A socket flange connector base mold

By designing the socket flange connector base mold with a mold mechanism and a collection mechanism, the problem of being unable to achieve equidistant and synchronous stamping and punching in the existing technology is solved, the stamping efficiency is improved, and automatic collection and monitoring of waste are realized to ensure production continuity.

CN116329373BActive Publication Date: 2025-09-23WUHU JINMAO FLUID TECH CO LTD
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Patent Information

Application Number
CN202310258138.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-03-17
Publication Date
2025-09-23
Estimated Expiration
2043-03-17

AI Technical Summary

Technical Problem

The existing socket flange connector base mold cannot achieve equidistant and synchronous punching of any number of holes, resulting in low efficiency of the stamping mold.

Method used

A socket flange connector base mold is designed, which includes a mold mechanism and a collection mechanism. The mold mechanism fixes the copper shell and annular electromagnet through the cooperation of insulating blocks, bolts and slots to prevent them from moving, and controls the fixation of the clamping rod and the position of the punch through the annular electromagnet to achieve equidistant stamping. The collection mechanism realizes automatic collection and monitoring of waste materials through the cooperation of slide slots, limit blocks and magnetic buckles.

Benefits of technology

It realizes synchronous punching of any number of holes at equal distances, improves the utilization efficiency of stamping dies, and prevents waste blockage through automatic collection and monitoring to ensure continuous production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a socket flange connector base mold, which relates to the field of mold technology and includes a mold mechanism, wherein the inner wall bottom of the static mold is equidistantly provided with ten cylindrical holes, the inner wall bottom of the movable mold is provided with a cylindrical groove, a copper shell is provided inside the cylindrical groove, an annular electromagnet is provided inside the copper shell, and the inner wall bottom of the movable mold is equidistantly provided with ten first T-shaped holes, five of which are provided with punches inside, and the inner wall of the cylindrical groove is equidistantly provided with ten clamping holes, five of which are provided with copper sleeves inside, and a clamping rod is fixedly sleeved inside each of the copper sleeves, and a first controller is installed on the surface of the movable mold. By setting the mold mechanism, the present invention can perform equidistant and synchronous stamping and punching operations on any number of holes on the socket flange connector base, thereby effectively improving the utilization efficiency of the stamping mold.
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Description

Technical Field

[0001] The invention relates to the technical field of molds, in particular to a socket flange connector base mold. Background Art

[0002] In the mold industry, various molds and tools are used to obtain the required products by methods such as injection molding, blow molding, extrusion, die casting or forging, smelting, and stamping. They are widely used in blanking, die forging, cold heading, extrusion, powder metallurgy pressing, pressure casting, and compression or injection molding of engineering plastics, rubber, ceramics and other products. The shape of the object is mainly processed by changing the physical state of the molded material. The socket flange connector base is a part with a flange at one end and a socket at the other end. Generally, the stamping and punching of the socket flange connector base are processed with the cooperation of molds.

[0003] Although the existing stamping die for the socket flange connector base can perform punching operations on the socket flange connector base to complete its processing through the cooperation of the stamping machine during actual use, it cannot perform equidistant and synchronous punching operations on any number of holes on the socket flange connector base, which reduces the use efficiency of the stamping die.

[0004] Therefore, it is necessary to propose a novel socket flange connector base mold to solve the above-mentioned problems. Summary of the Invention

[0005] The purpose of the present invention is to provide a socket flange connector base mold to solve the problem that the mold cannot perform equidistant and synchronous punching operations on any number of holes on the socket flange connector base, thereby reducing the efficiency of the stamping mold.

[0006] To achieve the above-mentioned object, the present invention provides the following technical solutions: a socket flange connector base mold, comprising a mold mechanism, wherein the mold mechanism is provided with a collecting mechanism;

[0007] The mold mechanism includes a static mold, a dynamic mold is provided on the top of the static mold, ten cylindrical holes are evenly distributed on the bottom of the inner wall of the static mold, an annular groove is provided on the bottom of the dynamic mold, a cylindrical groove is provided on the bottom of the inner wall of the dynamic mold, a copper shell is provided inside the cylindrical groove, an annular electromagnet is provided inside the copper shell, ten first T-shaped holes are evenly distributed on the bottom of the inner wall of the dynamic mold, a plurality of card slots are evenly distributed on the inner wall of the cylindrical groove, an insulating block is provided inside each of the card slots, five of which are provided with punches, ten card holes are evenly distributed on the inner wall of the cylindrical groove, five of which are provided with copper sleeves, a card rod is fixedly sleeved on the inside of each copper sleeve, a dust cover is installed at the entrance of the cylindrical groove, and a first controller is installed on the surface of the dynamic mold.

[0008] Preferably, the center of each cylindrical hole is on the same vertical line with the center of each first T-shaped hole, the lower side of each insulating block is in contact with the top of the copper shell, and the lower side of each insulating block is in contact with the top of the annular electromagnet, so that the copper shell and the annular electromagnet can be prevented from moving under the cooperation of the insulating block, bolt and slot.

[0009] Preferably, each of the insulating blocks is mounted on the bottom of the inner wall of the cylindrical groove by bolts, one end of each of the copper sleeves is movable through the outer wall of the copper shell, the outer surface of each punch and the inner wall of each first T-shaped hole, one end of each of the clamping rods is in contact with the outer wall of the annular electromagnet, the first controller is electrically connected to the annular electromagnet, and the wire end of the annular electromagnet is movable through the bottom of the dust cover, so that the annular electromagnet can be protected from dust under the action of the dust cover, and at the same time, under the action of the annular electromagnet, all the clamping rods in contact with it can be tightly fixed inside the corresponding clamping holes, and at the same time, with the cooperation of the copper sleeve and the copper shell, the influence of the annular electromagnet on the movable mold can be reduced.

[0010] Preferably, the collection mechanism includes two slide grooves, which are respectively opened on both sides of the inner wall of the static mold. A collection box is slidably connected between the insides of the two slide grooves. A round rod is fixed on the front surface of the static mold, so that the limit block can rotate within a certain range with the cooperation of the round rod and the bearing.

[0011] Preferably, the outer surface of the round rod is rotatably connected to the limit block through a bearing, and the rear surface of the limit block is in contact with the front surface of the collection box. A magnetic buckle is fixed inside the limit block, which can prevent the collection box from moving out from between the two slide grooves under the action of the limit block. At the same time, under the action of the magnetic buckle, the limit block can be moved and then magnetically fixed to the surface of the static mold through the cooperation of magnetic force.

[0012] Preferably, four limit rods are movably passed through the bottom of the inner wall of the collection box, a load-bearing plate is provided inside the collection box, a buffer pad is bonded to the top of the load-bearing plate, and the top ends of the four limit rods are fixed to the bottom of the load-bearing plate. A mounting hole is provided at the bottom of the inner wall of the collection box, which is convenient for the installation of the pressure weighing sensor under the action of the mounting hole. At the same time, under the action of the collection box, the waste punched from the socket flange and the machine base can be collected, and at the same time, under the action of the limit rod, the load-bearing plate can be guaranteed to move vertically.

[0013] Preferably, a pressure weighing sensor is installed inside the mounting hole, and the detection end of the pressure weighing sensor is in contact with the bottom of the load-bearing plate. A second controller is installed on the surface of the static mold, and the second controller is electrically connected to the pressure weighing sensor. A buzzer is installed on the surface of the static mold, and the buzzer is electrically connected to the second controller. With the cooperation of the second controller, the buzzer and the pressure weighing sensor, the amount of waste collected inside the collection box can be monitored at all times to avoid the problem that the waste collected inside the collection box cannot be cleaned up in time, which causes the cylindrical hole to be blocked and affects the stamping and punching operation of the base of the flange connector.

[0014] Preferably, a second T-shaped hole is provided at each of the four top corners of the static mold, and a plurality of limiting holes are fixed on the bottom of the static mold and the top of the dynamic mold, and the centers of the upper and lower limiting holes are on the same vertical line. Mounting grooves are provided at each of the four top corners of the dynamic mold, so that the dynamic mold can be installed on the power mechanism of the punching machine with the cooperation of the mounting grooves and the bolts prepared by the staff. At the same time, with the cooperation of the limiting holes and the upper limiting columns on the punching machine, the vertical movement of the dynamic mold can be ensured, and with the cooperation of the static mold, the punch, the workbench on the punching machine and the cylindrical hole, the base of the socket flange connector can be punched.

[0015] Compared with the prior art, the present invention has the following beneficial effects:

[0016] 1. The present invention, by setting a mold mechanism, can perform equidistant and synchronous stamping and punching operations on the base of the socket flange connector with any number of holes, thereby effectively improving the utilization efficiency of the stamping mold. With the cooperation of the insulating block, the bolt and the slot, the copper shell and the annular electromagnet can be prevented from moving. With the action of the dust cover, the annular electromagnet can be protected from dust. At the same time, with the action of the annular electromagnet, all the clamping rods in contact with it can be tightly fixed inside the corresponding clamping holes. At the same time, with the cooperation of the copper sleeve and the copper shell, the influence of the annular electromagnet on the dynamic mold can be reduced. With the cooperation of the punching machine power mechanism and workbench, static mold, dynamic mold, punch and cylindrical hole prepared by the staff, the base of the socket flange connector can be stamped and punched. Under the action of the first controller, the start and stop of the annular electromagnet can be controlled. With the cooperation of the clamping rod, the clamping hole and the copper sleeve, the punch can be prevented from moving out from the inside of the corresponding first T-hole.

[0017] 2. The present invention can collect the waste punched from the base of the socket flange connector by setting a collection mechanism, and can also intelligently monitor the amount of waste collected in the collection box, effectively avoiding the problem that the waste collected in the collection box cannot be processed in time, causing the cylindrical hole to be blocked, and affecting the punching operation of the base of the socket flange connector. With the cooperation of the round rod and the bearing, the limit block can be rotated within a certain range. Under the action of the limit block, the collection box can be prevented from moving out from between the inside of the two slide grooves. At the same time, under the action of the magnetic buckle, the limit block can be moved and magnetically fixed to the surface of the static mold through the cooperation of the magnetic force. Under the action of the mounting hole, it is convenient to install the pressure weighing sensor. At the same time, under the action of the collection box, the waste punched from the base of the socket flange connector can be collected. At the same time, under the action of the limit rod, the load-bearing plate can be guaranteed to move vertically. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 This is a partial three-dimensional view of a base mold of a socket flange connector according to the present invention as viewed from above;

[0019] Figure 2 This is a three-dimensional diagram of a base mold of a socket flange connector according to the present invention;

[0020] Figure 3 This is a partial three-dimensional view from a top view of a base mold of a socket flange connector according to the present invention;

[0021] Figure 4 This is a partial three-dimensional view of a base mold of a socket flange connector according to the present invention from another angle;

[0022] Figure 5 This is a bottom-up perspective view of a base mold for a socket flange connector according to the present invention;

[0023] Figure 6 This is a schematic diagram of the three-dimensional structure of a punch, a clamping hole, a copper sleeve and a clamping rod of a socket flange connector base mold of the present invention;

[0024] Figure 7 This is a schematic diagram of the three-dimensional structure of a copper sleeve and a clamping rod of a base mold of a socket flange connector according to the present invention;

[0025] Figure 8 It is a partially cutaway stereoscopic view of a socket flange connector base mold of the present invention.

[0026] In the figure: 1. mold mechanism; 101. static mold; 102. dynamic mold; 103. cylindrical hole; 104. annular groove; 105. cylindrical groove; 106. copper shell; 107. annular electromagnet; 108. first T-shaped hole; 109. clamping groove; 110. insulating block; 111. punch; 112. clamping hole; 113. clamping rod; 114. copper sleeve; 115. dust cover; 116. first controller;

[0027] 2. Collection mechanism; 201. Chute; 202. Collection box; 203. Round rod; 204. Limit block; 205. Magnetic buckle; 206. Limit rod; 207. Load-bearing plate; 208. Mounting hole; 209. Pressure weighing sensor; 210. Second controller; 211. Buzzer; 212. Cushion;

[0028] 3. Second T-shaped hole; 4. Limit hole; 5. Mounting slot. Implementation Method

[0029] 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 implementation regulations described are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0030] See also Figure 1 - Figure 8 As shown, the present invention provides a technical solution: a socket flange connector base mold, comprising a mold mechanism 1, on which a collecting mechanism 2 is provided;

[0031] The mold mechanism 1 includes a static mold 101, a movable mold 102 is provided on the top of the static mold 101, and ten cylindrical holes 103 are evenly distributed on the bottom of the inner wall of the static mold 101. An annular groove 104 is provided on the bottom of the movable mold 102. A cylindrical groove 105 is provided on the bottom of the inner wall of the movable mold 102. A copper shell 106 is provided inside the cylindrical groove 105. An annular electromagnet 107 is provided inside the copper shell 106. Ten first T-shaped holes 108 are evenly distributed on the bottom of the inner wall of the movable mold 102. The cylindrical groove 105 is provided with a copper shell 106. The inner wall of the cylindrical groove 105 is provided with multiple card slots 109 at equal intervals, and an insulating block 110 is provided inside each card slot 109, wherein the insides of the five first T-shaped holes 108 are provided with punches 111, and the inner wall of the cylindrical groove 105 is provided with ten card holes 112 at equal intervals, wherein the insides of five card holes 112 are provided with copper sleeves 114, and the inside of each copper sleeve 114 is fixedly sleeved with a card rod 113, a dust cover 115 is installed at the entrance of the cylindrical groove 105, and a first controller 116 is installed on the surface of the movable mold 102.

[0032] according to Figure 3 and Figure 4 As shown, the center of each cylindrical hole 103 is on the same vertical line as the center of each first T-shaped hole 108, the lower side of each insulating block 110 is in contact with the top of the copper shell 106, and the lower side of each insulating block 110 is in contact with the top of the annular electromagnet 107, so that the copper shell 106 and the annular electromagnet 107 can be prevented from moving under the cooperation of the insulating block 110, the bolt and the slot 109.

[0033] according to Figure 2 and Figure 4 - Figure 7 As shown, each insulating block 110 is mounted on the bottom of the inner wall of the cylindrical groove 105 by bolts, one end of each copper sleeve 114 is movable through the outer wall of the copper shell 106, the outer surface of each punch 111 and the inner wall of each first T-shaped hole 108, one end of each clamping rod 113 is in contact with the outer wall of the annular electromagnet 107, the first controller 116 is electrically connected to the annular electromagnet 107, and the wire end of the annular electromagnet 107 is movable through the bottom of the dust cover 115, so that the annular electromagnet 107 can be dust-proofed under the action of the dust cover 115. At the same time, under the action of the annular electromagnet 107, all the clamping rods 113 in contact with it can be tightly fixed inside the corresponding clamping hole 112. At the same time, with the cooperation of the copper sleeve 114 and the copper shell 106, the influence of the annular electromagnet 107 on the movable mold 102 can be reduced.

[0034] according to Figure 1 - Figure 3 、 Figure 5 and Figure 8As shown, the collecting mechanism 2 includes two slide grooves 201, which are respectively opened on both sides of the inner wall of the static mold 101. A collecting box 202 is slidably connected between the insides of the two slide grooves 201. A round rod 203 is fixed to the front surface of the static mold 101, so that the limit block 204 can rotate within a certain range with the cooperation of the round rod 203 and the bearing.

[0035] according to Figure 2 、 Figure 5 and Figure 8 As shown, the outer surface of the round rod 203 is connected to the limit block 204 through a bearing rotation, and the rear surface of the limit block 204 is in contact with the front surface of the collection box 202. A magnetic buckle 205 is fixed inside the limit block 204, which can prevent the collection box 202 from moving out from between the two slide grooves 201 under the action of the limit block 204. At the same time, under the action of the magnetic buckle 205, the limit block 204 can be moved and then magnetically fixed to the surface of the static mold 101 through the cooperation of magnetic force.

[0036] according to Figure 2 、 Figure 5 and Figure 8 As shown, four limiting rods 206 are movably passed through the bottom of the inner wall of the collection box 202, and a load-bearing plate 207 is arranged inside the collection box 202. A buffer pad 212 is bonded to the top of the load-bearing plate 207, and the top ends of the four limiting rods 206 are fixed to the bottom of the load-bearing plate 207. A mounting hole 208 is provided at the bottom of the inner wall of the collection box 202, which facilitates the installation of the pressure weighing sensor 209 under the action of the mounting hole 208. At the same time, under the action of the collection box 202, the waste punched from the socket flange connected to the machine base can be collected, and at the same time, under the action of the limiting rod 206, the load-bearing plate 207 can be guaranteed to move vertically.

[0037] according to Figure 2 、 Figure 3 、 Figure 5 and Figure 8 As shown, a pressure weighing sensor 209 is installed inside the mounting hole 208, and the detection end of the pressure weighing sensor 209 is in contact with the bottom of the load-bearing plate 207. A second controller 210 is installed on the surface of the static mold 101, and the second controller 210 is electrically connected to the pressure weighing sensor 209. A buzzer 211 is installed on the surface of the static mold 101, and the buzzer 211 is electrically connected to the second controller 210. With the cooperation of the second controller 210, the buzzer 211 and the pressure weighing sensor 209, the amount of waste collected inside the collection box 202 can be monitored at all times to avoid the problem that the waste collected inside the collection box 202 cannot be cleaned up in time, which causes the cylindrical hole 103 to be blocked and affects the stamping and punching operation of the base of the flange connector.

[0038] according to Figure 1 - Figure 5 As shown, the four corners of the top of the static mold 101 are each provided with a second T-shaped hole 3, and the bottom of the static mold 101 and the top of the dynamic mold 102 are both fixed with a plurality of limiting holes 4, and the centers of the upper and lower limiting holes 4 are both on the same vertical line, and the four corners of the top of the dynamic mold 102 are each provided with mounting grooves 5, which facilitate the installation of the dynamic mold 102 on the power mechanism of the punching machine with the cooperation of the mounting grooves 5 and the bolts prepared by the staff. At the same time, with the cooperation of the limiting holes 4 and the upper limiting columns on the punching machine, the vertical movement of the dynamic mold 102 can be ensured, and with the cooperation of the static mold 101, the punch 111, the workbench on the punching machine and the cylindrical hole 103, the base of the socket flange connector can be punched.

[0039] The effect achieved by the entire mechanism is: when it is necessary to perform punching operations on the base of the socket flange connector, the dynamic die 102 is first installed on the power mechanism of the punching machine through the cooperation of the bolts and the mounting slots 5 prepared by the staff, and then the static die 101 is installed on the workbench of the punching machine through the cooperation of the bolt rod and the second T-hole 3, and at the same time, the first controller 116 and the second controller 210 are connected to the distribution box used by the punching machine, and at the same time, each two upper and lower limit holes 4 are connected by using multiple limit columns on the punching machine. When they are ready together, the staff can put the socket flange connector base into the interior of the static die 101, and then use the first controller 116 to control the annular electromagnet 107 to close. At the same time, the second controller 210 is started, and the maximum pressure threshold is set, and the maximum threshold is greater than the sum of the weights of the four limit rods 206, the bearing plate 207 and the buffer pad 212. When the arc electromagnet 107 is closed, the magnetic end of the annular electromagnet 107 will not have magnetic force. At this time, all the clamping rods 113 and one end of the annular electromagnet will not be attracted by the annular electromagnet 107. At this time, according to the number of punching holes required for the base of the socket flange connector, the clamping rod 113 with the copper sleeve 114 on the punch 111 that needs to be changed in position is pulled out from the inside of the corresponding clamping hole 112, and then the corresponding punch 111 is taken out from the inside of the corresponding first T-hole 108, and then the punch 111 is moved to the appropriate first T-hole 10 8, and perform position fine-tuning and rotation. When the punch 111 completes the placement operation, the card rod 113 with the copper sleeve 114 is directly inserted from the corresponding card hole 112, and one end of the card rod 113 passes through the interior of the punch 111 and the outer wall of the copper shell 106 until one end of the card rod 113 contacts the surface of the annular electromagnet 107. When the staff adjusts the position and number of the punch 111 according to the number of punching holes required for the base of the socket flange connector, the first controller 116 is directly used to control the annular electromagnet 107 to start. At this time, the outer wall magnetic end of the started annular electromagnet 107 will generate a strong magnetic force, and the annular electromagnet 107 that generates magnetic force will tightly absorb one end of each card rod 113 that contacts it. When all the clamping rods 113 are fixed, the punching machine is directly started at this time. The started punching machine will directly punch the socket flange connector base placed inside the static mold 101 with the cooperation of the limiting hole 4, the limiting column, the static mold 101, the dynamic mold 102, the punch 111 and the cylindrical hole 103. Then the waste punched out from the socket flange connector base will be directly diverted from the corresponding cylindrical hole 103 to the collection box 202. When the socket flange connector base completes the punching operation, the punching machine will drive the dynamic mold 102 to return to its initial position. When the waste falls into the interior of the collection box 202, the impact force of the waste on the load-bearing plate 207 can be reduced under the action of the buffer pad 212.Then the waste material whose force has been unloaded will directly remain on the top of the buffer pad 212. At the same time, the pressure weighing sensor 209 will also detect the gravity brought by the waste material on the buffer pad 212 through the cooperation of the load-bearing plate 207 and the buffer pad 212, and transmit the detected data to the inside of the second controller 210 in the form of an electrical signal. Then the second controller 210 will compare and analyze the received pressure data with the maximum pressure threshold set in advance on the second controller 210. When the pressure data received by the second controller 210 is less than the maximum pressure threshold set in advance by the second controller 210, the second controller 210 will not issue a start command to the buzzer 211. When the pressure data received by the second controller 210 is greater than the maximum pressure threshold set in advance by the second controller 210, the second controller 210 will not issue a start command to the buzzer 211. When the maximum pressure threshold value pre-set by the second controller 210 is reached, the second controller 210 will directly send a start command to the buzzer 211. The activated buzzer 211 will directly sound an alarm prompt, reminding the staff to clean out the waste collected in the collection box 202. When the waste inside the collection box 202 needs to be cleaned out, the round rod 203 is directly used as the rotation axis to rotate the limit block 204. The rotating limit block 204 will directly drive the magnetic buckle 205 to rotate. When the limit block 204 is rotated 90 degrees to the horizontal position, the magnetic buckle 205 will be directly magnetically attracted to the surface of the static mold 101, thus fixing the limit block 204. Then, the collection box 202 can be directly slid out from between the two chutes 201.

[0040] Among them, the first controller 116, the annular electromagnet 107, the pressure weighing sensor 209, the second controller 210 and the buzzer 211 are all existing technologies and will not be explained in detail here.

[0041] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A socket flange connector base mold, characterized by: It comprises a mold mechanism (1), wherein the mold mechanism (1) is provided with a collecting mechanism (2), and the collecting mechanism (2) is used to collect waste material punched from the base of the socket flange connector; The mold mechanism (1) comprises a static mold (101), a dynamic mold (102) is arranged on the top of the static mold (101), ten cylindrical holes (103) are evenly distributed on the bottom of the inner wall of the static mold (101), an annular groove (104) is arranged on the bottom of the dynamic mold (102), a cylindrical groove (105) is arranged on the bottom of the inner wall of the dynamic mold (102), a copper shell (106) is arranged inside the cylindrical groove (105), an annular electromagnet (107) is arranged inside the copper shell (106), and the dynamic mold Ten first T-shaped holes (108) are evenly distributed on the bottom of the inner wall of the tool (102), a plurality of slots (109) are evenly distributed on the inner wall of the cylindrical groove (105), an insulating block (110) is provided inside each of the slots (109), a punch (111) is provided inside five of the first T-shaped holes (108), ten slots (112) are evenly distributed on the inner wall of the cylindrical groove (105), a copper sleeve (114) is provided inside five of the slots (112), and each of the copper sleeves ( 114) are fixedly sleeved with a clamping rod (113), a dust cover (115) is installed at the entrance of the cylindrical groove (105), a first controller (116) is installed on the surface of the movable mold (102), the center of each cylindrical hole (103) is respectively on the same vertical line with the center of each first T-shaped hole (108), the lower side of each insulating block (110) is in contact with the top of the copper shell (106), the lower side of each insulating block (110) is in contact with the top of the annular electromagnet (107), and each The insulating blocks (110) are all mounted on the bottom of the inner wall of the cylindrical groove (105) by bolts, one end of each copper sleeve (114) is movable through the outer wall of the copper shell (106), the outer surface of each punch (111) and the inner wall of each first T-shaped hole (108), one end of each clamping rod (113) is in contact with the outer wall of the annular electromagnet (107), the first controller (116) is electrically connected to the annular electromagnet (107), and the wire end of the annular electromagnet (107) is movable through the bottom of the dust cover (115).

2. The socket flange connector base mold according to claim 1, characterized in that: The collecting mechanism (2) comprises two chutes (201), the two chutes (201) being respectively opened on both sides of the inner wall of the static mold (101), a collecting box (202) being slidably connected between the interiors of the two chutes (201), a round rod (203) being fixed to the front surface of the static mold (101), the outer surface of the round rod (203) being rotatably connected to a limiting block (204) via a bearing, the rear surface of the limiting block (204) being in contact with the front surface of the collecting box (202), and a magnetic buckle (205) being fixed to the interior of the limiting block (204).

3. The socket flange connector base mold according to claim 2, characterized in that: Four limiting rods (206) are movably passed through the bottom of the inner wall of the collection box (202), a load-bearing plate (207) is provided inside the collection box (202), a buffer pad (212) is bonded to the top of the load-bearing plate (207), the top ends of the four limiting rods (206) are fixed to the bottom of the load-bearing plate (207), and a mounting hole (208) is provided at the bottom of the inner wall of the collection box (202).

4. The socket flange connector base mold according to claim 3, characterized in that: A pressure weighing sensor (209) is installed inside the mounting hole (208), and a detection end of the pressure weighing sensor (209) contacts the bottom of the bearing plate (207). A second controller (210) is installed on the surface of the static mold (101), and the second controller (210) is electrically connected to the pressure weighing sensor (209). A buzzer (211) is installed on the surface of the static mold (101), and the buzzer (211) is electrically connected to the second controller (210).

5. The socket flange connector base mold according to claim 1, characterized in that: The four corners of the top of the static mold (101) are each provided with a second T-shaped hole (3), the bottom of the static mold (101) and the top of the movable mold (102) are each fixed with a plurality of limiting holes (4), and the centers of the upper and lower limiting holes (4) are both located on the same vertical line, and the four corners of the top of the movable mold (102) are each provided with a mounting groove (5).

Citation Information

Patent Citations

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