Anode plate stamping equipment with continuous stamping function
By designing a continuous stamping anode plate stamping equipment, the combination of the transverse assembly and the hoisting assembly is used to realize the continuous stamping and fixed-length conveying of the anode plate, solving the problem of low efficiency of existing equipment, improving production efficiency and extending the service life of the hoisting assembly.
Patent Information
- Application Number
- CN202510765528.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-10
- Publication Date
- 2025-07-25
AI Technical Summary
The existing anode plate stamping equipment is inefficient and cannot achieve continuous stamping. The loading and unloading requires additional processing, so the efficiency is not high.
Design a continuous stamping anode plate stamping equipment, including support plate, top plate and pad plate. Through the cooperation of transverse assembly and hoisting assembly, simultaneous operation of dent molding, through-hole molding, finished product slitting and waste material slitting are achieved, and follow-up support assembly is used to reduce stamping pressure and extend the life of hoisting assembly.
The continuous stamping of the anode plate is achieved, the production efficiency is improved, the steps of loading and unloading are reduced, the service life of the hoisting assembly is extended, and the fixed length conveying of the plate is facilitated.
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Figure CN120362331A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of anode plate stamping, and particularly relates to an anode plate stamping device for continuous stamping. Background Art
[0002] An anode plate is a component of a hydrogen fuel cell. For example, as disclosed in CN111987330A, during the production and processing of the anode plate, it is often necessary to stamp the anode plate.
[0003] For example, Chinese Patent CN118143139B, a processing device for fuel cell metal plates, relates to the field of metal plate processing devices. It includes a lower template and an upper template. On the sides of the lower template and the upper template that are close to each other, a lower die base and an upper die base are respectively installed. It should be noted that in the embodiment of the present invention, when the upper template moves downward, the installation bar moves horizontally. The installation bar drives the wiping sleeve to clean the excess oil stains or impurities on the surface of the plate; the installation bar drives the cleaning bar to move, and the cleaning bar moves to clean the die core located in the upper die base through dense cleaning bristles and blow air to cool the die core in the upper die base, which can ensure the cleanliness of the die core and avoid the problem of overheating of the die core during multiple stampings, thereby ensuring the forming quality of the plate. In addition, if the plate deforms, the trigger rod moves up and down, so that the sound alarm is triggered, thereby reminding the staff that there are quality problems with the plate.
[0004] The above structure can only process one by one, and additional processing is required for loading and unloading, resulting in low efficiency and being not conducive to actual use.
[0005] Based on this, the present invention designs an anode plate stamping device for continuous stamping to solve the above problems. Summary of the Invention
[0006] Aiming at the above-mentioned shortcomings of the prior art, the present invention provides an anode plate stamping device for continuous stamping.
[0007] To achieve the above objectives, the present invention is realized through the following technical solutions: An anode plate stamping device for continuous stamping includes a support plate, a top plate, and a backing plate; Two groups of support plates are symmetrically and fixedly installed at the front and rear of the bottom of the backing plate; At the front and rear of the top of the backing plate, there are symmetrically and fixedly connected pressure plates for pressing and limiting the plate, and the inner wall of the pressure plate is in sliding connection with the top and side walls of the plate; A through hole is provided at the discharge end of the backing plate; A jacking assembly for height position adjustment is in sliding connection with the inner wall of the through hole; The bottom of the top plate is fixedly connected with a transverse movement assembly for horizontal position adjustment; The bottom of the transverse movement component is successively connected from right to left with a dent stamping component for dent forming, a punching component for through-hole forming, a slitting component for finished product slitting, and a waste cutter for waste slitting. Moreover, the dent stamping component, the punching component, the slitting component, and the waste cutter are connected to the lifting component; The front and rear side walls of the transverse movement component are symmetrically and fixedly connected with a follow-up support component for supporting the lifting component. Moreover, the follow-up support component is fixedly connected to the support plate. When the follow-up support component is separated from the lifting component, the bottom of the punching component is lower than the bottom of the plate.
[0008] Furthermore, the transverse movement component includes a first guide rail, a mounting top plate, a slider, a second hydraulic press, and mounting side plates. The first guide rails are symmetrically and fixedly installed at the bottom of the top plate. The slider is in limiting sliding connection with the first guide rail. The mounting top plate is fixedly installed at the bottom of the slider. The mounting side plates are fixedly installed on the side walls of the top plate. The second hydraulic press is fixedly installed on the side wall of the mounting side plate. The driving end of the second hydraulic press is fixedly connected to the side wall of the mounting top plate. The dent stamping component, the punching component, the slitting component, and the waste cutter are fixedly connected to the mounting top plate.
[0009] Furthermore, the lifting component includes a movable seat, a guide rod, a connecting seat, a first wedge block, a second wedge block, a first guide rail assembly, a first hydraulic press, and a second guide rail assembly. The guide rail of the second guide rail assembly and the first hydraulic press are fixedly installed on the stamping main machine support table surface. The bottom of the second wedge block is fixedly connected to the slider of the second guide rail assembly. The side wall of the second wedge block is fixedly connected to the driving end of the first hydraulic press. The inclined surface of the second wedge block is fixedly connected to the slider of the first guide rail assembly. The guide rail of the first guide rail assembly is fixedly connected to the inclined surface of the first wedge block. The first wedge block is fixedly installed at the bottom of the movable seat. The guide rods are symmetrically and fixedly installed at the bottom of the movable seat in the front and rear directions. The lower ends of the guide rods are in fitting sliding connection with the linear bearings connected to the connecting seat. Moreover, the connecting seat is fixedly installed on the inner wall of the support plate.
[0010] Furthermore, the movable seat is in fitting sliding connection with the side wall of the through-hole.
[0011] Furthermore, the indentation stamping assembly includes a shunt flow channel stamping punch, two groups of oxygen common channel stamping punches, two groups of water common channel stamping punches, two groups of manifold channel stamping punches, a sealing strip mounting groove stamping punch, and two groups of hydrogen common channel stamping punches. The sealing strip mounting groove stamping punch is fixedly installed at the bottom of the mounting top plate. The two groups of oxygen common channel stamping punches, two groups of water common channel stamping punches, two groups of manifold channel stamping punches, and two groups of hydrogen common channel stamping punches are fixedly installed at equal intervals along the circumferential center of the sealing strip mounting groove stamping punch at the bottom of the mounting top plate. The water common channel stamping punch is located between the oxygen common channel stamping punch and the hydrogen common channel stamping punch. The outer wall of the manifold channel stamping punch is fixedly connected to the inner wall of the hydrogen common channel stamping punch. A shunt flow channel stamping punch is provided between the manifold channel stamping punches, and the manifold channel stamping punch and the shunt flow channel stamping punch are fixedly installed at the bottom of the mounting top plate; The top of the movable seat is provided with a sealing strip mounting groove stamping die that cooperates with the sealing strip mounting groove stamping punch, a manifold channel stamping die that cooperates with the manifold channel stamping punch, a hydrogen common channel stamping die that cooperates with the hydrogen common channel stamping punch, a water common channel stamping die that cooperates with the water common channel stamping punch, an oxygen common channel stamping die that cooperates with the oxygen common channel stamping punch, and a shunt flow channel stamping die that cooperates with the shunt flow channel stamping punch.
[0012] Furthermore, the punching assembly includes two groups of hydrogen common channel punching blocks, two groups of water common channel punching blocks, two groups of oxygen common channel punching blocks, and four groups of mounting hole punching rods. The four groups of mounting hole punching rods are symmetrically fixedly installed at the punching positions of the mounting top plate front and back. The two groups of hydrogen common channel punching blocks, two groups of water common channel punching blocks, and two groups of oxygen common channel punching blocks are all fixedly connected to the bottom of the mounting top plate. One group of water common channel punching blocks on the front side is distributed with oxygen common channel punching blocks and hydrogen common channel punching blocks on its left and right sides, and one group of water common channel punching blocks on the back side is distributed with hydrogen common channel punching blocks and oxygen common channel punching blocks on its left and right sides; The top of the movable seat is provided with a mounting hole profiling hole that cooperates with the mounting hole punching rod, a water common channel profiling hole that cooperates with the water common channel punching block, an oxygen common channel profiling hole that cooperates with the oxygen common channel punching block, and a hydrogen common channel profiling hole that cooperates with the hydrogen common channel punching block.
[0013] Furthermore, the slitting assembly includes a slitting die. The slitting die is fixedly installed at the bottom of the mounting top plate. The movable seat is provided with a slitting hole that cooperates with the slitting die. When the mounting top plate is at the rightmost end, the slitting die is directly above the slitting hole.
[0014] Further, the follow-up support assembly includes a third wedge block, an L-shaped plate, and a spring. A plurality of third wedge blocks are divided into two groups and symmetrically and fixedly installed at the bottom of the front and rear sides of the top plate. A plurality of springs are divided into two groups and symmetrically and fixedly installed on the outer side of the support plate. The outer end of the spring is fixedly connected to the L-shaped plate. An inclined groove for cooperating with the third wedge block is provided at the top of the outer end of the L-shaped plate. After the third wedge block is separated from the inclined groove and the spring is in a natural state, the inner end of the L-shaped plate is the top of the support plate and does not contact the bottom of the movable seat. When the movable seat is at the uppermost end, the bottom of the movable seat is flush with the top of the L-shaped plate.
[0015] Beneficial effects: The transverse movement assembly of the present invention drives the indentation stamping assembly, the punching assembly, the slitting assembly, and the waste cutter to move to the rightmost end, the lifting assembly is driven to the uppermost end, the driving end of the stamping main machine drives the top plate to move downward, the top plate drives the transverse movement assembly to move downward, the top plate drives the follow-up support assembly to move to drive the lifting assembly, and the follow-up support assembly supports the lifting assembly, reducing the stamping pressure on the lifting assembly during stamping and extending the service life of the lifting assembly. The transverse movement assembly continues to drive the indentation stamping assembly, the punching assembly, the slitting assembly, and the waste cutter to cooperate with the lifting assembly for stamping. The indentation stamping assembly performs indentation forming, the punching assembly performs through-hole forming, the slitting assembly performs finished product slitting, and the waste cutter performs waste slitting. Then, the top plate moves upward to drive the follow-up support assembly to separate from the lifting assembly, and the lifting assembly moves downward to the lowermost end. The plate with indentations can be directly translated without upward operation. Then, the top plate drives the bottom of the punching assembly to be lower than the bottom of the plate. Next, the transverse movement assembly drives the punching assembly to move leftward, and the punching assembly pushes the plate to move a distance equal to the length of the waste. Then, the top plate moves upward, and the top plate drives the punching assembly to separate from the plate. By repeating the above operations, indentation forming, through-hole forming, finished product slitting, and waste slitting are performed simultaneously, and the fixed-length conveying of the plate is convenient. Description of the Drawings
[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0017] Figure 1 3D view of a continuous stamping anode plate stamping device of the present invention Figure 1 ; Figure 2 Front view of a continuous stamping anode plate stamping device of the present invention; Figure 3 Schematic diagram of the top plate and its connection structure Figure 1 ; Figure 4Schematic diagram of the top plate and its connection structure Figure 2 ; Figure 5 Schematic diagram of the support plate and its connection structure Figure 1 ; Figure 6 Schematic diagram of the support plate and its connection structure Figure 2 ; Figure 7 Schematic diagram of the support plate and its connection structure Figure 3 。
[0018] The labels in the figure respectively represent: 1. Support plate; 2. Jacking assembly; 21. Movable seat; 22. Guide rod; 23. Connecting seat; 24. First wedge block; 25. Second wedge block; 26. First guide rail assembly; 27. First hydraulic press; 28. Second guide rail assembly; 3. Follow-up support assembly; 31. Third wedge block; 32. L-shaped plate; 33. Oblique groove; 34. Spring; 4. Top plate; 5. Transverse movement assembly; 51. First guide rail; 52. Installation top plate; 53. Slide block; 54. Second hydraulic press; 55. Installation side plate; 6. Pressing plate; 7. Cushion plate; 8. Through hole; 9. Scrap cutter; 10. Slitting assembly; 101. Slitting die; 102. Slitting hole; 11. Punching assembly; 111. Hydrogen common channel punching block; 112. Water common channel punching block; 113. Oxygen common channel punching block; 114. Installation hole punching rod; 115. Installation hole profiling hole; 116. Water common channel profiling hole; 117. Oxygen common channel profiling hole; 118. Hydrogen common channel profiling hole; 12. Dent punching assembly; 121. Shunt flow channel punching punch; 122. Oxygen common channel punching punch; 123. Water common channel punching punch; 124. Confluence channel punching punch; 125. Seal strip installation groove punching punch; 126. Hydrogen common channel punching punch; 127. Confluence channel punching die; 128. Shunt flow channel punching die; 129. Oxygen common channel punching die; 1210. Water common channel punching die; 1211. Hydrogen common channel punching die; 1212. Seal strip installation groove punching die. Specific embodiments
[0019] In order to make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0020] The present invention will be further described below with reference to the embodiments.
[0021] Example 1, please refer to Figures 1-7 , a continuous stamping anode plate stamping device, including a support plate 1, a top plate 4 and a backing plate 7; Two groups of support plates 1 are symmetrically and fixedly installed at the front and rear of the bottom of the backing plate 7; The top of the backing plate 7 is symmetrically and fixedly connected with pressing plates 6 for pressing and limiting the plate, and the inner wall of the pressing plate 6 is in sliding connection with the top and side walls of the plate; A through hole 8 is opened at the discharge end of the backing plate 7; The inner wall of the through hole 8 is in sliding connection with a lifting assembly 2 for height position adjustment; The bottom of the top plate 4 is fixedly connected with a transverse movement assembly 5 for horizontal position adjustment; The bottom of the transverse movement assembly 5 is connected with a dent stamping assembly 12 for dent forming, a punching assembly 11 for through hole forming, a slitting assembly 10 for finished product slitting and a waste cutter 9 for waste slitting from right to left in sequence, and the dent stamping assembly 12, the punching assembly 11, the slitting assembly 10 and the waste cutter 9 are connected with the lifting assembly 2; The front and rear side walls of the transverse movement assembly 5 are symmetrically and fixedly connected with a follow-up support assembly 3 for supporting the lifting assembly 2, and the follow-up support assembly 3 is fixedly connected with the support plate 1. When the follow-up support assembly 3 is separated from the lifting assembly 2, the bottom of the punching assembly 11 is lower than the bottom of the plate.
[0022] The top plate 4 is fixedly installed at the driving end of the stamping main machine.
[0023] The transverse movement component 5 drives the indentation stamping component 12, the punching component 11, the slitting component 10 and the waste cutter 9 to move to the rightmost end, the lifting component 2 is driven to the uppermost end, the driving end of the stamping main machine drives the top plate 4 to move downward, the top plate 4 drives the transverse movement component 5 to move downward, the top plate 4 drives the follower support component 3 to move to drive the lifting component 2, and the follower support component 3 supports the lifting component 2, reducing the stamping pressure on the lifting component 2 during stamping and extending the service life of the lifting component 2. The transverse movement component 5 continues to drive the indentation stamping component 12, the punching component 11, the slitting component 10 and the waste cutter 9 to cooperate with the lifting component 2 for stamping. The indentation stamping component 12 performs indentation forming, the punching component 11 performs through-hole forming, the slitting component 10 performs finished product slitting, and the waste cutter 9 performs waste slitting. Then, the top plate 4 moves upward to drive the follower support component 3 to separate from the lifting component 2, and the lifting component 2 moves downward to the lowermost end. The plate with indentations can be directly translated without upward operation. Then the top plate 4 drives the bottom of the punching component 11 to be lower than the bottom of the plate. Next, the transverse movement component 5 drives the punching component 11 to move leftward, and the punching component 11 pushes the plate to move a distance equal to the length of the waste. Then the top plate 4 moves upward, and the top plate 4 drives the punching component 11 to separate from the plate. Repeating the above operations realizes simultaneous operations of indentation forming, through-hole forming, finished product slitting and waste slitting, and facilitates the fixed-length conveying of the plate.
[0024] The lifting component 2 and the support plate 1 are fixedly installed on the support table surface of the stamping main machine.
[0025] The transverse movement component 5 includes a first guide rail 51, a mounting top plate 52, a slider 53, a second hydraulic press 54 and a mounting side plate 55. The first guide rail 51 is symmetrically and fixedly installed at the bottom of the top plate 4. The slider 53 is in limit sliding connection with the first guide rail 51. The mounting top plate 52 is fixedly installed at the bottom of the slider 53. The mounting side plate 55 is fixedly installed on the side wall of the top plate 4. The second hydraulic press 54 is fixedly installed on the side wall of the mounting side plate 55. The driving end of the second hydraulic press 54 is fixedly connected to the side wall of the mounting top plate 52. The indentation stamping component 12, the punching component 11, the slitting component 10 and the waste cutter 9 are fixedly connected to the mounting top plate 52.
[0026] Before stamping, the second hydraulic press 54 of the transverse movement assembly 5 drives the installation top plate 52 to move. The first guide rail 51 and the slider 53 cooperate to drive the slider 53 to drive the indentation stamping assembly 12, the punching assembly 11, the slitting assembly 10 and the waste cutter 9 to move to the rightmost end, and then stamping is carried out. After stamping, the top plate 4 drives the follow-up support assembly 3 to move upward until the follow-up support assembly 3 is separated from the jacking assembly 2. The top plate 4 drives the bottom of the punching assembly 11 to be lower than the bottom of the plate. Then, the second hydraulic press 54 drives the installation top plate 52 to move. The first guide rail 51 and the slider 53 cooperate to drive the slider 53 to drive the indentation stamping assembly 12, the punching assembly 11, the slitting assembly 10 and the waste cutter 9 to move to the leftmost end. The punching assembly 11 pushes the plate to move a distance equal to the length of the waste, realizing the fixed-length conveying of the plate.
[0027] The jacking assembly 2 includes a movable seat 21, a guide rod 22, a connecting seat 23, a first wedge block 24, a second wedge block 25, a first guide rail assembly 26, a first hydraulic press 27 and a second guide rail assembly 28. The guide rail of the second guide rail assembly 28 and the first hydraulic press 27 are fixedly installed on the stamping host support table. The bottom of the second wedge block 25 is fixedly connected to the slider of the second guide rail assembly 28. The side wall of the second wedge block 25 is fixedly connected to the driving end of the first hydraulic press 27. The inclined surface of the second wedge block 25 is fixedly connected to the slider of the first guide rail assembly 26. The guide rail of the first guide rail assembly 26 is fixedly connected to the inclined surface of the first wedge block 24. The first wedge block 24 is fixedly installed at the bottom of the movable seat 21. The guide rods 22 are symmetrically fixedly installed at the bottom of the movable seat 21 front and back. The lower ends of the guide rods 22 are in sliding fit with the linear bearings connected to the connecting seat 23, and the connecting seat 23 is fixedly installed on the inner wall of the support plate 1. When the movable seat 21 is at the uppermost end, the top of the movable seat 21 is flush with the top of the backing plate 7.
[0028] The movable seat 21 is in sliding fit with the side wall of the through hole 8.
[0029] Before stamping, the first hydraulic press 27 of the jacking assembly 2 drives the second wedge block 25 to move along the second guide rail assembly 28 in a direction away from the first hydraulic press 27. The second wedge block 25 drives the first wedge block 24 to move through the first guide rail assembly 26. Under the cooperation of the guide rod 22 and the connecting seat 23, the first wedge block 24 drives the movable seat 21 to move upward to the uppermost end. After stamping, the first hydraulic press 27 of the jacking assembly 2 drives the second wedge block 25 to move along the second guide rail assembly 28 in the direction of the first hydraulic press 27. The second wedge block 25 drives the first wedge block 24 to move through the first guide rail assembly 26. Under the cooperation of the guide rod 22 and the connecting seat 23, the first wedge block 24 drives the movable seat 21 to move downward to the lowermost end. The plate with indentations can be directly translated without upward operation.
[0030] The indentation stamping assembly 12 includes a shunt flow channel stamping punch 121, two groups of oxygen common channel stamping punches 122, two groups of water common channel stamping punches 123, two groups of manifold channel stamping punches 124, a sealing strip installation groove stamping punch 125 and two groups of hydrogen common channel stamping punches 126. The sealing strip installation groove stamping punch 125 is fixedly installed at the bottom of the installation top plate 52. The two groups of oxygen common channel stamping punches 122, the two groups of water common channel stamping punches 123, the two groups of manifold channel stamping punches 124 and the two groups of hydrogen common channel stamping punches 126 are fixedly installed at equal intervals along the central circumference of the sealing strip installation groove stamping punch 125 at the bottom of the installation top plate 52. And the water common channel stamping punch 123 is located between the oxygen common channel stamping punch 122 and the hydrogen common channel stamping punch 126. The outer wall of the manifold channel stamping punch 124 is fixedly connected to the inner wall of the hydrogen common channel stamping punch 126. There is a shunt flow channel stamping punch 121 between the manifold channel stamping punches 124. And the manifold channel stamping punches 124 and the shunt flow channel stamping punch 121 are fixedly installed at the bottom of the installation top plate 52.
[0031] At the top of the movable seat 21, there is a sealing strip installation groove stamping die cavity 1212 that cooperates with the sealing strip installation groove stamping punch 125, a manifold channel stamping die cavity 127 that cooperates with the manifold channel stamping punch 124, a hydrogen common channel stamping die cavity 1211 that cooperates with the hydrogen common channel stamping punch 126, a water common channel stamping die cavity 1210 that cooperates with the water common channel stamping punch 123, an oxygen common channel stamping die cavity 129 that cooperates with the oxygen common channel stamping punch 122, and a shunt flow channel stamping die cavity 128 that cooperates with the shunt flow channel stamping punch 121.
[0032] The movable seat 21 drives the split flow channel stamping female die 128, the collecting flow channel stamping female die 127, the hydrogen common channel stamping female die 1211, the water common channel stamping female die 1210, the sealing strip installation groove stamping female die 1212 and the oxygen common channel stamping female die 129 to move upward to the uppermost end. The top of the movable seat 21 contacts the top of the plate. The top plate 4 drives the transverse movement assembly 5 to move downward. The transverse movement assembly 5 drives the split flow channel stamping male die 121, the oxygen common channel stamping male die 122, the water common channel stamping male die 123, the collecting flow channel stamping male die 124, the sealing strip installation groove stamping male die 125 and the hydrogen common channel stamping male die 126 to move downward. The sealing strip installation groove stamping male die 125 and the sealing strip installation groove stamping female die 1212 cooperate to form the sealing strip installation groove for installing the sealing strip. The split flow channel stamping male die 121 and the split flow channel stamping female die 128 cooperate to form the split flow channel. The collecting flow channel stamping male die 124 and the collecting flow channel stamping female die 127 cooperate to form the collecting flow channel. The oxygen common channel stamping male die 122 and the oxygen common channel stamping female die 129 cooperate to form the oxygen common channel profiling groove. The water common channel stamping male die 123 and the water common channel stamping female die 1210 cooperate to form the water common channel profiling groove. The hydrogen common channel stamping male die 126 and the hydrogen common channel stamping female die 1211 cooperate to form the hydrogen common channel profiling groove.
[0033] The punching assembly 11 includes two groups of hydrogen common channel punching blocks 111, two groups of water common channel punching blocks 112, two groups of oxygen common channel punching blocks 113 and four groups of mounting hole punching rods 114. The four groups of mounting hole punching rods 114 are symmetrically fixedly installed at the punching positions of the mounting top plate 52 in the front and back. The two groups of hydrogen common channel punching blocks 111, the two groups of water common channel punching blocks 112 and the two groups of oxygen common channel punching blocks 113 are all fixedly connected to the bottom of the mounting top plate 52. One group of water common channel punching blocks 112 on the front side has the oxygen common channel punching blocks 113 and the hydrogen common channel punching blocks 111 distributed on its left and right sides. One group of water common channel punching blocks 112 on the back side has the hydrogen common channel punching blocks 111 and the oxygen common channel punching blocks 113 distributed on its left and right sides.
[0034] The top of the movable seat 21 is provided with a mounting hole profiling hole 115 that cooperates with the mounting hole punching rod 114, a water common channel profiling hole 116 that cooperates with the water common channel punching block 112, an oxygen common channel profiling hole 117 that cooperates with the oxygen common channel punching block 113, and a hydrogen common channel profiling hole 118 that cooperates with the hydrogen common channel punching block 111.
[0035] The movable seat 21 drives the profiling holes 115 of the mounting holes, the profiling holes 116 of the water common channel, the profiling holes 117 of the oxygen common channel, and the profiling holes 118 of the hydrogen common channel to move upward to the uppermost end. The top of the movable seat 21 contacts the bottom of the plate. The top plate 4 drives the transverse movement assembly 5 to move downward. The transverse movement assembly 5 drives the hydrogen common channel punching block 111, the water common channel punching block 112, the oxygen common channel punching block 113, and the mounting hole punching rod 114 to move downward. The mounting hole punching rod 114 cooperates with the profiling hole 115 of the mounting hole to form the mounting hole. The water common channel punching block 112 and the profiling hole 116 of the water common channel punch the bottom of the profiling groove of the water common channel to form the water common channel. The oxygen common channel punching block 113 and the profiling hole 117 of the oxygen common channel cooperate to punch the bottom of the profiling groove of the oxygen common channel to form the oxygen common channel. The hydrogen common channel punching block 111 and the profiling hole 118 of the hydrogen common channel cooperate to punch the bottom of the profiling groove of the hydrogen common channel to form the hydrogen common channel.
[0036] After stamping, the top plate 4 drives the follower support assembly 3 to separate from the lifting assembly 2. And the lower end of the mounting hole punching rod 114 is located in the mounting hole, the water common channel punching block 112 is located in the lower water common channel, the lower end of the oxygen common channel punching block 113 is located in the oxygen common channel, the lower end of the hydrogen common channel punching block 111 is located in the hydrogen common channel. The transverse movement assembly 5 pushes the hydrogen common channel punching block 111, the water common channel punching block 112, the oxygen common channel punching block 113, and the mounting hole punching rod 114 to move leftward. The hydrogen common channel punching block 111, the water common channel punching block 112, the oxygen common channel punching block 113, and the mounting hole punching rod 114 cooperate to drive the plate to move leftward by the length of the waste material, convey the unprocessed part of the plate below the indentation stamping assembly 12, convey the plate processed by the indentation stamping assembly 12 below the punching assembly 11, convey the plate processed by the punching assembly 11 below the cutting assembly 10, and convey the waste material below the waste cutter 9, facilitating the fixed-length conveying of the plate.
[0037] The cutting assembly 10 includes a cutting die 101. The cutting die 101 is fixedly installed at the bottom of the mounting top plate 52. The movable seat 21 is provided with a cutting hole 102 that cooperates with the cutting die 101. When the mounting top plate 52 is located at the rightmost end, the cutting die 101 is located directly above the cutting hole 102. During stamping, the movable seat 21 drives the cutting hole 102 to move upward to the uppermost end. The mounting top plate 52 drives the cutting die 101 of the cutting assembly 10 to move to the rightmost end. The top plate 4 drives the cutting die 101 to move downward. The cutting die 101 and the cutting hole 102 cooperate to punch and separate the formed anode plate, and the finished product is discharged downward from the cutting hole 102.
[0038] The follower support assembly 3 includes a third wedge block 31, an L-shaped plate 32, and a spring 34. A plurality of third wedge blocks 31 are divided into two groups and symmetrically and fixedly installed at the bottom of the front and rear sides of the top plate 4. A plurality of springs 34 are divided into two groups and symmetrically and fixedly installed on the outer side of the support plate 1. The outer end of the spring 34 is fixedly connected to the L-shaped plate 32. An inclined groove 33 for cooperating with the third wedge block 31 is formed at the top of the outer end of the L-shaped plate 32. After the third wedge block 31 is separated from the inclined groove 33 and the spring 34 is in a natural state, the inner end of the L-shaped plate 32 is the top of the support plate 1 and does not contact the bottom of the movable seat 21. When the movable seat 21 is at the uppermost end, the bottom of the movable seat 21 is flush with the top of the L-shaped plate 32; After the third wedge block 31 is separated from the inclined groove 33 and the spring 34 is in a natural state, the inner end of the L-shaped plate 32 is the top of the support plate 1 and does not contact the bottom of the movable seat 21. When the movable seat 21 moves upward to the uppermost end and the top plate 4 moves downward, the top plate 4 drives the third wedge block 31 to move downward. The third wedge block 31 drives the L-shaped plate 32 to move inward through the inclined groove 33. When the L-shaped plate 32 moves to the bottom of the movable seat 21 to support the movable seat 21, and the L-shaped plate 32 moves to the support state, when the top plate 4 continues to move downward, the plane of the upright part of the third wedge block 31 slides along the plane of the upright part of the L-shaped plate 32, so that when the top plate 4 continues to move downward, the L-shaped plate 32 always maintains the support state. Multiple groups of L-shaped plates 32 and support plates 1 cooperate to support the movable seat 21, reducing the pressure on the first hydraulic press 27.
[0039] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some of the technical features; and these modifications or replacements will not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the various embodiments of the present invention.
Claims
1. A continuous stamping anode plate stamping device, comprising a support plate (1), a top plate (4) and a backing plate (7), characterized in that: Two groups of support plates (1) are symmetrically and fixedly installed at the front and back of the bottom of the backing plate (7); At the front and back of the top of the backing plate (7), there are symmetrically and fixedly connected pressure plates (6) for pressing and limiting the sheet, and the inner wall of the pressure plate (6) is in sliding connection with the top and side walls of the sheet; A through hole (8) is provided at the discharge end of the backing plate (7); A jacking assembly (2) for height position adjustment is in sliding connection with the inner wall of the through hole (8); The bottom of the top plate (4) is fixedly connected with a transverse movement assembly (5) for horizontal position adjustment; The bottom of the transverse movement assembly (5) is successively connected with a dent stamping assembly (12) for dent forming, a punching assembly (11) for through hole forming, a slitting assembly (10) for finished product slitting and a waste cutter (9) for waste slitting from right to left, and the dent stamping assembly (12), the punching assembly (11), the slitting assembly (10) and the waste cutter (9) are connected with the jacking assembly (2); The front and rear side walls of the transverse movement assembly (5) are symmetrically and fixedly connected with a follow-up support assembly (3) for supporting the jacking assembly (2), and the follow-up support assembly (3) is fixedly connected with the support plate (1). When the follow-up support assembly (3) is separated from the jacking assembly (2), the bottom of the punching assembly (11) is lower than the bottom of the sheet.
2. The anode plate stamping equipment for continuous stamping according to claim 1, characterized in that, The transverse movement assembly (5) includes a first guide rail (51), a mounting top plate (52), a slider (53), a second hydraulic press (54) and a mounting side plate (55). The first guide rail (51) is symmetrically and fixedly installed at the bottom of the top plate (4). The slider (53) is in limiting sliding connection with the first guide rail (51). The mounting top plate (52) is fixedly installed at the bottom of the slider (53). The mounting side plate (55) is fixedly installed on the side wall of the top plate (4). The second hydraulic press (54) is fixedly installed on the side wall of the mounting side plate (55). The driving end of the second hydraulic press (54) is fixedly connected with the side wall of the mounting top plate (52). The dent stamping assembly (12), the punching assembly (11), the slitting assembly (10) and the waste cutter (9) are fixedly connected with the mounting top plate (52).
3. The anode plate stamping equipment for continuous stamping according to claim 2, characterized in that, The jacking assembly (2) includes a movable seat (21), guide rods (22), a connecting seat (23), a first wedge block (24), a second wedge block (25), a first guide rail assembly (26), a first hydraulic press (27) and a second guide rail assembly (28). The guide rail of the second guide rail assembly (28) and the first hydraulic press (27) are fixedly installed on the stamping host support tabletop. The bottom of the second wedge block (25) is fixedly connected to the slider of the second guide rail assembly (28). The side wall of the second wedge block (25) is fixedly connected to the driving end of the first hydraulic press (27). The inclined surface of the second wedge block (25) is fixedly connected to the slider of the first guide rail assembly (26). The guide rail of the first guide rail assembly (26) is fixedly connected to the inclined surface of the first wedge block (24). The first wedge block (24) is fixedly installed at the bottom of the movable seat (21). The guide rods (22) are symmetrically fixedly installed at the front and rear of the bottom of the movable seat (21). The lower ends of the guide rods (22) are in sliding fit connection with the linear bearings connected to the connecting seat (23), and the connecting seat (23) is fixedly installed on the inner wall of the support plate (1).
4. The continuous stamping anode plate stamping equipment according to claim 3, characterized in that, The movable seat (21) is in sliding fit connection with the side wall of the through hole (8).
5. The continuous stamping anode plate stamping equipment according to claim 4, characterized in that, The indentation stamping assembly (12) includes a shunt flow channel stamping punch (121), two groups of oxygen common channel stamping punches (122), two groups of water common channel stamping punches (123), two groups of manifold channel stamping punches (124), one group of sealing strip installation groove stamping punches (125) and two groups of hydrogen common channel stamping punches (126). The sealing strip installation groove stamping punch (125) is fixedly installed at the bottom of the installation top plate (52). The two groups of oxygen common channel stamping punches (122), the two groups of water common channel stamping punches (123), the two groups of manifold channel stamping punches (124) and the two groups of hydrogen common channel stamping punches (126) are fixedly installed at equal intervals along the circumference of the center of the sealing strip installation groove stamping punch (125) at the bottom of the installation top plate (52). And the water common channel stamping punch (123) is located between the oxygen common channel stamping punch (122) and the hydrogen common channel stamping punch (126). The outer wall of the manifold channel stamping punch (124) is fixedly connected to the inner wall of the hydrogen common channel stamping punch (126). There is a shunt flow channel stamping punch (121) between the manifold channel stamping punches (124), and the manifold channel stamping punches (124) and the shunt flow channel stamping punch (121) are fixedly installed at the bottom of the installation top plate (52); The top of the movable seat (21) is provided with a sealing strip installation concave die (1212) that cooperates with the sealing strip installation convex die (125), a current collection channel concave die (127) that cooperates with the current collection channel convex die (124), a hydrogen common channel concave die (1211) that cooperates with the hydrogen common channel convex die (126), a water common channel concave die (1210) that cooperates with the water common channel convex die (123), an oxygen common channel concave die (129) that cooperates with the oxygen common channel convex die (122), and a shunt channel concave die (128) that cooperates with the shunt channel convex die (121).
6. The continuous stamping anode plate stamping equipment according to claim 5, characterized in that, The punching assembly (11) includes two groups of hydrogen common channel punching blocks (111), two groups of water common channel punching blocks (112), two groups of oxygen common channel punching blocks (113), and four groups of mounting hole punching rods (114). The four groups of mounting hole punching rods (114) are symmetrically fixedly installed at the punching positions on the mounting top plate (52). The two groups of hydrogen common channel punching blocks (111), the two groups of water common channel punching blocks (112), and the two groups of oxygen common channel punching blocks (113) are all fixedly connected to the bottom of the mounting top plate (52). On the left and right sides of the front group of water common channel punching blocks (112), the oxygen common channel punching blocks (113) and the hydrogen common channel punching blocks (111) are distributed. On the left and right sides of the rear group of water common channel punching blocks (112), the hydrogen common channel punching blocks (111) and the oxygen common channel punching blocks (113) are distributed; The top of the movable seat (21) is provided with a mounting hole profiling hole (115) that cooperates with the mounting hole punching rod (114), a water common channel profiling hole (116) that cooperates with the water common channel punching block (112), an oxygen common channel profiling hole (117) that cooperates with the oxygen common channel punching block (113), and a hydrogen common channel profiling hole (118) that cooperates with the hydrogen common channel punching block (111).
7. The anode plate stamping equipment for continuous stamping according to claim 6, characterized in that, The slitting assembly (10) includes a slitting die (101). The slitting die (101) is fixedly installed at the bottom of the mounting top plate (52). The movable seat (21) is provided with a slitting hole (102) that cooperates with the slitting die (101). When the mounting top plate (52) is located at the rightmost end, the slitting die (101) is located directly above the slitting hole (102).
8. The continuous stamping anode plate stamping equipment according to claim 3, characterized in that The follow-up support assembly (3) includes a third wedge block (31), an L-shaped plate (32) and a spring (34). A plurality of third wedge blocks (31) are divided into two groups and symmetrically and fixedly installed at the bottom of the front and rear sides of the top plate (4). A plurality of springs (34) are divided into two groups and symmetrically and fixedly installed on the outer side of the support plate (1). The outer end of the spring (34) is fixedly connected to the L-shaped plate (32). An inclined groove (33) for cooperating with the third wedge block (31) is formed at the top of the outer end of the L-shaped plate (32). After the third wedge block (31) is separated from the inclined groove (33) and the spring (34) is in a natural state, the inner end of the L-shaped plate (32) is the top of the support plate (1) and does not contact the bottom of the movable seat (21). When the movable seat (21) is at the uppermost end, the bottom of the movable seat (21) is flush with the top of the L-shaped plate (32).
Citation Information
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