A water jet cutting device for carbon fiber plate for mold
Patent Information
- Application Number
- CN202211555819.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-12-06
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2042-12-06
AI Technical Summary
针对现有技术的不足,本发明提供了一种模具用碳纤维板水刀切割装置,解决了在使用时往往会伴随着碎屑的产生,并且需要消耗大量的水资源,使用过后的水不能够对其进行很好的利用,造成了物件原材料以及水资源的浪费的问题
(一)、该模具用碳纤维板水刀切割装置,当过滤板上的碎屑重量达到一定程度时会使得触发机构启动使得过滤板振动,由于过滤板上碎屑的重量在不断地增大,进而能够使得闭合机构打开,从而振动使得过滤板上的碎屑通过闭合机构进入到收集机构的内部进行处理,节约了水资源以及原材料,从而节约了物件的制作成本。
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Figure CN115890821B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of waterjet cutting device technology, specifically a waterjet cutting device for carbon fiber plates used in molds. Background Technology
[0002] Waterjet cutting machines are cutting devices that use ultra-high pressure water jets for cold cutting. They mainly consist of a high-pressure pump, a CNC machining platform, a jet cutting head, a sand supply system, and a cooling system. Waterjet cutting machines have a wide range of applications, from metal materials to non-metal materials, from natural materials to artificial materials, and from food to daily necessities. They can basically cut almost anything and are known as "universal cutting machines".
[0003] Existing waterjet cutting devices for carbon fiber plates in molds often generate debris during use and consume a large amount of water. The water used after the cutting process cannot be effectively utilized, resulting in a waste of both raw materials and water resources. Summary of the Invention
[0004] (a) Technical problems to be solved To address the shortcomings of existing technologies, this invention provides a waterjet cutting device for carbon fiber plates used in molds. This device solves the problems of waste caused by the generation of debris during use, the consumption of large amounts of water, and the inability to effectively utilize the water after use, resulting in the waste of both raw materials and water resources.
[0005] (II) Technical Solution To achieve the above objectives, the present invention provides the following technical solution: a waterjet cutting device for carbon fiber plates used in molds, comprising a main body, a mounting frame fixedly connected to the top of the main body, a waterjet gun slidably connected to the bottom of the mounting frame, a fixing mechanism fixedly connected to both sides of the top of the main body, a recycling mechanism fixedly connected inside the main body, and a collection groove fixedly connected to the bottom of the main body. The recycling mechanism includes a groove located at the top of the main body, a filter plate rotatably connected to both sides inside the groove, a triggering mechanism fixedly connected between the bottom of the filter plate and the inner wall of the groove, a closing mechanism fixedly connected to one side of the filter plate, and a collection mechanism fixedly connected inside the groove, with the collection mechanism located at the bottom of the closing mechanism. When the weight of the debris on the filter plate reaches a certain level, the triggering mechanism is activated, causing the filter plate to vibrate. As the weight of the debris on the filter plate continuously increases, the closing mechanism opens, allowing the vibration to allow the debris on the filter plate to pass through the closing mechanism and enter the collection mechanism for processing.
[0006] Preferably, a water collection chamber is provided inside the body and on both sides of the groove. A through hole is provided between the water collection chamber and the groove. A rotary joint is rotatably connected inside the body and on the front of the collection mechanism. One end of the rotary joint is connected to a water supply pipe. The two ends of the water supply pipe pass through the water collection chambers on both sides of the body. The filter plate filters the water and it enters the groove and then enters the water collection chamber through the through hole for centralized recycling. After the debris and the water adhering to the debris are separated in the collection mechanism, the separated water enters the water collection chamber through the water supply pipe.
[0007] Preferably, the triggering mechanism includes a slide groove formed on the inner wall of the groove. A slider is fixedly connected to one side of the filter plate, and a mounting plate is fixedly connected to the inner wall of the groove. A switch is fixedly connected to the top side of the mounting plate. As debris accumulates on the filter plate, it presses down on one side of the filter plate, causing the slider on one side of the filter plate to slide downward inside the slide groove until it reaches the switch above the mounting plate, thereby triggering the switch.
[0008] Preferably, the filter plate and the mounting plate are elastically connected together by an elastic element. A rotating rod is rotatably connected to the other side of the top of the mounting plate. A fixed rod is fixedly connected to the bottom of the filter plate, and the fixed rod is located at the top of the rotating rod. When the switch is triggered, the motor drives the rotating rod to rotate. The rotation of the rotating rod causes the fixed rod on the filter plate to move up and down, thereby causing the filter plate to vibrate by moving up and down.
[0009] Preferably, the closing mechanism includes an opening and closing plate, which is rotatably connected to the inside of the groove and located on one side of the filter plate. A push rod is fixedly connected to one side of the opening and closing plate, and a push rod is fixedly connected to one side of the filter plate. The push rod pushes the push rod to move, thereby causing the push rod to drive the opening and closing plate to slide. The gap between the two opening and closing plates determines whether the debris can pass through and enter the collection mechanism.
[0010] Preferably, a receiving groove is provided on one side of the filter plate, and a sliding groove is provided on the inner surface of the groove. The opening and closing plate is slidably connected to the inside of the sliding groove. A return spring is elastically connected inside the sliding groove, and one end of the return spring is elastically connected to the surface of the opening and closing plate. When the debris above the filter plate presses the filter plate downward, the push rod on one side of the filter plate pushes the push rod, thereby driving the opening and closing plate to slide through the sliding groove. During the sliding process, the gap between the two opening and closing plates becomes larger and larger, so that the debris can enter the collection mechanism.
[0011] Preferably, the collection mechanism includes a collection shell, an absorption roller is rotatably connected inside the collection shell, a slag discharge pipe is pipe-connected to the bottom of the collection shell, the lower end of the slag discharge pipe penetrates the bottom wall of the main body and extends into the inside of the collection tank, and water guide plates are fixedly connected to both sides of the collection shell. When the debris enters the collection mechanism through the closing mechanism, the debris with moisture first falls into the inside of the collection shell, where the absorption roller absorbs the moisture remaining on the surface of the debris. Then, the debris enters the collection tank through the slag discharge pipe for centralized collection and recycling. The water absorbed by the absorption roller enters the inside of the water collection chamber through the water supply pipe for recycling.
[0012] Preferably, the absorption roller includes a rotating shaft, and a water pipe is fixedly connected to the surface of the rotating shaft. The number of water pipes is set to multiple. A roller is provided on the outside of the rotating shaft, and the inner surface of the roller is fixedly connected to one end of the water pipe. Water in the roller is transferred to the rotating shaft through the water pipe, and finally the water in the rotating shaft enters the interior of the water collection chamber through the water supply pipe.
[0013] Preferably, a water-absorbing column is fixedly connected to the outer surface of the roller, and a cavity is opened inside the rotating shaft. One end of the rotating shaft is rotatably connected to a rotary joint, and a negative pressure device is fixedly connected inside the cavity. When the absorption roller absorbs the water remaining on the surface of the debris, the water on the surface is first absorbed by the water-absorbing column, and then the water enters the inside of the roller. Due to the action of the negative pressure device, the water inside the roller enters the cavity of the rotating shaft through the water pipe. The water in the cavity enters the water collection cavity through the rotary joint and the water supply pipe for recycling.
[0014] Preferably, the absorbent column comprises a porous column, with absorbent cotton fixedly connected to its surface. A compression ring is slidably connected to the surface of the porous column, located outside the absorbent cotton. A counterweight is fixedly connected to the outer surface of the compression ring. The absorbent cotton absorbs moisture from the debris. When the rotating shaft drives the roller to rotate, the absorbent column also rotates. Due to the continuous rotation of the absorbent column, the compression ring continuously slides on the surface of the porous column, thus squeezing the absorbent cotton. This allows moisture from the absorbent cotton to enter the interior of the porous column and then the interior of the roller through the holes in the porous column. The counterweight further facilitates the smooth sliding of the compression ring on the surface of the porous column.
[0015] (III) Beneficial Effects This invention provides a waterjet cutting device for carbon fiber plates used in molds. It has the following advantages: (i) The mold uses a carbon fiber plate water jet cutting device. When the weight of the debris on the filter plate reaches a certain level, the triggering mechanism will be activated to make the filter plate vibrate. As the weight of the debris on the filter plate continues to increase, the closing mechanism will be opened. The vibration will cause the debris on the filter plate to enter the collection mechanism through the closing mechanism for processing, saving water resources and raw materials, thereby saving the production cost of the object.
[0016] (ii) The mold uses a carbon fiber plate water jet cutting device. As the debris on the filter plate accumulates, it presses down on one side of the filter plate, causing the slider on one side of the filter plate to slide down inside the groove until it reaches the switch above the mounting plate. This triggers the switch, which in turn causes the motor to rotate the rotating rod. The rotation of the rotating rod moves the fixed rod on the filter plate up and down, causing the filter plate to vibrate. This allows the debris on the filter plate to fall quickly into the collection mechanism, improving collection efficiency.
[0017] (III) The mold uses a carbon fiber plate water jet cutting device. When the debris above the filter plate presses down on the filter plate, the push rod on one side of the filter plate pushes the push rod, which in turn drives the opening and closing plate to slide through the sliding groove. During the sliding process, the gap between the two opening and closing plates becomes larger and larger, allowing the debris to enter the collection mechanism. The receiving groove can accommodate the position change of the push rod. When the weight of the debris is insufficient to make the opening and closing plate slide, the opening and closing plate returns to its original position under the action of the return spring, thus sealing the gap between the two opening and closing plates. The debris on the filter plate cannot fall into the collection mechanism, achieving the purpose of automatically opening and closing the closing mechanism according to the amount of debris. The automation level of the device is improved.
[0018] (iv) The mold uses a carbon fiber plate waterjet cutting device. The absorber roller absorbs the residual moisture on the surface of the slag. Then the slag enters the collection tank through the slag discharge pipe for centralized collection and recycling. The water absorbed by the absorber roller enters the water collection chamber through the water supply pipe for recycling. When the absorber roller absorbs the residual water on the surface of the slag, it first absorbs the moisture on the surface through the water suction column. Then the moisture enters the inside of the roller. The water inside the roller enters the cavity of the rotating shaft through the water supply pipe due to the negative pressure. The water in the cavity enters the water collection chamber through the rotary joint and the water supply pipe for recycling. This can collect and utilize the slag, save resources, and reduce the processing cost of the object.
[0019] (v) The mold uses a carbon fiber plate water jet cutting device. The absorbent cotton continuously absorbs the moisture on the debris through the porous column, thereby separating the moisture on the surface of the debris from the debris. This makes the surface of the debris drier and prevents moisture from eroding the debris due to long-term accumulation. This improves the recycling quality of the debris and makes the subsequent recycling of the debris more effective. It achieves the purpose of energy saving and environmental protection and improves the utilization rate of debris recycling.
[0020] (vi) The carbon fiber plate waterjet cutting device of the mold drives the roller to rotate through the rotating shaft, and the water-absorbing column also rotates. Due to the continuous rotation of the water-absorbing column, the extrusion ring slides continuously on the surface of the porous column, thereby extruding the water-absorbing cotton and allowing the water on the water-absorbing cotton to enter the interior of the porous column and the interior of the roller through the holes on the porous column. This allows the water on the surface of the debris to be recycled and reused, saving a lot of water resources. The action of the counterweight makes the extrusion ring slide more smoothly on the surface of the porous column. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the recycling mechanism of the present invention; Figure 3 This is a schematic diagram of the triggering mechanism of the present invention; Figure 4 This is a schematic diagram of the closing mechanism of the present invention; Figure 5 This is a schematic diagram of the collection mechanism of the present invention; Figure 6 This is a schematic diagram of the structure of the absorption roller of the present invention; Figure 7 This is a schematic diagram of the water-absorbing column of the present invention.
[0022] In the diagram: 1. Main body; 2. Mounting bracket; 3. Water jet gun; 4. Fixing mechanism; 5. Recycling mechanism; 51. Groove; 52. Filter plate; 53. Triggering mechanism; 531. Slide groove; 532. Slider; 533. Mounting plate; 534. Switch; 535. Elastic element; 536. Rotating rod; 537. Fixing rod; 54. Closing mechanism; 541. Opening and closing plate; 542. Push rod; 543. Push rod; 544. Receiving groove; 545. Sliding groove; 54 6. Return spring; 55. Collection mechanism; 551. Collection shell; 552. Absorption roller; 5521. Rotating shaft; 5522. Water pipe; 5523. Roller; 5524. Water suction column; 55241. Porous column; 55242. Absorbent cotton; 55243. Squeezing ring; 55244. Counterweight; 5525. Negative pressure device; 553. Slag discharge pipe; 554. Water guide plate; 56. Water collection chamber; 57. Rotary joint; 58. Water supply pipe; 6. Collection tank. Detailed Implementation
[0023] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0024] See Figure 1-7 This invention provides a technical solution: a waterjet cutting device for carbon fiber plates in molds, comprising a body 1, a mounting bracket 2 fixedly connected to the top of the body 1, a waterjet gun 3 slidably connected to the bottom of the mounting bracket 2, fixing mechanisms 4 fixedly connected to both sides of the top of the body 1, a recycling mechanism 5 fixedly connected inside the body 1, and a collection trough fixedly connected to the bottom of the body 1. The recycling mechanism 5 includes a groove 51, which is located on the top of the body 1. Filter plates 52 are rotatably connected to both sides of the inside of the groove 51. A triggering mechanism 53 is fixedly connected between the bottom of the filter plates 52 and the inner wall of the groove 51. A closing mechanism 54 is fixedly connected to one side of the filter plates 52. A collection mechanism 55 is fixedly connected inside the groove 51. The collecting mechanism 55 is located at the bottom of the closing mechanism 54. Specifically, the object to be cut is fixed by the fixing mechanism 4, and the object is cut by the water gun blade at the bottom of the mounting bracket 2. The water and debris during the cutting process are recycled by the recycling mechanism 5, saving water resources and raw materials, thereby saving the production cost of the object. When the weight of the debris on the filter plate 52 reaches a certain level, the triggering mechanism 53 will be activated to make the filter plate 52 vibrate. As the weight of the debris on the filter plate 52 continues to increase, the closing mechanism 54 can be opened, and the vibration will cause the debris on the filter plate 52 to enter the interior of the collecting mechanism 55 for processing through the closing mechanism 54.
[0025] The main body 1 has water collection chambers 56 on both sides of the groove 51 inside the main body 1. A through hole is provided between the water collection chambers 56 and the groove 51. A rotary joint 57 is rotatably connected to the front of the collection mechanism 55 inside the main body 1. One end of the rotary joint 57 is connected to a water supply pipe 58. The two ends of the water supply pipe 58 pass through the water collection chambers 56 on both sides of the main body 1. Specifically, the filter plate 52 filters the water and then it enters the groove 51 and enters the water collection chamber 56 through the through hole for centralized recycling. After the debris and the water adhering to the debris are separated in the collection mechanism 55, the separated water enters the water collection chamber 56 through the water supply pipe 58.
[0026] The triggering mechanism 53 includes a slide groove 531, which is formed on the inner wall of the groove 51. A slider 532 is fixedly connected to one side of the filter plate 52. A mounting plate 533 is fixedly connected to the inner wall of the groove 51. A switch 534 is fixedly connected to the top side of the mounting plate 533. Specifically, when more and more debris accumulates on the filter plate 52, it will press down on one side of the filter plate 52 and move downward. As a result, the slider 532 on one side of the filter plate 52 slides downward inside the slide groove 531 until it moves to the switch 534 above the mounting plate 533, thereby triggering the switch 534.
[0027] The filter plate 52 and the mounting plate 533 are elastically connected by an elastic element 535. A rotating rod 536 is rotatably connected to the other side of the top of the mounting plate 533. A fixing rod 537 is fixedly connected to the bottom of the filter plate 52, and the fixing rod 537 is located on top of the rotating rod 536. Specifically, the triggering of the switch 534 causes the motor to drive the rotating rod 536 to rotate. The rotation of the rotating rod 536 causes the fixing rod 537 on the filter plate 52 to move up and down, thereby causing the filter plate 52 to vibrate. This allows the debris above the filter plate 52 to be vibrated to the closing mechanism 54 and fall into the collection mechanism 55. When the amount of debris above the filter plate 52 is small, the elastic element 535 causes the filter plate 52 to return to its original position, and the closing mechanism 54 closes, preventing the debris from falling into the collection mechanism 55.
[0028] The closing mechanism 54 includes an opening and closing plate 541, which is rotatably connected to the inside of the groove 51 and is located on one side of the filter plate 52. A push rod 542 is fixedly connected to one side of the opening and closing plate 541, and a push rod 543 is fixedly connected to one side of the filter plate 52. Specifically, the push rod 543 pushes the push rod 542 to move, thereby causing the push rod 542 to drive the opening and closing plate 541 to slide. The gap between the two opening and closing plates 541 determines whether the debris can pass through and enter the collection mechanism 55.
[0029] The filter plate 52 has a receiving groove 544 on one side, and a sliding groove 545 is formed on the inner surface of the groove 51. The opening and closing plate 541 is slidably connected to the inside of the sliding groove 545. A return spring 546 is elastically connected inside the sliding groove 545, and one end of the return spring 546 is elastically connected to the surface of the opening and closing plate 541. Specifically, when the debris above the filter plate 52 presses the filter plate 52 downward, the push rod 543 on one side of the filter plate 52 pushes the push rod 542, thereby driving the opening and closing plate 541. The filter plate 52 slides through the sliding groove 545. During the sliding process, the gap between the two opening and closing plates 541 on both sides becomes larger and larger, allowing the debris to enter the collection mechanism 55. The receiving groove 544 can accommodate the position change of the push rod 542. When the weight of the debris is insufficient to make the opening and closing plates 541 slide, the opening and closing plates 541 return to their original position under the action of the return spring 546, thereby sealing the gap between the two opening and closing plates 541, and preventing the debris on the filter plate 52 from falling into the collection mechanism 55.
[0030] The collection mechanism 55 includes a collection shell 551, an absorption roller 552 rotatably connected inside the collection shell 551, a slag discharge pipe 553 connected to the bottom of the collection shell 551, the lower end of the slag discharge pipe 553 penetrating the bottom wall of the main body 1 and extending into the inside of the collection tank, and water guide plates 554 fixedly connected to both sides of the collection shell 551. Specifically, when the debris enters the collection mechanism 55 through the closing mechanism 54, the debris with moisture first falls into the inside of the collection shell 551, and the absorption roller 552 absorbs the moisture remaining on the surface of the debris. Then the debris enters the collection tank through the slag discharge pipe 553 for centralized collection and recycling. The water absorbed by the absorption roller 552 enters the inside of the water collection chamber 56 through the water supply pipe 58 for recycling.
[0031] The absorption roller 552 includes a rotating shaft 5521, and a water pipe 5522 is fixedly connected to the surface of the rotating shaft 5521. The number of water pipes 5522 is set to multiple. A roller 5523 is provided on the outside of the rotating shaft 5521, and the inner surface of the roller 5523 is fixedly connected to one end of the water pipe 5522. Specifically, the water in the roller 5523 is transferred to the rotating shaft 5521 through the water pipe 5522. Finally, the water in the rotating shaft 5521 enters the interior of the water collection chamber 56 through the water delivery pipe 58.
[0032] The outer surface of the roller 5523 is fixedly connected to a water-absorbing column 5524, and the inside of the rotating shaft 5521 is provided with a cavity. One end of the rotating shaft 5521 is rotatably connected to the rotary joint 57, and a negative pressure device 5525 is fixedly connected inside the cavity. Specifically, when the absorption roller 552 absorbs the water remaining on the surface of the debris, it first absorbs the water on its surface through the water-absorbing column 5524, and then the water enters the inside of the roller 5523. Due to the action of the negative pressure device 5525, the water inside the roller 5523 enters the cavity of the rotating shaft 5521 through the water pipe 5522. The water in the cavity enters the water collection cavity 56 through the rotary joint 57 and the water supply pipe 58 for recycling.
[0033] The absorbent column 5524 includes a porous column 55241, on the surface of which absorbent cotton 55242 is fixedly connected. A squeezing ring 55243 is slidably connected to the surface of the porous column 55241. The squeezing ring 55243 is located outside the absorbent cotton 55242, and a counterweight 55244 is fixedly connected to the outer surface of the squeezing ring 55243. Specifically, the absorbent cotton 55242 absorbs the moisture from the debris. When the rotating shaft 5521 drives the roller 5523 to rotate, the absorbent column 5524 also rotates. Due to the continuous rotation of the absorbent column 5524, the squeezing ring 55243 slides continuously on the surface of the porous column 55241, thereby squeezing the absorbent cotton 55242. The water on the absorbent cotton 55242 enters the interior of the porous column 55241 through the holes in the porous column 55241 and then enters the interior of the roller 5523. The action of the counterweight 55244 makes the compression ring 55243 slide more smoothly on the surface of the porous column 55241.
[0034] During operation, the object to be cut is fixed by the fixing mechanism 4, and the object is cut by the water gun blade at the bottom of the mounting bracket 2. The water and debris during the cutting process are recycled by the recycling mechanism 5, saving water resources and raw materials, thereby reducing the production cost of the object. When the weight of the debris on the filter plate 52 reaches a certain level, the trigger mechanism 53 is activated, causing the filter plate 52 to vibrate. As the weight of the debris on the filter plate 52 continuously increases, the closing mechanism 54 is opened, and the vibration causes the debris on the filter plate 52 to enter the collection mechanism 55 for processing through the closing mechanism 54. After the filter plate 52 filters the water, it enters the groove 51 and then enters the water collection chamber 56 through the through hole for centralized recycling. After the debris and water adhering to it are separated in the collection mechanism 55, the separated water enters the water collection chamber 56 through the water supply pipe 58. As more and more debris accumulates on the filter plate 52, it presses down on one side of the filter plate 52, causing the slider 532 on one side of the filter plate 52 to slide downward inside the slide groove 531 until it reaches the switch 534 above the mounting plate 533. This triggers the switch 534, which in turn causes the motor to drive the rotating rod 536 to rotate. The rotation of the rotating rod 536 moves the fixed rod 537 on the filter plate 52 up and down, causing the filter plate 52 to vibrate. This vibration causes the debris above the filter plate 52 to be vibrated to the closing mechanism 54 and fall down. Inside the collection mechanism 55, when the amount of debris above the filter plate 52 is small, the elastic element 535 causes the filter plate 52 to return to its original position, and the closing mechanism 54 closes, preventing debris from falling into the collection mechanism 55. The push rod 543 pushes the push rod 542, causing the push rod 542 to slide the opening and closing plate 541. The gap between the two opening and closing plates 541 determines whether debris can pass through and enter the collection mechanism 55. When the debris above the filter plate 52 presses down on it, the push rod 543 on one side of the filter plate 52 pushes the push rod 542, causing the push rod 542 to slide the opening and closing plate 541 through the sliding groove 545. During the sliding process, the opening and closing of both sides... The gaps between plates 541 gradually widen, allowing debris to enter the collection mechanism 55. The receiving groove 544 accommodates changes in the position of the push rod 542. When the weight of the debris is insufficient to allow the opening and closing plates 541 to slide, the plates 541 return to their original position under the action of the return spring 546, sealing the gap between the two plates 541. Debris on the filter plate 52 cannot fall into the collection mechanism 55. After the debris enters the collection mechanism 55 through the closing mechanism 54, the moisture-laden debris first falls into the collection shell 551, where the absorption roller 552 absorbs the residual moisture on the surface of the debris. Then, the debris enters the collection tank through the discharge pipe 553 for centralized collection and recycling.After being absorbed by the absorption roller 552, the water enters the water collection chamber 56 through the water supply pipe 58 for recycling. When the absorption roller 552 absorbs the water remaining on the surface of the debris, it first absorbs the surface moisture through the water suction column 5524, and then the water enters the interior of the drum 5523. Due to the action of the negative pressure device 5525, the water inside the drum 5523 enters the cavity of the rotating shaft 5521 through the water supply pipe 5522. The water in the cavity enters the water collection chamber 56 through the rotary joint 57 and the water supply pipe 58 for recycling. The water absorbent cotton 55242 absorbs the moisture on the debris. When the rotating shaft 5521 drives the drum 5523 to rotate, the water suction column 5524 also rotates. Due to the continuous rotation of the water suction column 5524, the extrusion ring 55243 slides continuously on the surface of the porous column 55241, thereby extruding the water absorbent cotton 55242. This allows moisture on the absorbent cotton 55242 to enter the interior of the porous column 55241 through the holes in the porous column 55241 and then into the interior of the roller 5523. The counterweight 55244 further facilitates the smoother sliding of the compression ring 55243 on the surface of the porous column 55241.
[0035] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0036] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A waterjet cutting device for carbon fiber plates in molds, comprising a body (1), characterized in that: The top of the main body (1) is fixedly connected to a mounting bracket (2), the bottom of the mounting bracket (2) is slidably connected to a water jet gun (3), the top two sides of the main body (1) are fixedly connected to a fixing mechanism (4), the inside of the main body (1) is fixedly connected to a recycling mechanism (5), the bottom of the main body (1) is fixedly connected to a collection groove (6), the recycling mechanism (5) includes a groove (51), the groove (51) is opened on the top of the main body (1), the inside two sides of the groove (51) are rotatably connected to a filter plate (52), the bottom of the filter plate (52) is fixedly connected to the inner wall of the groove (51) and a triggering mechanism (53) is fixedly connected to the bottom of the filter plate (52) and the inner wall of the groove (51), a closing mechanism (54) is fixedly connected to one side of the filter plate (52), and a collection mechanism (55) is fixedly connected to the inside of the groove (51), and the collection mechanism (55) is located on the bottom side of the closing mechanism (54). Water collection cavities (56) are provided inside the body (1) and on both sides of the groove (51). A through hole is provided between the water collection cavity (56) and the groove (51). A rotary joint (57) is rotatably connected inside the body (1) and on the front of the collection mechanism (55). One end of the rotary joint (57) is connected to a water supply pipe (58). Both ends of the water supply pipe (58) pass through the water collection cavities (56) on both sides inside the body (1). The triggering mechanism (53) includes a slide groove (531), which is opened on the inner side wall of the groove (51). A slider (532) is fixedly connected to one side of the filter plate (52). An installation plate (533) is fixedly connected to the inner wall of the groove (51). A switch (534) is fixedly connected to the top side of the installation plate (533). The filter plate (52) and the mounting plate (533) are elastically connected together by an elastic element (535). A rotating rod (536) is rotatably connected to the other side of the top of the mounting plate (533). A fixing rod (537) is fixedly connected to the bottom of the filter plate (52), and the fixing rod (537) is located at the top of the rotating rod (536). The closing mechanism (54) includes an opening and closing plate (541), which is rotatably connected to the inside of the groove (51) and is located on one side of the filter plate (52). A push rod (542) is fixedly connected to one side of the opening and closing plate (541), and a push rod (543) is fixedly connected to one side of the filter plate (52). The filter plate (52) has a receiving groove (544) on one side, and a sliding groove (545) is provided on the inner surface of the groove (51). The opening and closing plate (541) is slidably connected to the inside of the sliding groove (545). A return spring (546) is elastically connected inside the sliding groove (545), and one end of the return spring (546) is elastically connected to the surface of the opening and closing plate (541).
2. The waterjet cutting device for carbon fiber plates for molds according to claim 1, characterized in that: The collection mechanism (55) includes a collection shell (551), an absorption roller (552) is rotatably connected inside the collection shell (551), a slag discharge pipe (553) is connected to the bottom of the collection shell (551), the lower end of the slag discharge pipe (553) penetrates the bottom wall of the main body (1) and extends into the inside of the collection tank (6), and water guide plates (554) are fixedly connected to both sides of the collection shell (551).
3. The waterjet cutting device for carbon fiber plates for molds according to claim 2, characterized in that: The absorption roller (552) includes a rotating shaft (5521), and a water pipe (5522) is fixedly connected to the surface of the rotating shaft (5521). The number of water pipes (5522) is set to multiple. A roller (5523) is provided on the outside of the rotating shaft (5521), and the inner surface of the roller (5523) is fixedly connected to one end of the water pipe (5522).
4. The waterjet cutting device for carbon fiber plates for molds according to claim 3, characterized in that: The outer surface of the roller (5523) is fixedly connected to a water-absorbing column (5524), the inside of the rotating shaft (5521) is provided with a cavity, one end of the rotating shaft (5521) is rotatably connected to a rotary joint (57), and a negative pressure device (5525) is fixedly connected inside the cavity.
5. The waterjet cutting device for carbon fiber plates for molds according to claim 4, characterized in that: The absorbent column (5524) includes a porous column (55241), on which absorbent cotton (55242) is fixedly connected. A compression ring (55243) is slidably connected to the surface of the porous column (55241), which is located outside the absorbent cotton (55242). A counterweight (55244) is fixedly connected to the outer surface of the compression ring (55243).
Citation Information
Patent Citations
Water jet cutter wastewater reclamation and recycling device
CN108862680A
Treatment equipment used for wastewater obtained by water cutting of PVC pipes
CN109966795A