Glass processing device based on shared material box
Through the design of shared material box and loading module, the problem of low rounding cutting efficiency of square glass in the prior art is solved, and the synchronous loading and automatic rounding cutting of multiple glasses is realized, which improves processing efficiency.
Patent Information
- Application Number
- CN202510631361.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-16
- Publication Date
- 2025-07-18
AI Technical Summary
In the prior art, in the process of cutting square glass into round glass, each piece of glass needs to be loaded separately, resulting in cumbersome processing and affecting efficiency.
A glass processing device based on a shared material box is designed, using a shared material plate to carry multiple glass to be processed, and synchronous loading is achieved through a loading module. Combined with auxiliary modules and processing tools, the glass position is automatically adjusted for circular cutting, avoiding repeated adjustment of the cutting tool center.
Continuous loading and efficient rounding cutting of the glass to be processed are achieved, processing efficiency is improved, and manual intervention and repeated operations are reduced.
Smart Images

Figure CN120328846A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of glass processing, and specifically relates to a glass processing device based on a shared material box. Background Art
[0002] As a material widely used in our daily life, glass penetrates into various fields due to its unique physical properties. Among them, round glass is favored for its elegant appearance and specific usage requirements. During the glass processing, in order to meet the needs of different designs and functions, it is often necessary to cut the glass into a circular shape, which enables the glass to better adapt to various application scenarios.
[0003] A Chinese patent with the publication number CN220723969U discloses a glass product circle cutter, which includes a supporting bottom plate, and a placing groove is arranged at the top of the supporting bottom plate. The utility model has the advantages that the glass product is clamped by the clamping plate and the rubber strip, so that the glass will not deviate in position due to force during the circle cutting operation, improving the stability of the glass product during circle cutting. The T-shaped tool holder slides inside the T-shaped sliding groove, thus changing the distance between the glass knives on both sides at the bottom of the turntable, and thus changing the size of the cut circle, improving the adaptability. When moving the T-shaped tool holder, the position of the glass knife is calibrated according to the scale bar beside the adjustment hole, thus preventing the wrong adjustment of the position of the glass knife and improving the accuracy of the position adjustment of the glass knife. The infrared positioning lamp is calibrated with the auxiliary line on the glass product, thus preventing the cutting position of the glass knife from shifting and improving the quality of the finished product.
[0004] In the prior art, during the process of cutting square glass into round glass, each piece of glass needs to be separately loaded, taken out after cutting, and then the next piece of square glass is put in and cut. In the above process, due to the problem of the loading method, the process of cutting square glass into round glass is relatively cumbersome, affecting the processing efficiency.
[0005] Therefore, the present invention provides a glass processing device based on a shared material box. Summary of the Invention
[0006] In order to make up for the deficiencies of the prior art and solve at least one technical problem proposed in the background art.
[0007] The technical solution adopted by the present invention to solve its technical problems is as follows: A glass processing device based on a shared material box according to the present invention includes:
[0008] A processing frame;
[0009] A processing tool, movably connected to the top of the processing frame, for cutting the glass to be processed;
[0010] The auxiliary module is arranged on the top of the processing frame;
[0011] The loading module is arranged at the bottom of the movable frame and is used to lift the shared material plate;
[0012] The auxiliary module includes an annular plate, a push plate and a support block. The annular plate is rotatably connected to the top of the processing frame; a convex part is arranged on the inner peripheral surface of the annular plate in a circumferentially symmetric manner; a second connecting rod is fixedly connected to the back of the push plate, and the second connecting rod penetrates through the processing frame. The push plate is slidably connected to the processing frame through the second connecting rod; one end of the second connecting rod is fixedly connected to the push plate, and the other end is fixedly connected to an arc block, and the arc block is slidably matched with the convex part. One end of the bottom of the support block is fixedly connected to a first connecting rod parallel to the moving direction of the support block, and the support block is slidably connected to the processing frame based on the first connecting rod.
[0013] Preferably, the processing frame includes a base, columns, a support frame and a top frame; the columns are fixedly connected to the four corners of the base, and the tops of the columns are fixedly connected to the bottom of the support frame. The top frame is stacked and buckled with the support frame; the annular plate is rotatably connected to the top frame, and the second connecting rod penetrates through the side wall of the top frame, and the first connecting rod penetrates through the side wall of the support frame.
[0014] Preferably, the auxiliary module further includes a first spring, and one end of the first spring is fixedly connected to the arc block, and the other end is fixedly connected to the outer side wall of the top frame.
[0015] Preferably, a hole plate is fixedly connected to the support frame, and the support block is slidably connected to the hole plate. The other end of the bottom of the support block is provided with an upwardly inclined slope, and the support block is matched with the glass to be processed based on the slope.
[0016] Preferably, the support block corresponds to the auxiliary module, and the support block and the push plate are arranged vertically staggered; the push plate is arranged in an inverted U-shaped structure, and the support block generates relative sliding with the push plate during displacement.
[0017] Preferably, the processing tool includes a swing rod, and the swing rod is movably connected to the top frame through a spring rod; the spring rod is fixedly connected to the top frame; an adjusting block is slidably connected to the swing rod, and a suction cup is fixedly connected to the bottom of the adjusting block through a bolt; the suction cup is located at the center of the top frame; a connecting arm is sleeved on the bolt, and the connecting arm is arranged in a T-shaped structure. One end of the connecting arm is sleeved on the bolt, and the other end is fixedly connected to a diamond cutter.
[0018] Preferably, a ratchet tooth is further fixedly connected to the outer peripheral surface of the annular plate, and a torsion rod is rotatably connected to the top frame corresponding to the annular plate, and a ratchet pawl is fixedly connected to the bottom of the torsion rod; a torsion spring is fixedly connected between the torsion rod and the top frame.
[0019] Preferably, a movable groove is provided on the base, and end plates are provided at both ends of the movable groove, and the end plates are fixed to the base by screws; a screw rod is connected through the two end plates, and the screw rod cooperates with the feeding module.
[0020] Preferably, the loading module includes a slider, a support arm, a top plate and a telescopic sleeve; the slider is slidably connected in the movable groove, and the screw rod is threadedly matched with the slider; one end of the support arm is hinged on the slider, and the other end is hinged to the top plate; the bottom of the top plate is fixedly connected to the output end of the telescopic sleeve, and the bottom of the telescopic sleeve is fixedly connected to the middle of the movable groove.
[0021] Preferably, a clearance groove is further provided on the base, and the top plate cooperates with the clearance groove; a shared material plate is buckled and matched on the top plate, and the shared material plate is used to carry the glass to be processed.
[0022] The beneficial effects of the present invention are as follows:
[0023] 1. The glass processing device based on a shared material box described in the present invention carries multiple glasses to be processed by a shared material plate, and after the processing of the top glass to be processed is completed, the shared material plate is lifted by a loading module, so that the shared material plate can drive the multiple glasses to be processed to move upward synchronously. When the multiple glasses to be processed move upward synchronously, the top glass to be processed will contact the support block and squeeze the support block inward to shrink the support block until the top glass to be processed passes over the edge of the support block, and then the support block is reset to separate the top glass to be processed from other glasses to be processed below, thereby completing one loading. Based on the above, continuous loading of the glass to be processed can be achieved, thereby improving processing efficiency.
[0024] 2. The present invention describes a glass processing device based on a shared material box. When the top glass to be processed cooperates with the support block and is supported by the support block and separated from other glasses to be processed, the ring plate rotates to drive the push plate to move inward synchronously, thereby realizing the center adjustment of the glass to be processed above the support block. Based on this operation, when the glass to be processed is circularly cut, there is no need to adjust the center fixed position of the cutting tool, thereby further improving the processing efficiency of circular cutting of square glass. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The present invention will be further described below in conjunction with the accompanying drawings.
[0026] Figure 1 is a stereogram of the present invention;
[0027] Figure 2 is a top view of the present invention;
[0028] Figure 3 yes Figure 2 Sectional view at AA;
[0029] Figure 4 is the side view of the present invention;
[0030] Figure 5 is Figure 4 the sectional view taken along line B-B of
[0031] Figure 6 is Figure 5 the enlarged view of part I in
[0032] Figure 7 is the partial perspective view of the present invention;
[0033] In the figure: 11, base; 110, lead screw; 111, movable groove; 112, relief groove; 113, end plate; 12, column; 13, support frame; 131, hole plate; 14, top frame; 141, relief hole; 142, ring plate; 1421, first grip; 1422, ratchet teeth; 143, arc groove; 144, support block; 1441, first connecting rod; 145, push plate; 1451, arc block; 1452, first spring; 1453, second connecting rod; 146, torsion bar; 147, ratchet pawl; 15, shared material plate; 161, support arm; 162, top plate; 163, telescopic sleeve; 164, slider; 2, glass to be processed; 31, swing rod; 32, spring rod; 33, adjusting block; 34, connecting arm; 35, second grip. Detailed implementation manners
[0034] In order to make the technical means, creative features, achieved purposes and functions of the present invention easy to understand, the present invention will be further described below in conjunction with specific implementation manners.
[0035] As Figures 1 to 7As shown in the figure, a glass processing device based on a shared cartridge according to an embodiment of the present invention includes a processing frame, a processing tool, an auxiliary module, and a loading module; the processing tool is movably connected to the top of the processing frame and is used for cutting the glass 2 to be processed; the auxiliary module is arranged on the top of the processing frame; the loading module is arranged at the bottom of the movable frame and is used for lifting the shared material plate 15; the auxiliary module includes an annular plate 142, a push plate 145, and a support block 144, the annular plate 142 is rotatably connected to the top of the processing frame; the inner peripheral surface of the annular plate 142 is provided with protruding portions arranged symmetrically in a circumferential manner; the back surface of the push plate 145 is fixedly connected with a second connecting rod 1453, and the second connecting rod 1453 penetrates through the processing frame, and the push plate 145 is slidably connected to the processing frame through the second connecting rod 1453; one end of the second connecting rod 1453 is fixedly connected to the push plate 145, and the other end is fixedly connected with an arc-shaped block 1451, the arc-shaped block 1451 is slidably matched with the protruding portion, one end of the support block 144 is fixedly connected with a first connecting rod 1441 parallel to the moving direction of the support block 144, and the support block 144 is slidably connected to the processing frame based on the first connecting rod 1441.
[0036] In the prior art, during the process of cutting square glass into circular glass, each piece of glass needs to be loaded separately, and after cutting, it is taken out and the next piece of square glass is put in and cut. In the above process, due to the problem of the loading method, the process of cutting square glass into circular glass is rather cumbersome, affecting the processing efficiency;
[0037] Such as Figure 1As shown, in one embodiment of the present invention, a plurality of glasses 2 to be processed are placed on a shared material plate 15, and the shared material plate 15 is used to carry the plurality of glasses 2 to be processed. After the processing of the topmost glass 2 to be processed is completed, the shared material plate 15 is lifted by the loading module, so that the shared material plate 15 can drive the plurality of glasses 2 to be processed to move upward synchronously. When the plurality of glasses 2 to be processed move upward synchronously, the topmost glass 2 to be processed will contact the support block 144, and squeeze the support block 144 inward, so that the support block 144 contracts until the topmost glass 2 to be processed passes over the edge of the support block 144, and then the support block 144 is reset to separate the topmost glass 2 to be processed from the other glasses 2 to be processed below, thereby completing one loading. In this process, all the glasses 2 to be processed can be placed on the shared material plate 15 in advance, for example, during processing. First, twenty pieces of glass 2 to be processed are stacked up and down on the shared material plate 15. As the processing proceeds, only a few pieces of glass 2 to be processed are left on the shared material plate 15. At this time, new glass 2 to be processed can continue to be added to the shared material plate 15. It is worth noting that the newly added glass 2 to be processed can be directly placed on the topmost glass 2 to be processed on the shared material plate 15 without being added from the bottom. When the topmost glass 2 to be processed cooperates with the support block 144 and is supported by the support block 144 and separated from the other glasses 2 to be processed, the ring plate 142 rotates to drive the push plate 145 to move inward synchronously, thereby realizing the center adjustment of the glass 2 to be processed above the support block 144. Based on this operation, when the glass 2 to be processed is circularly cut, there is no need to adjust the center fixed position of the cutting tool, thereby further improving the processing efficiency of circular cutting of square glass.
[0038] like Figure 7 As shown, the processing frame includes a base 11, a column 12, a support frame 13 and a top frame 14; the column 12 is fixedly connected to the four corners of the base 11, and the top of the column 12 is fixedly connected to the bottom of the support frame 13, and the top frame 14 is stacked and buckled with the support frame 13; the ring plate 142 is rotatably connected in the top frame 14, and the second connecting rod 1453 passes through the side wall of the top frame 14, and the first connecting rod 1441 passes through the side wall of the support frame 13.
[0039] In one embodiment of the present invention, the support frame 13 is separated from the top frame 14, which can facilitate the installation and disassembly of the support block 144 and the push plate 145, and the support frame 13 and the top frame 14 are stacked and snap-connected, so they can be easily disassembled and assembled when they need to be disassembled later; it is worth noting that a clearance hole 141 is opened on the side wall of the top frame 14, and the hole plate 131 is rotatably connected in the clearance hole 141, and an arc groove 143 is opened on the surface of the top frame 14, and the first handle 1421 fixed on the ring plate 142 is slid in the arc groove 143, so that the operator can rotate the ring plate 142 conveniently.
[0040] like Figures 1 to 3As shown, the auxiliary module further includes a first spring 1452, and one end of the first spring 1452 is fixedly connected to the arc block 1451, and the other end is fixedly connected to the outer wall of the top frame 14.
[0041] During the rotation of the above-mentioned annular plate 142 to drive the push plate 145 to synchronously displace inward, the convex portion on the inner peripheral surface of the annular plate 142 can contact the arc block 1451 at the end of the second connecting rod 1453, thereby squeezing the arc block 1451 at the end of the second connecting rod 1453, causing the arc block 1451 to displace towards the side wall of the top frame 14. When the arc block 1451 displaces towards the side wall of the top frame 14, it cooperates with the second connecting rod 1453 to drive the push plate 145 to displace inward, thereby correcting the deviated glass plate 2 to be processed. The specific correction direction is to adjust the center of the glass plate 2 to be processed to coincide with the adsorption point of the cutting tool suction cup. Thus, the square glass can be maximally cut into a circle. And in an embodiment of the present invention, the first spring 1452 is sleeved on the second connecting rod 1453. When the arc block 1451 drives the second connecting rod 1453 to displace towards the top frame 14, the first spring 1452 is stressed and generates elastic potential energy. After the uppermost glass plate 2 to be processed is processed and taken out, the push plate 145 is no longer used to correct the position of the glass 2 to be processed. That is, at this time, the push plate 145 is reset, and the first spring 1452 drives the arc block 1451, the second connecting rod 1453, and the push plate 145 to reset.
[0042] As Figures 1 to 4 shown, a hole plate 131 is fixedly connected to the support frame 13, and the support block 144 is slidably connected in the hole plate 131. The bottom of the other end of the support block 144 is provided with an upwardly inclined slope, and the support block 144 cooperates with the glass 2 to be processed based on the slope.
[0043] Furthermore, after the feeding module is driven, the lifting shared material plate 15 is lifted upward. During the upward displacement of the shared material plate 15, the uppermost glass 2 to be processed can be moved into contact with the support block 144. At this time, the uppermost glass 2 to be processed contacts the slope at the bottom of the support block 144, and during the continuous displacement, it continuously fits with the slope at the bottom of the support block 144 until the support block 144 contracts in place, and the uppermost glass 2 to be processed crosses the support block 144 and reaches the upper plane of the support block 144. Thus, the feeding module stops further lifting the shared material plate 15, and the support block 144 is reset. By using the bottom slope to cooperate with the uppermost glass 2 to be processed on the shared material plate 15, the glass 2 to be processed located on the support block 144 is separated from other glasses 2 to be processed. Subsequently, the square glass, that is, the glass 2 to be processed located above the support block 144, is cut into a circle using the cutting tool.
[0044] As Figures 1 to 5As shown, the support block 144 corresponds to the auxiliary module, and the support block 144 and the push plate 145 are arranged staggered up and down; the push plate 145 is arranged in an inverted U-shaped structure, and during the displacement of the support block 144, relative sliding occurs with the push plate 145.
[0045] In an embodiment of the present invention, the support block 144 and the push plate 145 are arranged staggered up and down. During the contraction and reset of the support block 144, the displacement of the push plate 145 will not be interfered, and the reset and extension actions of the push plate 145 will not interfere with the displacement of the support block 144 either. Based on the above arrangement, the structure can be made more compact, and the push plate 145 and the support block 144 are integrated at one position, specifically at the center positions of the four faces of the top frame 14, which can improve the adaptability of the auxiliary module to the glass 2 to be processed with different sizes.
[0046] As Figures 1 to 2 、 Figure 7 As shown, the processing tool includes a swing rod 31, and the swing rod 31 is movably connected to the top frame 14 via a spring rod 32; the spring rod 32 is fixedly connected to the top frame 14; a regulating block 33 is slidably connected to the swing rod 31, and a suction cup is fixedly connected to the bottom of the regulating block 33 via a bolt; the suction cup is located at the center of the top frame 14; a connecting arm 34 is sleeved on the bolt, and the connecting arm 34 is arranged in a T-shaped structure. One end of the connecting arm 34 is sleeved on the bolt, and the other end is fixedly connected with a diamond cutter.
[0047] In an embodiment of the present invention, the swing rod 31 is used to drive the displacement and adjustment of the regulating block 33 and the suction cup and other structures to adapt to the round cutting of square glass. Specifically, before use, first adjust the regulating block 33 to slide on the swing rod 31 according to the corrected position of the glass 2 to be processed, so that the swing rod 31 is adjusted to a determined position, then lock the regulating block 33 and the swing rod 31 with bolts, and then fix the regulating block 33 and the glass 2 to be processed with the suction cup. Then, the diamond cutter can be driven to perform round cutting on the glass 2 to be processed by the connecting arm 34 rotatably connected to the bolt. During the subsequent cutting process, there is no need to change the position of the suction cup. Just cancel the adsorption relationship between the suction cup and the large processed glass, and then take out the processed glass. The glass 2 to be processed on the support block 144 after the shared material plate 15 is lifted only needs to be adsorbed by the suction cup to immediately carry out the operation of changing the square glass into a round one; it should be noted that a second grip 35 is also fixedly connected to the connecting arm 34 to facilitate the operator to drive the connecting arm 34 to rotate around the suction cup in a circular motion.
[0048] As Figures 4 to 6 As shown, a ratchet 1422 is also fixedly connected to the outer peripheral surface of the ring plate 142, and a torsion bar 146 is rotatably connected to the top frame 14 corresponding to the ring plate 142, and a ratchet pawl 147 is fixedly connected to the bottom of the torsion bar 146; a torsion spring is fixedly connected between the torsion bar 146 and the top frame 14.
[0049] In an embodiment of the present invention, the protrusion on the inner peripheral surface of the ring plate 142 can extrude the arc block 1451 after rotation, and drive the second connecting rod 1453 and the push plate 145 to extend inward by using the arc block 1451, so as to correct the deviated glass 2 to be processed, so that the center of the glass 2 to be processed corresponds exactly to the suction cup. After the ring plate 142 rotates, it is also necessary to limit the position of the ring plate 142 to prevent the first spring 1452 on the second connecting rod 1453 from driving the push plate 145 and the arc block 1451 to reset, resulting in the suction cup not being able to adsorb the center of the glass 2 to be processed yet. Therefore, through the ratchet teeth 1422 on the outer peripheral surface of the ring plate 142 and the ratchet pawl 147 at the bottom of the torsion bar 146, the ratchet pawl 147 can limit the ratchet teeth 1422 on the outer peripheral surface of the ring plate 142, forming a clamping fit relationship to prevent the ring plate 142 from resetting. When the glass 2 to be processed is taken out after processing, the torsion bar 146 can be twisted, so that the torsion bar 146 drives the ratchet pawl 147 to rotate, thereby canceling the clamping fit relationship between the ratchet pawl 147 and the ratchet teeth 1422.
[0050] As Figures 1 to 3 shown, a movable groove 111 is formed on the base 11, and end plates 113 are arranged at both ends of the movable groove 111. The end plates 113 are fixed to the base 11 by screws; a lead screw 110 is connected through between the two end plates 113, and the lead screw 110 cooperates with the feeding module.
[0051] As Figures 1 to 3 、 Figure 7 shown, the feeding module includes a slider 164, a support arm 161, a top plate 162 and a telescopic sleeve 163; the slider 164 is slidably connected in the movable groove 111, and the lead screw 110 is in threaded cooperation with the slider 164; one end of the support arm 161 is hinged to the slider 164, and the other end is hinged to the top plate 162; the bottom of the top plate 162 is fixedly connected to the output end of the telescopic sleeve 163, and the bottom of the telescopic sleeve 163 is fixedly connected to the middle of the movable groove 111.
[0052] As Figures 1 to 7 shown, a relief groove 112 is also formed on the base 11, and the top plate 162 cooperates with the relief groove 112; a shared material plate 15 is snap-fitted on the top plate 162, and the shared material plate 15 is used to carry the glass 2 to be processed.
[0053] In an embodiment of the present invention, the loading module is used to drive the shared material plate 15 to lift. That is to say, in the initial stage, the shared material plate 15 is flush with the base 11. All the glass 2 to be processed are placed on the shared material plate 15 by using the equipment. Subsequently, the loading module controls the shared material plate 15 to gradually lift in stages, so as to realize uninterrupted loading and processing. Specifically, when the lead screw 110 rotates, it can drive the two sliders 164 to slide towards each other in the movable groove 111, thereby driving the two support arms 161 to lift from the movable groove 111 and lifting the top plate 162. There is a buckling connection between the top plate 162 and the shared material plate 15. Therefore, when the top plate 162 is lifted, the shared material plate 15 also rises accordingly. It should be noted that in the present invention, a telescopic sleeve 163 is provided at the center of the bottom of the shared material plate 15 to limit the top plate 162 to always be in a horizontal state. Secondly, the buckling and matching relationship between the shared material plate 15 and the top plate 162 enables the shared material plate 15 to move out of the processing frame. After loading, that is, after all the glass 2 plates to be processed are placed on the shared material plate 15, it is then pushed into the processing frame and buckled and matched with the top plate 162. Based on the above, the loading of the glass 2 to be processed is convenient.
[0054] Working principle: Place multiple glasses 2 to be processed on the shared material plate 15. Use the shared material plate 15 to carry multiple glasses 2 to be processed. After the topmost glass 2 to be processed is completed, use the loading module to lift the shared material plate 15 so that the shared material plate 15 can drive multiple glasses 2 to be processed to move upward synchronously. When multiple glasses 2 to be processed move upward synchronously, the topmost glass 2 to be processed will contact the support block 144 and squeeze the support block 144 inward, causing the support block 144 to contract until the topmost glass 2 to be processed crosses the edge of the support block 144. Subsequently, the support block 144 resets to separate the topmost glass 2 to be processed from the other glasses 2 below, thus completing one loading operation. In this process, all glasses 2 to be processed can be pre-placed on the shared material plate 15. For example, twenty glasses 2 to be processed are stacked vertically on the shared material plate 15 before processing. As processing progresses, only a few glasses 2 to be processed remain on the shared material plate 15. At this time, new glasses 2 to be processed can be added to the shared material plate 15, and it should be noted that the newly added glasses 2 to be processed can be directly placed on the topmost glass 2 to be processed on the shared material plate 15 without adding from the bottom. After the topmost glass 2 to be processed is separated from other glasses 2 to be processed by cooperating with the support block 144 and being lifted by the support block 144, the ring plate 142 rotates to drive the push plate 145 to move inward synchronously, thereby realizing the centering adjustment of the glass 2 to be processed above the support block 144. Based on this operation, when cutting the square glass into a circular shape, there is no need to adjust the central fixed position of the cutting tool, further improving the processing efficiency of cutting the square glass into a circular shape. During the process of the above-mentioned ring plate 142 rotating to drive the push plate 145 to move inward synchronously, the convex portion on the inner peripheral surface of the ring plate 142 can contact the arc-shaped block 1451 at the end of the second connecting rod 1453, thereby squeezing the arc-shaped block 1451 at the end of the second connecting rod 1453, causing the arc-shaped block 1451 to move towards the side wall of the top frame 14. When the arc-shaped block 1451 moves towards the side wall of the top frame 14, it cooperates with the second connecting rod 1453 to drive the push plate 145 to move inward, thereby correcting the deviated glass 2 plate. The specific correction direction is to adjust the center of the glass 2 plate to coincide with the adsorption point of the cutting tool suction cup. Thus, the square glass can be maximally cut into a circular shape. In an embodiment of the present invention, the first spring 1452 is sleeved on the second connecting rod 1453. When the arc-shaped block 1451 drives the second connecting rod 1453 to move towards the top frame 14, the first spring 1452 is stressed to generate elastic potential energy. After the topmost glass 2 plate is processed and taken out, the push plate 145 is no longer used to correct the position of the glass 2 to be processed, that is, at this time, the push plate 145 resets, and the first spring 1452 drives the arc-shaped block 1451, the second connecting rod 1453, and the push plate 145 to reset.
[0055] When the loading module is driven, the shared material plate 15 is lifted and displaced upward. During the upward displacement of the shared material plate 15, the top glass 2 to be processed can be moved to contact with the support block 144. At this time, the top glass 2 to be processed contacts the inclined surface at the bottom of the support block 144, and continues to fit with the inclined surface at the bottom of the support block 144 during the continued displacement until the support block 144 shrinks into place, and the top glass 2 to be processed passes over the support block 144 and reaches the upper plane of the support block 144. At this point, the loading module stops lifting the shared material plate 15, and the support block 144 is reset. The bottom inclined surface cooperates with the top glass 2 to be processed on the shared material plate 15 to separate the glass 2 to be processed on the support block 144 from other glasses 2 to be processed, and then a cutting tool is used to round the square glass, that is, the glass 2 to be processed above the support block 144.
[0056] The swing rod 31 is used to drive the displacement and adjustment of the adjusting block 33 and the suction cup and other structures to adapt to the circular cutting of square glass. Specifically, before use, first adjust the adjusting block 33 to slide on the swing rod 31 according to the corrected position of the glass 2 to be processed, so that the swing rod 31 is adjusted to a determined position. Then, lock the adjusting block 33 and the swing rod 31 with bolts, and then fix the adjusting block 33 and the glass 2 to be processed with a suction cup. Then, the connecting arm 34 rotatably connected to the bolt can be used to drive the diamond cutter to perform circular cutting on the glass 2 to be processed. During the subsequent cutting process, there is no need to change the position of the suction cup. Only the adsorption relationship between the suction cup and the glass 2 to be processed needs to be cancelled, and then the processed glass can be taken out. After the shared material plate 15 is lifted, the glass 2 to be processed located on the support block 144 only needs to be adsorbed by the suction cup to immediately start the operation of changing the square glass into a circle; the convex part on the inner peripheral surface of the ring plate 142 can squeeze the arc block 1451 after rotation, and use the arc block 1451 to drive the second connecting rod 1453 and the push plate 145 to extend inward, so as to correct the deviated glass 2 to be processed, so that the center of the glass 2 to be processed just corresponds to the suction cup. After the ring plate 142 rotates, it is also necessary to limit the ring plate 142 to prevent the first spring 1452 on the second connecting rod 1453 from driving the push plate 145 and the arc block 1451 to reset, resulting in the suction cup not being able to adsorb with the center of the glass 2 to be processed. Therefore, through the ratchet teeth 1422 on the outer peripheral surface of the ring plate 142 and the ratchet pawl 147 at the bottom of the torsion rod 146, the ratchet pawl 147 can limit the ratchet teeth 1422 on the outer peripheral surface of the ring plate 142 to form a clamping fit relationship to prevent the ring plate 142 from resetting. When the processed glass 2 is taken out after processing, the torsion rod 146 can be twisted, so that the torsion rod 146 drives the ratchet pawl 147 to rotate, thereby canceling the clamping fit relationship between the ratchet pawl 147 and the ratchet teeth 1422; in the initial stage, the shared material plate 15 is flush with the base 11. All the glasses 2 to be processed are placed on the shared material plate 15 by the equipment, and then the feeding module is used to gradually control the shared material plate 15 to rise in stages, so as to achieve continuous feeding and processing. Specifically, the rotation of the lead screw 110 can drive the two sliders 164 to slide towards each other in the movable groove 111, thereby driving the two support arms 161 to lift from the movable groove 111 and lift the top plate 162. There is a snap-fit relationship between the top plate 162 and the shared material plate 15. Therefore, when the top plate 162 is lifted, the shared material plate 15 also rises accordingly; it should be noted that in the present invention, a telescopic sleeve 163 is provided at the center of the bottom of the shared material plate 15 to limit the top plate 162 to always be in a horizontal state. Secondly, the snap-fit relationship between the shared material plate 15 and the top plate 162 enables the shared material plate 15 to move out of the processing frame. After feeding, that is, after all the glasses 2 to be processed are placed on the shared material plate 15, it is then pushed into the processing frame and snap-fitted with the top plate 162. Based on the above, the feeding of the glass 2 to be processed is convenient.
[0057] The foregoing has shown and described the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments, and what is described in the above embodiments and the specification is only to illustrate the principle of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A glass processing device based on a shared material box, characterized in that: Comprising: Processing frame; Processing tool, movably connected to the top of the processing frame for cutting the glass to be processed (2); Auxiliary module, arranged on the top of the processing frame; Loading module, arranged at the bottom of the movable frame and used for lifting the shared pallet (15); The auxiliary module includes an annular plate (142), a pushing plate (145) and a supporting block (144). The annular plate (142) is rotatably connected to the top of the processing frame; the inner peripheral surface of the annular plate (142) is provided with protruding parts arranged symmetrically in a circle; the back of the pushing plate (145) is fixedly connected with a second connecting rod (1453), and the second connecting rod (1453) penetrates through the processing frame. The pushing plate (145) is slidably connected to the processing frame through the second connecting rod (1453); one end of the second connecting rod (1453) is fixedly connected to the pushing plate (145), and the other end is fixedly connected with an arc-shaped block (1451). The arc-shaped block (1451) is slidably matched with the protruding part. One end of the supporting block (144) is fixedly connected with a first connecting rod (1441) parallel to the moving direction of the supporting block (144) at the bottom, and the supporting block (144) is slidably connected to the processing frame based on the first connecting rod (1441).
2. The glass processing device based on a shared material box according to claim 1, wherein: The processing frame includes a base (11), columns (12), a support frame (13) and a top frame (14); the columns (12) are fixedly connected to the four corners of the base (11), and the tops of the columns (12) are fixedly connected to the bottom of the support frame (13). The top frame (14) and the support frame (13) are stacked and buckled; the annular plate (142) is rotatably connected to the top frame (14), and the second connecting rod (1453) penetrates through the side wall of the top frame (14), and the first connecting rod (1441) penetrates through the side wall of the support frame (13).
3. The glass processing device based on a shared material box according to claim 2, wherein: The auxiliary module further includes a first spring (1452), and one end of the first spring (1452) is fixedly connected to the arc-shaped block (1451), and the other end is fixedly connected to the outer side wall of the top frame (14).
4. The glass processing device based on a shared material box according to claim 3, characterized in that: A hole plate (131) is fixedly connected to the support frame (13), and the support block (144) is slidably connected to the hole plate (131). The other end of the support block (144) is provided with an upward inclined slope at the bottom, and the support block (144) cooperates with the glass to be processed (2) based on the slope.
5. The glass processing device based on a shared material box according to claim 4, characterized in that: The support block (144) corresponds to the auxiliary module, and the support block (144) and the pushing plate (145) are arranged vertically and staggeredly; the pushing plate (145) is arranged in an inverted U-shaped structure, and the support block (144) slides relative to the pushing plate (145) during displacement.
6. The glass processing device based on a shared material box according to claim 5, wherein: The processing tool includes a swing rod (31), and the swing rod (31) is movably connected to the top frame (14) through a spring rod (32); the spring rod (32) is fixedly connected to the top frame (14); an adjusting block (33) is slidably connected to the swing rod (31), and a suction cup is fixedly connected to the bottom of the adjusting block (33) through a bolt; the suction cup is located at the center of the top frame (14); a connecting arm (34) is sleeved on the bolt, and the connecting arm (34) is arranged in a T-shaped structure. One end of the connecting arm (34) is sleeved on the bolt, and the other end is fixedly connected with a diamond cutter.
7. The glass processing device based on a shared material box according to claim 6, wherein: The outer peripheral surface of the ring plate (142) is also fixedly connected with a ratchet (1422), and a torsion bar (146) is rotatably connected to the top frame (14) corresponding to the ring plate (142), and a ratchet pawl (147) is fixedly connected to the bottom of the torsion bar (146); a torsion spring is fixedly connected between the torsion bar (146) and the top frame (14).
8. A glass processing device based on a shared material box according to claim 7, characterized in that: The base (11) is provided with a movable groove (111), and end plates (113) are provided at both ends of the movable groove (111), and the end plates (113) are fixed to the base (11) by screws; a screw rod (110) is connected through the two end plates (113), and the screw rod (110) cooperates with the loading module.
9. The glass processing device based on a shared cartridge according to claim 8, wherein: The loading module comprises a slider (164), a support arm (161), a top plate (162) and a telescopic sleeve (163); the slider (164) is slidably connected in the movable groove (111), and the screw rod (110) is threadedly matched with the slider (164); one end of the support arm (161) is hinged on the slider (164), and the other end is hinged to the top plate (162); the bottom of the top plate (162) is fixedly connected to the output end of the telescopic sleeve (163), and the bottom of the telescopic sleeve (163) is fixedly connected to the middle of the movable groove (111).
10. The glass processing device based on a shared material box according to claim 9, characterized in that: The base (11) is also provided with a clearance groove (112), and the top plate (162) cooperates with the clearance groove (112); the top plate (162) is buckled and matched with a shared material plate (15), and the shared material plate (15) is used to carry the glass (2) to be processed.
Citation Information
Patent Citations
Glass product rounding device
CN220723969U