
[0015] The present invention provides an intelligent temperature-controlled stamping die for producing basin racks. It has the following beneficial effects: The present invention improves the upper mold assembly so that it has an annular cooling cavity inside and is equipped with an adjustable refrigeration circulation system. When producing basin racks, the adjustable refrigeration circulation system flows cooling oil into the annular cooling cavity to cool the upper mold assembly, ensuring that the temperature on the ring sheet does not exceed the deformation temperature threshold when the basin rack is formed, thereby ensuring that the thickness of the produced basin rack is uniform and the forming quality is good.
[0016] The present invention designs an upper mold assembly and adopts a matching installation structure of an annular frame, an annular sleeve, and a module. An annular cooling cavity is provided on the top of the annular sleeve, and a module is embedded and fixedly installed on the inner side surface of the annular sleeve, and at least 50% of the module is located inside the annular cooling cavity. During the production process of the basin frame, an adjustable refrigeration circulation system flows cooling oil inside the annular cooling cavity. The cooling oil contacts the module and the annular sleeve to cool the contact of the module and the annular sleeve, thereby ensuring that during the production process of the basin frame, the temperature on the ring sheet will not exceed the deformation temperature threshold, thereby ensuring that the produced basin frame has uniform thickness and good molding quality. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a three-dimensional schematic diagram of an intelligent temperature-controlled stamping die for producing basin racks proposed in the present invention; Figure 2 A three-dimensional diagram of an intelligent temperature-controlled stamping die for producing a basin stand proposed in the present invention; Figure 3 This is a front view of an intelligent temperature-controlled stamping die for producing basin racks proposed by the present invention; Figure 4 This is a side view of an intelligent temperature-controlled stamping die for producing basin racks proposed by the present invention; Figure 5 for Figure 3 Sectional view of the section line at AA; Figure 6 for Figure 5 A partial enlarged view of point C in the middle; Figure 7 This is a schematic diagram of the installation of an upper die assembly of an intelligent temperature-controlled stamping die for producing basin racks proposed in the present invention; Figure 8 This is an exploded view of an upper die assembly of an intelligent temperature-controlled stamping die for producing basin racks proposed in the present invention; Figure 9 This is an exploded view of the lower die assembly of an intelligent temperature-controlled stamping die for producing basin racks proposed in the present invention.
[0018] Among them, 1. Lower base plate; 2. Guide column; 3. Upper base plate; 4. Protective frame; 5. Middle plate; 6. Hydraulic assembly; 7. Lower mold assembly; 701. Connecting plate; 702. Support platform; 703. Cross-shaped positioning piece; 704. Platform; 705. Cone portion; 706. Guide cone portion; 707. Positioning side plate; 708. Side opening; 709. Ring pad; 7010. Cross-shaped positioning opening; 8. Upper mold assembly; 801. Ring frame; 8011. Upper flange; 8012. Lower flange; 8013. Arc-shaped connecting part; 802, annular sleeve; 8021, outer straight cylinder; 8022, inner conical cylinder; 8023, inner straight cylinder; 803, upper mold forming cavity; 804, annular cooling cavity; 805, inlet / outlet oil pipe; 8051, double-head connector; 8052, elbow; 8053, hose; 806, module; 807, temperature detection assembly; 9, C-type cover; 10, ring piece; 10a, air vent; 10b, positioning port; 11, oil tank; 12, refrigerator; 13, adjustable pump assembly. 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] Example 1 like Figures 1-9 As shown, an embodiment of the present invention provides an intelligent manufacturing mold, which is an intelligent temperature-controlled stamping mold for producing basin racks, specifically including: a template structure, a hydraulic component 6, a lower mold component 7, an upper mold component 8 and an adjustable refrigeration circulation system.
[0021] The template structure adopts a three-plate mold frame, which includes a lower base plate 1, a guide column 2, an upper base plate 3, and a middle plate 5. The guide column 2 is fixedly installed on the top of the lower base plate 1, and the upper base plate 3 is fixedly installed on the top of the guide column 2. The middle plate 5 is arranged between the lower base plate 1 and the upper base plate 3, and the middle plate 5 slides with the guide column 2. The guide column 2 is generally provided in four groups, distributed at the four corners of the lower base plate 1, the upper base plate 3, and the middle plate 5. The guide column 2 is used to guide the middle plate 5 to slide up and down stably. A hydraulic component 6 is fixedly installed on the upper base plate 3. The hydraulic component 6 is a two-way telescopic component. The bottom telescopic end of the hydraulic component 6 is fixedly installed on the middle plate 5, and the hydraulic component 6 is used to drive the middle plate 5 to move up and down.
[0022] The lower mold assembly 7 is fixedly installed on the top surface of the lower base plate 1, and the lower mold assembly 7 is a fixed mold. The upper mold assembly 8 is fixedly installed on the bottom of the middle plate 5, and the upper mold assembly 8 is a movable mold. The upper mold assembly 8 cooperates with the lower mold assembly 7.
[0023] When the stamping die is working: the ring piece 10 (the sheet-like semi-finished product obtained by the blanking process) is placed on the lower die assembly 7, and then the hydraulic assembly 6 is started. The hydraulic assembly 6 pushes the middle plate 5 to move downward, and the middle plate 5 simultaneously pushes the upper die assembly 8 to move downward. The guide column 2 guides the middle plate 5 to ensure the stability of the middle plate 5 and the upper die assembly 8 in the downward movement. The upper die assembly 8 and the lower die assembly 7 are closed to form the ring piece 10 to obtain the basin frame.
[0024] Specifically, the upper mold assembly 8 includes: an annular frame 801, an annular sleeve 802, and a module 806. The annular frame 801 is a connecting piece. Both ends of the annular frame 801 are flange connection structures. The top of the annular frame 801 is fixedly installed with the bottom of the middle plate 5. The top of the annular sleeve 802 is fixedly installed with the bottom of the annular frame 801. The inner side of the annular sleeve 802 is provided with an upper mold forming cavity 803. The upper mold forming cavity 803 is designed based on the shape and size of the manufactured basin frame. The top of the annular sleeve 802 is provided with an annular cooling cavity 804. Two groups of inlet / outlet oil pipes 805 are fixedly provided on the outer side of the annular sleeve 802. The two groups of inlet / outlet oil pipes 805 are respectively used for the entry and exit of cooling oil, that is, the cooling oil flows inside the annular cooling cavity 804. The inner side of the annular sleeve 802 is embedded with a module fixedly installed 806, the module 806 is located on the side inside the upper mold forming cavity 803 and is also used to form the basin frame (a fan-shaped hole is formed on the side of the basin frame), and a temperature detection component 807 for detecting the temperature of the inner wall of the upper mold forming cavity 803 is installed on the inner side of the annular frame 801. The temperature detection component 807 detects the temperature of the inner wall of the upper mold forming cavity 803 in real time during the production process of the basin frame. At least 50% of the module 806 is located inside the annular cooling cavity 804. The module 806 and the annular sleeve 802 are both used to transfer heat, and transfer the heat generated during the production process of the basin frame to the cooling oil flowing inside the annular cooling cavity 804. Two sets of inlet / outlet oil pipes 805 are installed in the adjustable refrigeration cycle system, and the temperature detection component 807 is communicatively connected to the controller of the adjustable pump component 13 of the adjustable refrigeration cycle system.
[0025] During the production process of the basin frame, the ring piece 10 and the annular sleeve 802 of the upper mold assembly 8 are squeezed and slipped inside, causing the ring piece 10 and the upper mold assembly 8 to generate a large amount of heat. The temperature detection component 807 detects the temperature of the inner wall of the upper mold forming cavity 803 in real time during the production process of the basin frame, and transmits the detected temperature to the controller of the adjustable pump component 13 of the adjustable refrigeration cycle system. When the detected temperature is higher than the preset threshold, the adjustable pump component 13 works, and the higher the detected temperature, the greater the flow rate of the adjustable pump component 13. The cooling oil passes through the annular cooling cavity 804, and the cooling oil contacts the module 806 and the annular sleeve 802, cooling the module 806 and the annular sleeve 802, and controlling their temperature to meet the use requirements.
[0026] In one embodiment, the lower mold assembly 7 includes: a connecting plate 701 , a support platform 702 , a cross-shaped positioning member 703 , a platform 704 , a frustum portion 705 , a guide cone portion 706 , a positioning side plate 707 and an annular pad 709 .
[0027] The top of the connecting plate 701 is fixedly connected to the support platform 702, and the top of the support platform 702 is fixedly connected to the cross-shaped positioning member 703. The connecting plate 701, the support platform 702, and the cross-shaped positioning member 703 are an integrated structure. The connecting plate 701 is a flange structure, and multiple sets of bolts are used to fix the connecting plate 701 to the lower base plate 1. A cross-shaped positioning hole 7010 is opened at the bottom of the platform 704. The top of the platform 704 is fixedly connected to the frustum portion 705. The top of the frustum portion 705 is provided with a guide cone portion 706. The outer side of the guide cone portion 706 is fixedly connected to a plurality of positioning side plates 7 distributed in a ring array. 07. Several side openings 708 are opened on the outer side of the frustum part 705, and the side openings 708 correspond to the module 806. The platform 704, the frustum part 705, the guide cone part 706, and the positioning side plate 707 are an integrated structure, wherein the cross-shaped positioning piece 703 cooperates with the cross-shaped positioning opening 7010 to ensure that the frustum part 705 corresponds to the upper mold forming cavity 803. An annular pad 709 is provided on the top of the platform 704 and located on the outer side of the frustum part 705. The annular pad 709 is elastic and adopts a multi-layer structure, for example, it is composed of two layers of annular metal plates and an elastic rubber block located between the upper and lower layers of annular metal plates.
[0028] like Figure 9 The structure of the ring piece 10 is shown in the figure. The ring piece 10 is annular as a whole, and a positioning opening 10b corresponding to the positioning side plate 707 is provided on the inner side. When the positioning opening 10b on the ring piece 10 is aligned with the positioning side plate 707, the air vent 10a on the ring piece 10 corresponds to the side opening 708, that is, corresponds to the module 806.
[0029] When the ring piece 10 is formed, the frustum portion 705 cooperates with the upper mold forming cavity 803 to extrude the ring piece 10, making the ring piece 10 appear trumpet-shaped, and the module 806 is aligned with the air vent 10a and squeezed into the side port 708, so that the air vent 10a is turned inward and formed into a skeleton to ensure that the basin frame has sufficient strength (the opening of the air vent 10a makes the basin frame lighter after forming). The formed basin frame can be sent to the subsequent installation link after polishing and surface treatment.
[0030] In one embodiment, the annular frame 801 includes: an upper flange 8011 and a lower flange 8012 arranged in parallel, the bottom of the upper flange 8011 and the top of the lower flange 8012 are fixedly connected by a plurality of arc-shaped connecting portions 8013, the upper flange 8011, the lower flange 8012 and the arc-shaped connecting portions 8013 are an integrated structure, the upper flange 8011 is fixedly installed on the middle plate 5, the lower flange 8012 is fixedly installed on the top of the annular sleeve 802, and the temperature detection component 807 is arranged on the inner side of the annular frame 801.
[0031] In one embodiment, the annular sleeve 802 includes: an outer straight cylindrical portion 8021, an inner conical cylindrical portion 8022, and an inner straight cylindrical portion 8023, and the outer straight cylindrical portion 8021, the inner conical cylindrical portion 8022, and the inner straight cylindrical portion 8023 are an integrated structure, and the thickness of the inner conical cylindrical portion 8022 is not less than 30 mm, ensuring that the inner conical cylindrical portion 8022 has sufficient structural strength.
[0032] The top of the outer straight cylinder portion 8021 is fixedly connected to the lower flange 8012, and the bottom end of the outer straight cylinder portion 8021 extends inward to form an inner conical cylinder portion 8022. The fixed top of the inner conical cylinder portion 8022 is provided with an inner straight cylinder portion 8023. The top of the inner straight cylinder portion 8023 is sealed with the bottom of the lower flange 8012, and a sealing gasket can be provided between the top of the inner straight cylinder portion 8023 and the bottom of the lower flange 8012.
[0033] An installation opening is provided on the side of the inner conical cylinder portion 8022, and the module 806 is located inside the installation opening. The outer side of the module 806 is sealed with the installation opening, and the side of the module 806 is fixed to the outer straight cylinder portion 8021 by screws, so that the module 806 structure can be stably fixed, and the module 806 can also increase the structural strength of the inner conical cylinder portion 8022, thereby improving the structural strength of the inner conical cylinder portion 8022.
[0034] In one embodiment, the inlet / outlet oil pipe 805 includes: a double-headed connector 8051, an elbow 8052 and a hose 8053. Both ends of the double-headed connector 8051 are threaded structures. The first end of the double-headed connector 8051 is threadedly connected to the outer wall of the annular sleeve 802. The second end of the double-headed connector 8051 is threadedly connected to the elbow 8052. The elbow 8052 is a right-angle elbow +. The end of the elbow 8052 away from the double-headed connector 8051 is connected to the hose 8053, and the hose 8053 is connected to the adjustable refrigeration cycle system.
[0035] In one embodiment, the adjustable refrigeration cycle system includes: an oil tank 11, an adjustable pump assembly 13 and a refrigerator 12. The adjustable pump assembly 13 is preferably a plunger pump or a centrifugal pump, and its flow rate is easy to control. The refrigerator 12 selects condenser refrigeration or semiconductor refrigeration.
[0036] A refrigerator 12 is provided inside the oil tank 11, which is used to cool the cooling oil inside the oil tank 11. The oil inlet of the adjustable pump assembly 13 is connected to the oil tank 11 through a pipeline, and the oil outlet of the adjustable pump assembly 13 is connected to one of the inlet / outlet oil pipes 805 through a pipeline, and the other inlet / outlet oil pipe 805 is connected to the oil tank 11.
[0037] When the adjustable refrigeration cycle system is working, the adjustable pump assembly 13 works to fill the cooling oil inside the oil tank 11 into the annular cooling cavity 804, and the cooling oil cools the module 806 and the annular sleeve 802, and then the cooling oil flows back into the oil tank 11.
[0038] In one embodiment, a protective frame 4 is fixedly installed on the top of the upper base plate 3, and the protective frame 4 is used to protect the main part of the hydraulic assembly 6. A C-shaped cover 9 is fixedly installed on the top of the lower base plate 1. The lower mold assembly 7 is located on the inner side of the C-shaped cover 9. The C-shaped cover 9 is used to cover the lower mold assembly 7. During actual use, lubricating oil needs to be sprayed on the lower mold assembly 7, and the C-shaped cover 9 can prevent the lubricating oil from splashing.
[0039] In one embodiment, the temperature detection assembly 807 includes: a vertical frame, an inclined frame, and an infrared temperature sensor, and the infrared temperature sensor is a non-contact temperature measuring instrument.
[0040] The top of the vertical frame is fixedly connected to the bottom surface of the middle plate 5, the bottom of the vertical frame is fixedly installed with an inclined frame, and the end of the inclined frame is fixedly installed with an infrared temperature sensor. The vertical frame and the inclined frame serve as a direct structure. The vertical frame and the inclined frame are connected by bolts, and the angle of the inclined frame can be adjusted to ensure that the infrared temperature sensor is aligned with the inner wall of the upper mold molding cavity 803.
[0041] In one embodiment, a recess is provided on the side of the upper base plate 3, a positioning frame is provided on the inner side of the recess, the hose 8053 is located on the inner side of the positioning frame, and a baffle member located on the outer side of the positioning frame is fixedly installed on the side of the upper base plate 3. The structure composed of the recess, the positioning frame and the baffle member is used to organize the hose 8053 to prevent the hose 8053 from being entangled or squeezed during the up and down movement of the upper mold assembly 8, thereby preventing the hose 8053 from being damaged.
[0042] While embodiments of the present invention have been shown and described, it will be appreciated 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 defined by the appended claims and their equivalents.
Claims
1. An intelligent temperature-controlled stamping die for producing basin racks, characterized in that: include: A template structure, comprising a lower base plate (1), guide columns (2), an upper base plate (3), and a middle plate (5); a hydraulic assembly (6) is fixedly mounted on the upper base plate (3); and a bottom telescopic end of the hydraulic assembly (6) is fixedly mounted on the middle plate (5); A lower mold assembly (7), wherein the lower mold assembly (7) is fixedly mounted on the top surface of the lower base plate (1); An upper mold assembly (8), wherein the upper mold assembly (8) is fixedly mounted on the bottom of the middle plate (5), and the upper mold assembly (8) cooperates with the lower mold assembly (7); The upper mold assembly (8) comprises: an annular frame (801), an annular sleeve (802), and a module (806); the top of the annular frame (801) is fixedly mounted on the bottom of the middle plate (5); an upper mold forming cavity (803) is provided on the inner side of the annular sleeve (802); an annular cooling cavity (804) is provided on the top of the annular sleeve (802); the top of the annular sleeve (802) is fixedly mounted on the bottom of the annular frame (801); two groups of inlet / outlet oil pipes (805) are fixedly provided on the outer side of the annular sleeve (802); the module (806) is embedded and fixedly mounted on the inner side of the annular sleeve (802); a temperature detection assembly (807) for detecting the inner wall temperature of the upper mold forming cavity (803) is installed on the inner side of the annular frame (801); at least 50% of the module (806) is located inside the annular cooling cavity (804); It also includes an adjustable refrigeration cycle system, wherein the two sets of the inlet / outlet oil pipes (805) are installed in the adjustable refrigeration cycle system, and the temperature detection component (807) is communicatively connected to the controller of the adjustable pump component (13) of the adjustable refrigeration cycle system.
2. The intelligent temperature-controlled stamping die for producing basin frames according to claim 1, characterized in that: The lower base plate (1) and the upper base plate (3) are respectively fixedly mounted on the two ends of the guide column (2); the middle plate (5) is arranged parallel to and between the lower base plate (1) and the upper base plate (3); and the middle plate (5) is slidably fitted with the guide column (2).
3. The intelligent temperature-controlled stamping die for producing basin frames according to claim 1, characterized in that: The lower mold assembly (7) comprises: A connecting disk (701), the top of the connecting disk (701) being fixedly connected to a support platform (702), and the top of the support platform (702) being fixedly connected to a cross-shaped positioning member (703); A table (704), wherein a cross-shaped positioning opening (7010) is provided at the bottom of the table (704), a frustum portion (705) is fixedly connected to the top of the table (704), a guide cone portion (706) is provided at the top of the frustum portion (705), a plurality of positioning side plates (707) distributed in a circular array are fixedly connected to the outside of the guide cone portion (706), a plurality of side openings (708) are provided on the outside of the frustum portion (705), and the side openings (708) correspond to the modules (806), and an annular pad (709) is provided at the top of the table (704) and on the outside of the frustum portion (705).
4. The intelligent temperature-controlled stamping die for producing basin frames according to claim 1, characterized in that: The annular frame (801) comprises an upper flange (8011) and a lower flange (8012) arranged in parallel, wherein the bottom of the upper flange (8011) and the top of the lower flange (8012) are fixedly connected via a plurality of arc-shaped connecting portions (8013); The upper flange (8011) is fixedly mounted to the middle plate (5).
5. The intelligent temperature-controlled stamping die for producing basin frames according to claim 4, characterized in that: The annular sleeve (802) comprises: An outer straight cylinder portion (8021), the top end of the outer straight cylinder portion (8021) is fixedly connected to the lower flange (8012), the bottom end of the outer straight cylinder portion (8021) extends inward to form an inner conical cylinder portion (8022), the fixed top of the inner conical cylinder portion (8022) is provided with an inner straight cylinder portion (8023), and the top of the inner straight cylinder portion (8023) is sealed with the bottom of the lower flange (8012); A mounting opening is provided on the side of the inner conical cylinder portion (8022), the module (806) is located inside the mounting opening, and the side of the module (806) and the outer straight cylinder portion (8021) are fixedly mounted by screws.
6. The intelligent temperature-controlled stamping die for producing basin frames according to claim 5, characterized in that: The oil inlet / outlet pipe (805) comprises: A double-ended connector (8051), wherein a first end of the double-ended connector (8051) is threadedly connected to the outer wall of the annular sleeve (802), a second end of the double-ended connector (8051) is threadedly connected to an elbow (8052), an end of the elbow (8052) away from the double-ended connector (8051) is connected to a hose (8053), and the hose (8053) is connected to an adjustable refrigeration cycle system.
7. The intelligent temperature-controlled stamping die for producing basin frames according to claim 1, characterized in that: The adjustable refrigeration cycle system comprises: An oil tank (11), wherein a refrigerator (12) is provided inside the oil tank (11); An adjustable pump assembly (13), wherein the oil inlet of the adjustable pump assembly (13) is connected to the oil tank (11) via a pipeline, the oil outlet of the adjustable pump assembly (13) is connected to one of the oil inlet / outlet pipes (805) via a pipeline, and the other oil inlet / outlet pipe (805) is connected to the oil tank (11).
8. The intelligent temperature-controlled stamping die for producing basin frames according to claim 1, characterized in that: A protective frame (4) is fixedly mounted on the top of the upper base plate (3), a C-shaped enclosure (9) is fixedly mounted on the top of the lower base plate (1), and the lower mold assembly (7) is located on the inner side of the C-shaped enclosure (9).
9. The intelligent temperature-controlled stamping die for producing basin frames according to claim 1, characterized in that: The temperature detection component (807) includes: A vertical frame, the top of which is fixedly connected to the bottom surface of the middle plate (5), an oblique frame fixedly mounted on the bottom of the vertical frame, and an infrared temperature sensor fixedly mounted on the end of the oblique frame.
10. The intelligent temperature-controlled stamping die for producing basin frames according to claim 6, characterized in that: A notch is provided on the side of the upper base plate (3), a positioning frame is provided on the inner side of the notch, the hose (8053) is located on the inner side of the positioning frame, and a baffle member located on the outer side of the positioning frame is fixedly mounted on the side of the upper base plate (3).