Intelligent temperature control turbine volute thermal forming equipment
Through intelligent temperature-controlled turbine volute thermoforming equipment, intelligent temperature control and efficient cooling are achieved using electric heating wires and spray pipes, which solves the problem of low automation of existing equipment and improves the accuracy and efficiency of turbine volute molding.
Patent Information
- Application Number
- CN202510808116.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-17
- Publication Date
- 2025-07-29
AI Technical Summary
The existing thermoforming equipment is not very automated, requires frequent manual intervention, low production efficiency, difficult to ensure product consistency, and inconvenient temperature control and cooling treatment, resulting in a decrease in the use effect.
An intelligent temperature-controlled turbine volute thermoforming equipment is designed, including an erecting mechanism, a heating mechanism, a temperature-controlled forming mechanism and a cooling mechanism. It uses electric heating wires and spray pipes to achieve intelligent temperature control and efficient cooling, and combines cylinders and cylinder clamps to improve operational convenience and stability.
It realizes efficient temperature control and cooling treatment, improves the accuracy and efficiency of turbine volute molding, and ensures product consistency and operation convenience.
Smart Images

Figure CN120382631A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of thermoforming equipment, and specifically relates to an intelligent temperature-controlled turbine volute thermoforming equipment. Background Technique
[0002] As a key component of a turbocharger, the forming quality of the turbine volute directly affects the performance of the turbocharger. In the traditional thermoforming process of the turbine volute, low temperature control accuracy is a common problem. Too high or too low temperature will cause forming defects in the turbine volute, such as deformation, cracks, etc., affecting product quality and service life.
[0003] In the prior art, such as the "Special Machine for Automatic Forming of Bevel Volute" with the patent application number: CN114210839B, this special machine for automatic forming of bevel volute includes a frame body, a forming die arranged on the frame body, and a control system for controlling the movement of the forming die. The forming die includes an upper die assembly and a lower die assembly arranged on the frame body. The upper die assembly and the lower die assembly are arranged at intervals, and the upper die assembly can move up and down under the control of the control system. A shaping cavity adapted to the shape of the volute is formed inside the lower die assembly. The upper die assembly moves towards the lower die assembly to stamp and shape the volute fixed in the shaping cavity. The lower die assembly of the special machine for automatic forming of bevel volute disclosed in the present invention forms a shaping cavity with the same structure as the volute. By fixing the volute in the shaping cavity and then using the upper die assembly to press downwards to extrude and shape the volute, the volute meets the process requirements, improves its yield rate, has low energy consumption and high efficiency in forming the bevel volute, is pollution-free to the environment, and the outer shape structure of the produced volute more conforms to the process requirements.
[0004] Existing thermoforming equipment often has low automation, requires frequent manual intervention, has low production efficiency, is difficult to ensure product consistency, and is not convenient for high-efficiency temperature control and cooling treatment, resulting in a decline in the use effect. In view of the above problems, an intelligent temperature-controlled turbine volute thermoforming equipment is proposed. Summary of the Invention
[0005] The purpose of the present invention is to provide an intelligent temperature-controlled turbine volute thermoforming equipment to solve the problems in the prior art operation that existing thermoforming equipment often has low automation, requires frequent manual intervention, has low production efficiency, is difficult to ensure product consistency, and is not convenient for high-efficiency temperature control and cooling treatment, resulting in a decline in the use effect.
[0006] To achieve the above object, the present invention provides the following technical solution: An intelligent temperature-controlled turbine volute hot forming device, including an erection mechanism, on which a heating mechanism and a temperature-controlled forming mechanism are arranged. The heating mechanism is arranged on the side of the temperature-controlled forming mechanism, and a cooling mechanism is arranged at the bottom of the erection mechanism. The temperature-controlled forming mechanism includes an upper mold and a lower mold. The lower mold is arranged at the bottom of the upper mold. An embedding notch is opened at the bottom of the lower mold, and an electric heating wire is arranged inside the embedding notch. The cooling mechanism includes a cooling pool. A filter plate is arranged around the top of the cooling pool. One end of the cooling pool is fixedly connected with a right-angle pipe. One end of the right-angle pipe is fixedly connected with a delivery pump. One end of the delivery pump is fixedly connected with a communicating pipe. One end of the communicating pipe is fixedly connected with an equalizing pipe, and a plurality of spray pipes are evenly distributed on the equalizing pipe.
[0007] Preferably, the erection mechanism includes a support plate member. Lifting column rails are symmetrically arranged at the top of the support plate member, and a top support frame is fixedly installed at the top of the lifting column rails.
[0008] Preferably, a lifting adjustment lead screw penetrates through the middle of the top support frame. A lifting adjustment motor is arranged at the bottom of the lifting adjustment lead screw, and a connecting plate is arranged at the bottom of the lifting adjustment motor.
[0009] Preferably, first cylinders are symmetrically arranged on the connecting plate. The output end of the first cylinder is connected with a clamping member. Lifting frame plates are fixedly installed on both sides of the connecting plate. Lifting guide notches are opened on one side of the lifting column rails, and both ends of the lifting frame plates are slidably connected inside the lifting guide notches.
[0010] Preferably, second cylinders are symmetrically arranged on the support plate member. The output end of the second cylinder is connected with a lateral clamping member. Guide plates are symmetrically and fixedly connected to one side of the lateral clamping member, and the guide plates are slidably connected to both sides of the second cylinder.
[0011] Preferably, third cylinders are arranged at both ends of the lateral clamping member, and the output end of the third cylinder is connected with a right-angle clamping member.
[0012] Preferably, the heating mechanism includes a feed inlet. A top cover is arranged at the bottom of the feed inlet. The bottom of the top cover is connected with an outer tank. An inner tank is arranged inside the outer tank. A heating pipe is wound and connected to the outside of the inner tank. A heater is connected to the heating pipe, and the heater is arranged on the side of the outer tank. A discharge port is installed at the bottom of the outer tank.
[0013] Preferably, support members are fixedly connected to both sides of the outer tank body. A sliding seat is fixedly connected to the bottom of the support member. A support frame is slidably mounted on the sliding seat. A material guiding rail groove is fixedly mounted on the top of the support frame. The material guiding rail groove is arranged below the discharge port. A translation lead screw is threadedly connected to the bottom of the support frame. A translation motor is arranged at one end of the translation lead screw.
[0014] Preferably, guiding rail grooves are symmetrically formed in the top of the sliding seat. A bottom support seat is fixedly mounted on the bottom of the sliding seat. The bottoms of the support frames are slidably connected to the bottoms of the guiding rail grooves.
[0015] Preferably, a heating seat is fixedly connected to the bottom of the electric heating wire. An adjustment groove is formed in the top of the support plate member. The heating seat is connected to the inside of the adjustment groove.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. In the present invention, by providing an upper mold and a lower mold and using their mutual cooperation, forming work can be provided. An embedding notch is formed in the bottom of the lower mold, and the inside of the lower mold is heated by cooperating with the electric heating wire and the heating seat, so as to facilitate intelligent temperature control of the blank injected into the lower mold, and it is convenient to perform intelligent regulation and use through the heating seat according to the temperature requirement, effectively improving the forming effect of the turbine volute. The cooling pool is arranged at the bottom to provide support, and the inside stores coolant. The coolant inside can be pumped out through the operation of the delivery pump and the right-angle pipeline, and then transported to the equalizing pipeline through the connecting pipeline for uniform distribution, and then evenly sprayed out through the spraying pipeline. There are two groups of nozzles on the spraying pipeline, thus providing an effective spraying effect, ensuring the use effect, and realizing a high-efficiency cooling effect.
[0017] 2. In the present invention, installation support is provided by the support plate member, and erection is carried out in cooperation with the lifting column rail and the top support frame. The lifting adjustment screw rod is threadedly connected to the top support frame, and the lifting adjustment motor is cooperated to drive the lifting adjustment screw rod to rotate, which is beneficial to controlling the realization of the lifting adjustment function. The connection plate is connected and the function of transmission is realized, so as to realize the function of lifting adjustment. The first cylinder provides the function of lateral telescopic adjustment. The first cylinder is connected to the upper clamping member, which is convenient for providing an effective clamping and locking function, facilitating clamping and locking according to the size of the upper mold, and effectively improving the operation convenience. The lifting frame plate is connected to the connection plate, and both ends are slidably connected to the inner side of the lifting guide groove opened on the lifting column rail, which is convenient for realizing the function of providing guidance while lifting, and is beneficial to improving the lifting stability. The second cylinders are installed on both sides of the support plate member. The second cylinders control the lateral clamping members to perform telescopic adjustment, which is convenient for clamping the lower mold. The guide plate can provide guidance while the lateral clamping members provide telescopic movement. The third cylinder can provide the function of telescopic adjustment for the right-angle clamping members, which is convenient for providing clamping and positioning at the four corners to ensure the operation stability and improve the forming accuracy.
[0018] 3. In the present invention, the feed port is arranged at the top of the top cover. The top cover is installed on the outer tank body, and the feed port is communicated with the inside of the inner tank body. The inner tank body is arranged inside the outer tank body. Heating pipes are arranged between the outer tank body and the inner tank body, and the heater is cooperated to control the heating pipes to heat, which is convenient for melting the blank inside. The discharge port facilitates the discharge function. The support member can support the outer tank body. The sliding seat provides the installation, which is convenient for slidingly installing the support frame inside the guide rail groove to realize translational adjustment. The support frame supports the guide rail groove and is arranged below the discharge port, which is convenient for guiding and conveying the blank. The translational motor drives the translational screw rod to rotate, which is convenient for driving the support frame to realize translational operation inside the guide rail groove. When loading, it is convenient to move the guide rail groove above the lower mold, which is beneficial to providing high-efficiency loading work. After loading is completed, moving back is convenient for continuing the forming work, effectively improving the operation convenience and operation efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 is a three-dimensional view of an intelligent temperature-controlled turbine volute hot forming device of the present invention; Figure 2 is a schematic structural view of another angle of an intelligent temperature-controlled turbine volute hot forming device of the present invention; Figure 3 is a partial sectional structural view of an intelligent temperature-controlled turbine volute hot forming device of the present invention; Figure 4Schematic structural diagram of the frame mechanism of an intelligent temperature-controlled turbine volute hot forming device according to the present invention; Figure 5 According to the present invention Figure 4 Enlarged structural diagram at location A in; Figure 6 Another perspective structural diagram of the frame structure of an intelligent temperature-controlled turbine volute hot forming device according to the present invention; Figure 7 According to the present invention Figure 6 Enlarged structural diagram at location B in; Figure 8 Schematic structural diagram of the temperature control and cooling mechanism of an intelligent temperature-controlled turbine volute hot forming device according to the present invention; Figure 9 According to the present invention Figure 8 Enlarged structural diagram at location C in; Figure 10 Exploded structural diagram of the forming die of an intelligent temperature-controlled turbine volute hot forming device according to the present invention.
[0020] In the figure: 1. Erection mechanism; 101. Support plate member; 102. Lifting column rail; 103. Top support frame; 104. Lifting adjustment screw rod; 105. Lifting adjustment motor; 106. Connecting plate; 107. First cylinder; 108. Clamping member; 109. Lifting frame plate; 110. Lifting guide notch; 111. Second cylinder; 112. Lateral clamping member; 113. Guide plate; 114. Third cylinder; 115. Right-angle clamping member; 2. Heating mechanism; 201. Feed inlet; 202. Top cover; 203. Outer tank body; 204. Inner tank body; 205. Discharge outlet; 206. Heater; 207. Heating pipe; 208. Support member; 209. Sliding seat; 210. Support frame; 211. Guide rail groove for feeding; 212. Translation motor; 213. Translation screw rod; 214. Guide rail groove; 215. Bottom support seat; 3. Temperature control and forming mechanism; 301. Upper die; 302. Lower die; 303. Electric heating wire; 304. Heating seat; 305. Embedded notch; 4. Cooling mechanism; 401. Cooling pool; 402. Filter plate; 403. Right-angle pipe; 404. Delivery pump; 405. Connecting pipe; 406. Equalizing pipe; 407. Spraying pipe. Detailed implementation manners
[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0022] Example 1: Figures 1 - 10 As shown, the present invention provides a technical solution: an intelligent temperature-controlled turbine volute thermoforming equipment, comprising a mounting mechanism 1, a heating mechanism 2 and a temperature-controlled molding mechanism 3 are provided on the mounting mechanism 1, the heating mechanism 2 is arranged on the side of the temperature-controlled molding mechanism 3, a cooling mechanism 4 is provided at the bottom of the mounting mechanism 1, the temperature-controlled molding mechanism 3 comprises an upper mold 301 and a lower mold 302, the lower mold 302 is arranged at the bottom of the upper mold 301, an embedding notch 305 is provided at the bottom of the lower mold 302, an electric heating wire 303 is provided on the inner side of the embedding notch 305, a heating seat 304 is fixedly connected to the bottom of the electric heating wire 303, an adjusting groove is provided on the top of the support plate 101, and the heating seat 304 is connected to the inner side of the adjusting groove; The cooling mechanism 4 includes a cooling pool 401, a filter plate 402 is arranged around the top of the cooling pool 401, one end of the cooling pool 401 is fixedly connected to a right-angle pipe 403, one end of the right-angle pipe 403 is fixedly connected to a conveying pump 404, one end of the conveying pump 404 is fixedly connected to a connecting pipe 405, one end of the connecting pipe 405 is fixedly connected to an equalizing pipe 406, and a number of spray pipes 407 are evenly distributed on the equalizing pipe 406.
[0023] In this embodiment, an upper mold 301 and a lower mold 302 are provided, and their mutual cooperation can provide a molding process. An embedded notch 305 is provided at the bottom of the lower mold 302, which cooperates with an electric heating wire 303 and a heating seat 304 to heat the interior of the lower mold 302, thereby facilitating intelligent temperature control of the blank injected into the lower mold 302. This facilitates intelligent regulation and use through the heating seat 304 according to temperature requirements, effectively improving the turbine volute molding effect. A cooling pool 401 is provided at the bottom to provide support and stores coolant. The coolant inside can be pumped out by a delivery pump 404 working in conjunction with a right-angle pipe 403, and then transported to an equalizing pipe 406 through a connecting pipe 405 for uniform distribution. It is then evenly sprayed through a spray pipe 407. The spray pipe 407 is provided with two sets of nozzles, thereby providing an effective spraying effect and ensuring the use effect. A highly efficient cooling effect is achieved.
[0024] Example 2: Figure 4 , Figure 5 , Figure 6 and Figure 9As shown in the figure, the erection mechanism 1 includes a support plate member 101. At the top of the support plate member 101, lifting column rails 102 are symmetrically arranged. At the top of the lifting column rails 102, a top support frame 103 is fixedly installed. A lifting adjustment screw rod 104 penetrates through the middle of the top support frame 103. At the bottom of the lifting adjustment screw rod 104, a lifting adjustment motor 105 is provided. At the bottom of the lifting adjustment motor 105, a connecting plate 106 is provided. On the connecting plate 106, first cylinders 107 are symmetrically arranged. The output end of the first cylinder 107 is connected to a clamping member 108. At both sides of the connecting plate 106, lifting frame plates 109 are fixedly installed. On one side of the lifting column rail 102, a lifting guide notch 110 is opened. The two ends of the lifting frame plate 109 are slidably connected to the inside of the lifting guide notch 110. On the support plate member 101, second cylinders 111 are symmetrically arranged. The output end of the second cylinder 111 is connected to a lateral clamping member 112. On one side of the lateral clamping member 112, guide plates 113 are symmetrically and fixedly connected. The guide plates 113 are slidably connected to both sides of the second cylinder 111. At both ends of the lateral clamping member 112, third cylinders 114 are provided. The output end of the third cylinder 114 is connected to a right-angle clamping member 115.
[0025] In this embodiment, the support plate member 101 provides installation support, and cooperates with the lifting column rails 102 and the top support frame 103 for erection. The lifting adjustment screw rod 104 is threadedly connected to the top support frame 103, and cooperates with the lifting adjustment motor 105 to drive the lifting adjustment screw rod 104 to rotate, which is beneficial to controlling the lifting adjustment function. The connecting plate 106 is connected and realizes the transmission function, thereby realizing the lifting adjustment function. The first cylinder 107 provides the function of lateral telescopic adjustment. By connecting the first cylinder 107 to the clamping member 108 above, it is convenient to provide an effective clamping and locking function, which is convenient for clamping and locking according to the size of the upper die 301, effectively improving the operation convenience. The lifting frame plate 109 is connected to the connecting plate 106, and both ends are slidably connected to the inside of the lifting guide notch 110 opened on the lifting column rail 102, which is convenient for realizing the lifting and providing guiding functions at the same time, and is beneficial to improving the lifting stability. The second cylinders 111 are installed on both sides of the support plate member 101. By controlling the lateral clamping member 112 to perform telescopic adjustment through the second cylinders 111, it is convenient to clamp the lower die 302. The guide plates 113 can provide guiding functions while the lateral clamping member 112 provides telescopic movement. The third cylinders 114 can provide the function of telescopic adjustment for the right-angle clamping member 115, which is convenient for providing clamping and positioning functions at the four corners to ensure the operation stability and improve the forming accuracy.
[0026] Example 3: As Figures 1 - 3As shown in the figure, the heating mechanism 2 includes a feed inlet 201. At the bottom of the feed inlet 201, there is a top cover 202. The bottom of the top cover 202 is connected to an outer tank 203. Inside the outer tank 203, there is an inner tank 204. An electric heating pipe 207 is wound and connected to the outside of the inner tank 204. A heater 206 is connected to the electric heating pipe 207. The heater 206 is arranged on the side of the outer tank 203. At the bottom of the outer tank 203, there is a discharge port 205. On both sides of the outer tank 203, there are support members 208 fixedly connected. At the bottom of the support members 208, there are sliding seats 209 fixedly connected. A support frame 210 is slidably installed on the sliding seats 209. At the top of the support frame 210, there is a guide rail groove 211 installed. The guide rail groove 211 is arranged below the discharge port 205. At the bottom of the support frame 210, there is a translation screw rod 213 threadedly connected. At one end of the translation screw rod 213, there is a translation motor 212. On the top of the sliding seats 209, there are symmetrically arranged guide rail grooves 214. At the bottom of the sliding seats 209, there is a bottom support seat 215 fixedly installed. The bottom of the support frame 210 is slidably connected to the bottom of the guide rail grooves 214.
[0027] In this embodiment, the feed inlet 201 is arranged at the top of the top cover 202, the top cover 202 is installed on the outer tank 203, and the feed inlet 201 is communicated with the inside of the inner tank 204. The inner tank 204 is arranged inside the outer tank 203. An electric heating pipe 207 is arranged between the outer tank 203 and the inner tank 204, and the heater 206 is used to control the electric heating pipe 207 to heat, which facilitates the melting treatment of the blank inside. The discharge port 205 facilitates the discharging function. The support members 208 can support the outer tank 203. The sliding seats 209 provide installation, which facilitates the sliding installation of the support frame 210 inside the guide rail grooves 214 to achieve translational adjustment. The support frame 210 supports the guide rail groove 211 and is arranged below the discharge port 205, which facilitates the guiding and conveying of the blank. The translation motor 212 drives the translation screw rod 213 to rotate, which facilitates the driving of the support frame 210 to translate inside the guide rail grooves 214. During feeding, the guide rail groove 211 can be moved above the lower die 302, which is conducive to providing high-efficiency feeding work. After feeding is completed and it returns, it is convenient to continue the forming work, effectively improving the operation convenience and operation efficiency.
[0028] In the present invention, when the intelligent temperature-controlled turbine volute hot forming equipment is in use, first, the feeding port 201 is arranged at the top of the top cover 202, the top cover 202 is installed on the outer tank 203, and the feeding port 201 is communicated with the inside of the inner tank 204. The inner tank 204 is arranged inside the outer tank 203. A heating pipe 207 is arranged between the outer tank 203 and the inner tank 204, and the heater 206 is used to control the heating pipe 207 to heat, thus facilitating the melting treatment of the blank inside. The discharge port 205 facilitates the discharging function. The support member 208 can support the outer tank 203. The sliding seat 209 provides installation, which facilitates the sliding installation of the support frame 210 inside the guide rail groove 214 to achieve translational adjustment. The support frame 210 supports the material guiding rail groove 211 and is arranged below the discharge port 205, which facilitates the guiding and conveying of the blank. The translational motor 212 drives the translational lead screw 213 to rotate, which facilitates driving the support frame 210 to achieve translational operation inside the guide rail groove 214. When loading, it is convenient to move the material guiding rail groove 211 above the lower die 302, which is conducive to providing high-efficiency loading work. After loading, moving back is convenient for continuing the forming work, effectively improving the operation convenience and operation efficiency.
[0029] The installation support is provided by the support plate member 101, and it is erected in cooperation with the lifting column rail 102 and the top support frame 103. The lifting adjustment lead screw 104 is threadedly connected with the top support frame 103, and the lifting adjustment motor 105 is used to drive the lifting adjustment lead screw 104 to rotate, which is conducive to controlling the lifting adjustment function. The connection plate 106 is used for connection and transmission, thus realizing the lifting adjustment function. The first cylinder 107 provides the function of lateral telescopic adjustment, and the first cylinder 107 is connected to the upper clamping member 108, which is convenient for providing effective clamping and locking, facilitating clamping and locking according to the size of the upper die 301, and effectively improving the operation convenience. The lifting frame plate 109 is connected with the connection plate 106, and both ends are slidably connected to the inside of the lifting guide groove opening 110 opened on the lifting column rail 102, which is convenient for realizing lifting while providing guidance, and is conducive to improving the lifting stability. The second cylinders 111 are installed on both sides of the support plate member 101. The second cylinders 111 are used to control the lateral clamping members 112 to perform telescopic adjustment, which is convenient for clamping the lower die 302. The guide plate 113 can provide guidance while the lateral clamping members 112 are telescoping. The third cylinder 114 can provide the function of telescopic adjustment for the right-angle clamping member 115, which is convenient for providing clamping and positioning at the four corners to ensure the operation stability and improve the forming accuracy.
[0030] By providing an upper die 301 and a lower die 302 and utilizing their mutual cooperation, forming work can be provided. An embedding notch 305 is formed at the bottom of the lower die 302, and the inside of the lower die 302 is heated by cooperating with an electric heating wire 303 and a heating base 304, thereby facilitating intelligent temperature control of the blank injected into the inside of the lower die 302, facilitating intelligent regulation and use through the heating base 304 according to the temperature requirement, effectively improving the forming effect of the turbine volute. The cooling pool 401 is provided at the bottom for support and stores coolant inside. The coolant inside can be pumped out by the work of a delivery pump 404 cooperating with a right-angle pipe 403, and then the coolant is transported to an equalizing pipe 406 through a connecting pipe 405 for uniform distribution, and then evenly sprayed out through a spraying pipe 407. Two groups of nozzles are provided on the spraying pipe 407, thereby providing an effective spraying effect and ensuring the use effect. An efficient cooling effect is achieved.
[0031] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. An intelligent temperature-controlled turbine volute thermoforming device, comprising a mounting mechanism (1), characterized in that: A heating mechanism (2) and a temperature control forming mechanism (3) are provided on the erection mechanism (1). The heating mechanism (2) is arranged on the side of the temperature control forming mechanism (3). A cooling mechanism (4) is provided at the bottom of the erection mechanism (1). The temperature control forming mechanism (3) includes an upper mold (301) and a lower mold (302). The lower mold (302) is arranged at the bottom of the upper mold (301). An embedding notch (305) is formed at the bottom of the lower mold (302). An electric heating wire (303) is arranged inside the embedding notch (305). The cooling mechanism (4) includes a cooling pool (401). A filter plate (402) is arranged around the top of the cooling pool (401). A right-angle pipe (403) is fixedly connected to one end of the cooling pool (401). A delivery pump (404) is fixedly connected to one end of the right-angle pipe (403). A connecting pipe (405) is fixedly connected to one end of the delivery pump (404). An equalizing pipe (406) is fixedly connected to one end of the connecting pipe (405). A plurality of spray pipes (407) are evenly distributed on the equalizing pipe (406).
2. The intelligent temperature-controlled turbine volute thermoforming equipment according to claim 1, characterized in that: The erection mechanism (1) includes a support plate member (101). Lifting column rails (102) are symmetrically arranged on the top of the support plate member (101). A top support frame (103) is fixedly installed at the top of the lifting column rails (102).
3. The intelligent temperature-controlled turbine volute hot forming equipment according to claim 2, wherein: A lifting adjustment screw rod (104) penetrates through the middle of the top support frame (103). A lifting adjustment motor (105) is arranged at the bottom of the lifting adjustment screw rod (104). A connecting plate (106) is arranged at the bottom of the lifting adjustment motor (105).
4. The intelligent temperature-controlled turbine volute hot forming equipment according to claim 3, wherein: First cylinders (107) are symmetrically arranged on the connecting plate (106). A clamping member (108) is connected to the output end of the first cylinder (107). Lifting frame plates (109) are fixedly installed on both sides of the connecting plate (106). A lifting guide notch (110) is formed on one side of the lifting column rail (102). Both ends of the lifting frame plate (109) are slidably connected inside the lifting guide notch (110).
5. The intelligent temperature-controlled turbine volute hot forming equipment according to claim 4, characterized in that: Second cylinders (111) are symmetrically arranged on the support plate member (101). A lateral clamping member (112) is connected to the output end of the second cylinder (111). Guide plates (113) are symmetrically and fixedly connected to one side of the lateral clamping member (112). The guide plates (113) are slidably connected to both sides of the second cylinder (111).
6. The intelligent temperature-controlled turbine volute hot forming equipment according to claim 5, wherein: Third cylinders (114) are arranged at both ends of the lateral clamping member (112). A right-angle clamping member (115) is connected to the output end of the third cylinder (114).
7. The intelligent temperature-controlled turbine volute hot forming equipment according to claim 1, characterized in that: The heating mechanism (2) comprises a feed port (201), a top cover (202) is provided at the bottom of the feed port (201), an outer tank body (203) is connected to the bottom of the top cover (202), an inner tank body (204) is provided on the inner side of the outer tank body (203), a heating tube (207) is wound around the outer side of the inner tank body (204), a heater (206) is connected to the heating tube (207), and the heater (206) is provided on the side of the outer tank body (203), and a discharge port (205) is installed at the bottom of the outer tank body (203).
8. The intelligent temperature-controlled turbine volute hot forming equipment according to claim 7, characterized in that: Support members (208) are fixedly connected to both sides of the outer tank body (203), a sliding seat (209) is fixedly connected to the bottom of the support member (208), a support frame (210) is slidably mounted on the sliding seat (209), a material guide rail (211) is fixedly mounted on the top of the support frame (210), the material guide rail (211) is arranged below the discharge port (205), a translation screw rod (213) is threadedly connected to the bottom of the support frame (210), and a translation motor (212) is arranged at one end of the translation screw rod (213).
9. The intelligent temperature-controlled turbine volute hot forming device according to claim 8, wherein: The top of the sliding seat (209) is symmetrically provided with a guide rail groove (214), the bottom of the sliding seat (209) is fixedly provided with a bottom support seat (215), and the bottom of the support frame (210) is slidably connected to the bottom of the guide rail groove (214).
10. The intelligent temperature-controlled turbine volute thermoforming equipment according to claim 2, characterized in that: The bottom of the electric heating wire (303) is fixedly connected to a heating seat (304), an adjustment slot is provided on the top of the support plate (101), and the heating seat (304) is connected to the inner side of the adjustment slot.
Citation Information
Patent Citations
A special machine for automatic forming of beveled volute casing
CN114210839B