Adjustable balancing device
Through the adjustable bracket anti-fall assembly and the balanced pressing assembly of the adjustable balance device, multi-point limit and stress dispersion are achieved, the equipment damage caused by a single self-locking position is solved, and the service life and stability of the equipment are improved.
Patent Information
- Application Number
- CN202510803353.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-17
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2045-06-17
AI Technical Summary
In the prior art, the single self-locking position results in the single point limit easily breakage and damage when the load bearing is large and the time is long, so as to be unable to effectively disperse the stress and reduce the service life of the equipment.
The adjustable balance device is adopted, through adjusting the anti-fall assembly and balanced press-fit assembly, the multi-point limit and force dispersion are achieved by using components such as dual-axis motors, belt transmission boxes, and transmission gears. It is combined with components such as electromagnets and springs for stable support and adjustment to ensure that the equipment is subjected to uniform force when bearing loads.
It effectively reduces damage caused by single-point stress in the equipment, improves the service life and stability of the equipment, and ensures that the materials remain balanced and stable during the processing process.
Smart Images

Figure CN120307064B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of mechanical processing, in particular to an adjustable balancing device. Background Art
[0002] During the machining process, we often encounter long materials and workpieces. Manual cutting results in large errors, while the mechanical workbench is small, which is not convenient for material processing. Now most of them use supporting equipment to support and limit one end to achieve load-bearing and processing.
[0003] The patent with application number 202310869186.3 mentions "hydraulic balancing device and its operating method". This patent limits the hydraulic equipment through self-locking gears and cooperates with the lifting and lowering limit of the load-bearing plate to achieve self-locking fixation of the hydraulic equipment.
[0004] However, during balanced support, due to the single self-locking position, the single-point limit is prone to breakage when the load is heavy and for a long time. At the same time, the straight up and down balanced load-bearing cannot disperse the force when it is under force, which greatly increases the load-bearing capacity of the single point of the equipment, increases the rate of equipment loss, and reduces the service life of the equipment. Summary of the Invention
[0005] The present invention provides an adjustable balancing device, which can effectively solve the problem raised in the above-mentioned background technology that during balancing support, due to the single self-locking position, the single-point limit is prone to breakage and damage when the load is large and the time is long. At the same time, the straight up and down balancing load-bearing cannot disperse the force when it is subjected to force, which greatly increases the load-bearing capacity of a single point of the equipment, increases the rate of equipment loss, and reduces the service life of the equipment.
[0006] To achieve the above-mentioned object, the present invention provides the following technical solution: an adjustable balancing device, comprising an integrated support frame, wherein the integrated support frame is provided with an adjustable support and anti-falling component;
[0007] The support and anti-falling component includes a belt transmission box;
[0008] The side ends of the integrated support frame are equidistantly installed with belt transmission boxes, and a dual-axis motor is installed at one end of the integrated support frame corresponding to the position of the belt transmission box input shaft through a motor seat, and one side of the belt transmission box is clamped with an inlet and outlet screw rod through a symmetrical output shaft, and the side ends of the inlet and outlet screw rods are connected to a sliding integration block through a screw rod seat;
[0009] One end of the sliding integration block is rotatably connected to a sleeve support plate, and both ends of the inner side of the integration support frame are rotatably connected to a positioning lifting plate, one end of the positioning lifting plate is installed with a correction motor through a motor seat, and one end of the output shaft of the correction motor is clamped with a load-bearing support frame;
[0010] Several entry and exit fixing holes are equidistantly opened at both ends of the integrated support frame, and connecting fixing boxes are welded at the positions of the entry and exit fixing holes at both ends of the integrated support frame. Several insertion springs are equidistantly welded on the inside of the connecting fixing box, and a one-way interception box is welded at one end of the insertion spring.
[0011] According to the above technical solution, the output shaft of the dual-axis motor is engaged with the input shaft of the belt transmission box, the cross-sections of the sliding integration block and the top of the one-way interception box are both arc-shaped, and the load-bearing support frame is rotatably sleeved on the side ends of the sleeve support plate and the positioning lifting plate.
[0012] According to the above technical solution, a load-bearing limit rod is welded between the two positioning lifting plates, and the side ends of the load-bearing limit rod are equidistantly connected to a plurality of rotating support plates, and the bottom ends of the plurality of rotating support plates are rotatably connected to a concave-convex sliding frame, and the top of the integrated support frame is equidistantly provided with a plurality of inwardly concave arc grooves;
[0013] A plurality of compression springs are symmetrically welded on the top inner side of the concave-convex sliding frame, and compression special-shaped blocks are welded on the bottom ends of two compression springs. Double-limit clamping rods are rotatably passed through the side ends of the two sleeve support plates, and both ends of the double-limit clamping rods are rotatably connected to side block fixing boxes. Integration springs are symmetrically welded on the top inner side of the side block fixing box, and one end of the two integration springs is welded to a stable limit box;
[0014] The one-way intercepting box, the pressed special-shaped block and one end of the side stop fixing box are all installed with a fixed damper, the bottom of the side end of the stable limit box is rotatably connected to the sliding connecting sleeve, and the two ends of the integrated support frame are slidably connected to the positions of the sliding connecting sleeves, and the bottom end of the inner side of the special-shaped positioning sleeve is fixed with a lifting electric push rod;
[0015] The connecting and fixing box, the one-way intercepting box, the concave-convex sliding frame and one end of the pressed special-shaped block are all equipped with a linkage electromagnet, wherein the output shaft of another belt transmission box is equidistantly equipped with a plurality of transmission gears, and the side end of the integrated support frame is slidably connected to the position of the transmission gear, and one end of the limiting rack is equidistantly connected to the lifting matching strip;
[0016] Several limiting sleeves are fixed at equal distances at one end of the inner side of the integrated support frame, and several matching springs are arranged at equal distances on the inner side of the limiting sleeve. A rising sleeve is welded to one end of multiple matching springs, and a lifting operation frame is welded to the top of one of the matching springs. A return spring is fixed to the top of the side end of the lifting operation frame, and a flat bonding plate is welded to one end of the return spring.
[0017] According to the above technical solution, the one-way interception box is slidably sleeved on the inner side of the inlet and outlet fixing hole, one end of the one-way interception box is fitted with one end of the sliding integration block, and the side stop fixing box is sleeved and connected with the stable limit box.
[0018] According to the above technical solution, the sliding connecting sleeve is sleeve-connected with the special-shaped positioning sleeve, the longitudinal section of the bottom of one end of the pressed special-shaped block is arc-shaped, and the longitudinal section of the pressed special-shaped block is L-shaped.
[0019] According to the above technical solution, the multiple fixed dampers are respectively connected to the connecting fixed box, the concave-convex sliding frame and the stable limit box, the transmission gear is engaged with the limiting rack, and one end of the lifting matching strip is rotatably connected to the lifting operating frame.
[0020] According to the above technical solution, the plurality of rising sleeves are connected one by one;
[0021] The input ends of the dual-axis motor, the correction motor, the lifting electric push rod and the linkage electromagnet are all electrically connected to the output end of the external controller;
[0022] The input end of the external controller is electrically connected to the output end of the external power supply.
[0023] According to the above technical solution, the integrated support frame is provided with a balanced pressing assembly;
[0024] The balanced pressing assembly includes a support mounting sleeve;
[0025] The bottom end of the integrated support frame is symmetrically welded with several support mounting sleeves, and the bottom end of the integrated support frame is symmetrically installed with support electric push rods at positions corresponding to the support mounting sleeves. Moving wheels are installed at the bottom ends of the two support electric push rods. Both ends of the integrated support frame are clamped with lifting electric slide rails, and one end of the two lifting electric slide rails is connected to a lifting balance box through a slide rail seat;
[0026] The top of the load-bearing support frame is equidistantly provided with a plurality of embedded card slots, the bottom of the load-bearing support frame is equidistantly provided with a plurality of sliding limit holes, both ends of the inner side of the load-bearing support frame are embedded with press-fit electric slide rails, a press-fit upper push plate is connected between the two press-fit electric slide rails through the slide rail seat, a plurality of combination springs are symmetrically welded on the inner side of the sliding limit holes, and a plurality of combination springs are welded to the bottom ends of the combination slide frames, and a press-fit bandage is installed on the top of the combination slide frame;
[0027] A level detector is fixed on the top of the flat laminating plate, a pressure sensor is fixed on one side of the top of the lifting operation frame, and an anti-slip support pad is bonded to the inner side of the embedded clamping groove.
[0028] According to the above technical solution, the lifting balance box is sleeved and connected with the support mounting sleeve, the moving wheel is placed inside the lifting balance box, and the combined sliding frame and the pressed bandage are both slidably mounted inside the sliding limit hole.
[0029] According to the above technical solution, the top end of the press-fit upper push plate is fitted with the bottom end of the combined sliding frame;
[0030] The input ends of the supporting electric push rod, the lifting electric slide rail, the pressing electric slide rail, the level detector and the pressure sensor are all electrically connected to the output end of the external controller;
[0031] The signal output terminal of the pressure sensor is electrically connected to the signal input terminal of the external controller.
[0032] Compared with the prior art, the present invention has the following beneficial effects:
[0033] The camming mechanism is adapted to move the lifting mechanism upwards, and the camming mechanism is adapted to move the lifting mechanism upwards, and the camming mechanism is adapted to move the lifting mechanism upwards, and the camming mechanism is adapted to move the lifting mechanism upwards, and the camming mechanism is adapted to move the lifting mechanism upwards, and the camming mechanism is adapted to move the lifting mechanism upwards, and the camming mechanism is adapted to move the lifting mechanism upwards, and the camming mechanism is adapted to move the lifting mechanism upwards, and the camming mechanism is adapted to move the lifting mechanism upwards, and the
[0034] The side block fixing box and the stable limit box are restricted by the integrated spring and the fixed damper. The lifting electric push rod drives the sliding connecting sleeve and the special-shaped positioning sleeve to slide and exchange positions to realize the side end restriction, thereby supporting and restricting the middle and both sides. The transmission gear and the limiting rack drive the lifting matching bar to move, and the lifting matching bar drives the lifting operation frame and the rising sleeve to move up and down under the limiting action of the matching spring. The reset spring and the flat fitting plate are used to achieve steady support and limitation during material leveling measurement, increase the overall force points, reduce the lack of support at both ends and in the middle, and reduce the occurrence of force shaking causing the equipment to deflect and bend, and insufficient support positioning causing deflection and detachment, thereby effectively improving the stability of the overall support limit.
[0035] Through synchronous transmission at both ends, the equipment is driven to move at the same time to ensure that the overall support height is the same. At the same time, multi-stage limit engagement and magnetic reset are used, and the support position is adjusted by limit support and lifting on both sides at the same time. This effectively solves the problem in the existing technology that the self-locking position is single and the force cannot be effectively dispersed, resulting in the self-locking loosening or self-locking damage of the equipment when the load is large and the time is long. At the same time, it reduces the damage to the equipment caused by continuous high-intensity force, effectively improves the service life of the equipment, and ensures the stability of the equipment.
[0036] 2. A balanced pressing component is provided, and the combined sliding frame is pushed to move by the pressing electric slide and the pressing upper push plate, and the material to be processed is placed on the top of the load-bearing support frame and the anti-slip support pad. The combined sliding frame and the pressing bandage are driven downward by the combined spring to press the material to achieve steady material positioning. The elastic downward pressure and deformation fitting are used to adjust the shape of the pressing bandage according to the shape of the material to achieve accurate fitting and steady pressing, thereby achieving stability in material positioning and reducing the occurrence of material position deviation and detachment during processing. The level detector, the flat laminating plate and the pressure sensor cooperate with each other, so that when the material is placed, the height of the equipment support surface can be judged to be consistent with the height of the machine support surface according to the angle detected by the level and the pressure, so as to adjust the support position of the equipment to ensure the levelness of the material. The supporting electric push rod drives the moving wheel to rise and fall, and the lifting electric slide drives the lifting balance box to move, adjust the distance between the lifting balance box and the support mounting sleeve, and cooperate with the moving wheel to move and transpose, so as to achieve equipment movement and follow during processing, and can achieve rapid leveling processing during the processing process to ensure the balance of the equipment.
[0037] In summary, by coordinating the support and anti-fall components and the balanced pressing components, and utilizing multi-stage balance adjustment and equipment height adjustment, the material can be operated steadily when used on different machines. By coordinating multi-stage clamping and support fixation, the load-bearing capacity of the equipment and the stability of material feeding and unloading are improved, and the damage of the equipment due to shaking and excessive force on a single point is reduced. By coordinating multi-stage balance detection, steady and balanced support for the material is achieved, thereby effectively ensuring the stability of the material support. By coordinating multiple components, the stability of the support and the accuracy of the balance are effectively improved. BRIEF DESCRIPTION OF THE DRAWINGS
[0038] The accompanying drawings are used to provide further understanding of the present invention and constitute a part of the specification. They are used to explain the present invention together with the embodiments of the present invention and do not constitute a limitation of the present invention.
[0039] In the attached figure:
[0040] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;
[0041] Figure 2 It is a structural schematic diagram of the support and anti-fall assembly of the present invention;
[0042] Figure 3 It is a schematic diagram of the installation structure of the inlet and outlet fixing holes of the present invention;
[0043] Figure 4 The present invention Figure 3 A magnified schematic diagram of the A structure;
[0044] Figure 5 The present invention Figure 3A magnified schematic diagram of the B structure;
[0045] Figure 6 This is a schematic diagram of the installation structure of the lifting and lowering matching strip of the present invention;
[0046] Figure 7 This is a schematic diagram of the installation structure of the sliding integration block of the present invention;
[0047] Figure 8 It is a structural schematic diagram of the balanced pressing assembly of the present invention;
[0048] Figure 9 This is a schematic diagram of the installation structure of the mobile wheel of the present invention;
[0049] Figure 10 It is a schematic diagram of the installation structure of the sliding limit hole of the present invention;
[0050] Numbers in the figure: 1, integrated support frame;
[0051] 2. Adjusting support and anti-falling assembly; 201. Belt drive box; 202. Dual-axis motor; 203. Inlet and outlet screws; 204. Sliding integration block; 205. Fitting support plate; 206. Positioning lifting plate; 207. Correction motor; 208. Load-bearing support frame; 209. Inlet and outlet fixing holes; 210. Connecting fixing box; 211. Insert spring; 212. One-way intercepting box; 213. Load-bearing limit rod; 214. Rotating support plate; 215. Concave and convex sliding frame; 216. Concave arc groove; 217. Pressing spring; 218. Double-limit locking rod; 219, side stop fixing box; 220, integrated spring; 221, stable limit box; 222, fixed damper; 223, sliding connecting sleeve; 224, special-shaped positioning sleeve; 225, lifting electric push rod; 226, linkage electromagnet; 227, transmission gear; 228, limit rack; 229, lifting matching strip; 230, limit sleeve; 231, matching spring; 232, rising sleeve; 233, lifting operating frame; 234, return spring; 235, flat laminating plate; 236, pressing special-shaped block;
[0052] 3. Balance pressing assembly; 301. Support mounting sleeve; 302. Support electric push rod; 303. Moving wheel; 304. Lifting electric slide rail; 305. Lifting balance box; 306. Embedded card slot; 307. Sliding limit hole; 308. Pressed electric slide rail; 309. Pressed upper push plate; 310. Combination spring; 311. Combination slide frame; 312. Pressed bandage; 313. Level detector; 314. Pressure sensor; 315. Anti-slip support pad. DETAILED DESCRIPTION
[0053] The preferred embodiments of the present invention are described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are only used to illustrate and explain the present invention, and are not used to limit the present invention.
[0054] Example: Figure 1-10 As shown, the present invention provides a technical solution, an adjustable balancing device, comprising an integrated support frame 1, wherein the integrated support frame 1 is provided with an adjustable support and anti-fall component 2;
[0055] The support and anti-falling assembly 2 includes a belt transmission box 201, a dual-axis motor 202, an in-and-out screw rod 203, a sliding integration block 204, a sleeve support plate 205, a positioning lifting plate 206, a correction motor 207, a load-bearing support frame 208, an in-and-out fixing hole 209, a connecting fixing box 210, an insert spring 211, a one-way interception box 212, a load-bearing limit rod 213, a rotating support plate 214, a concave-convex sliding frame 215, an inner concave arc groove 216, a pressing spring 217, and a double limit card. The closing rod 218, the side stop fixing box 219, the integrated spring 220, the stabilizing limit box 221, the fixed damper 222, the sliding connecting sleeve 223, the special-shaped positioning sleeve 224, the lifting electric push rod 225, the linkage electromagnet 226, the transmission gear 227, the limiting rack 228, the lifting matching strip 229, the limiting sleeve 230, the matching spring 231, the rising sleeve 232, the lifting operating frame 233, the return spring 234, the flat laminating plate 235 and the pressing special-shaped block 236;
[0056] The side ends of the integrated support frame 1 are equidistantly installed with a belt transmission box 201. A dual-axis motor 202 is installed at the position of the input shaft of the belt transmission box 201 at one end of the integrated support frame 1 through a motor seat. The output shaft of the dual-axis motor 202 is connected to the input shaft of the belt transmission box 201 to achieve steady transmission processing. One side of the belt transmission box 201 is connected to an inlet and outlet screw rod 203 through a symmetrical output shaft. The side end of the inlet and outlet screw rod 203 is connected to a sliding integration block 204 through a screw rod seat. The cross sections of the sliding integration block 204 and the top of the one-way interception box 212 are both arc-shaped. In order to ensure that the whole is operated steadily when performing limited support and entry and exit separation, one end of the sliding integration block 204 is rotatably connected to the sleeve support plate 205, and both ends of the inner side of the integration support frame 1 are rotatably connected to the positioning lifting plate 206, and one end of the positioning lifting plate 206 is installed with a correction motor 207 through a motor seat. One end of the output shaft of the correction motor 207 is clamped with a load-bearing support frame 208, and the load-bearing support frame 208 is rotatably sleeved on the sleeve support plate 205 and the side end of the positioning lifting plate 206, so that the placement point can be corrected when the overall height rises to ensure flat placement;
[0057] A plurality of inlet and outlet fixing holes 209 are equidistantly provided at both ends of the integrated support frame 1. Connecting fixing boxes 210 are welded at the positions of the inlet and outlet fixing holes 209 at both ends of the integrated support frame 1. A plurality of insertion springs 211 are equidistantly welded on the inner side of the connecting fixing box 210. A one-way interception box 212 is welded on one end of the insertion spring 211. The one-way interception box 212 is slidably sleeved on the inner side of the inlet and outlet fixing holes 209. One end of the one-way interception box 212 is fitted with one end of the sliding integrated block 204 to achieve sliding limit and counter-position support, thereby ensuring the accuracy and stability of the overall support limit. A load-bearing limit rod 213 is welded between the two positioning lifting plates 206. The side ends of the load-bearing limit rod 213 are equidistantly connected to a plurality of rotating support plates 214. The bottom ends of the multiple rotating support plates 214 are rotatably connected to concave and convex sliding frames 215. A plurality of concave arc grooves 216 are equidistantly provided on the top of the integrated support frame 1.
[0058] A plurality of compression springs 217 are symmetrically welded at the top inner side of the concave-convex slide frame 215, and a compression special-shaped block 236 is welded at the bottom end of the two compression springs 217. The longitudinal section of the bottom of one end of the compression special-shaped block 236 is arc-shaped, and the longitudinal section of the compression special-shaped block 236 is L-shaped, so as to realize multi-stage lifting and positioning and ensure the stability of the overall support limit. The two sleeve support plates 205 are rotated through the side ends with a double-limit clamping rod 218. Both ends of the double-limit clamping rod 218 are rotatably connected to the side block fixing box 219. The side block fixing box 219 is sleeved and connected with the stable limit box 221 to achieve a stable connection. The top inner side of the side block fixing box 219 is symmetrically welded with an integrated spring 220, and one end of the two integrated springs 220 is welded with a stable limit box 221.
[0059] One end of the one-way interception box 212, the press-fit special-shaped block 236 and the side stop fixing box 219 are all equipped with a fixed damper 222. Multiple fixed dampers 222 are respectively connected to the connecting fixing box 210, the concave-convex sliding frame 215 and the stable limit box 221 to ensure stable restriction and steady buffering. The bottom of the side end of the stable limit box 221 is rotatably connected to a sliding connecting sleeve 223. The sliding connecting sleeve 223 is sleeved and connected with the special-shaped positioning sleeve 224 to ensure a stable combination. The positions of the sliding connecting sleeves 223 at both ends of the integrated support frame 1 are slidably connected with special-shaped positioning sleeves 224. The bottom end of the inner side of the special-shaped positioning sleeve 224 is fixed with a lifting electric push rod 225.
[0060] A linkage electromagnet 226 is installed on one end of the connecting fixing box 210, the one-way intercepting box 212, the concave-convex sliding frame 215 and the pressing special-shaped block 236. A plurality of transmission gears 227 are evenly installed on the output shaft of another belt transmission box 201. A limiting rack 228 is slidably connected to the position of the transmission gear 227 at the side end of the integrated support frame 1. The transmission gear 227 is engaged with the limiting rack 228 to achieve steady transmission. One end of the limiting rack 228 is equidistantly connected to a lifting matching strip 229.
[0061] A plurality of limiting sleeves 230 are fixed at an equal distance on one end of the inner side of the integrated support frame 1, and a plurality of matching springs 231 are arranged at an equal distance on the inner side of the limiting sleeve 230. A lifting sleeve 232 is welded to one end of each of the matching springs 231. The multiple rising sleeves 232 are connected one by one to achieve mutual restriction and guidance between the multiple rising sleeves 232. A lifting operation frame 233 is welded to the top of one of the matching springs 231. One end of the lifting matching bar 229 is rotatably connected to the lifting operation frame 233 to achieve position replacement of the lifting operation frame 233 to ensure that the overall height is equal. A return spring 234 is fixed to the top of the side end of the lifting operation frame 233, and a flat fitting plate 235 is welded to one end of the return spring 234.
[0062] For stable operation of the device, the input ends of the dual-axis motor 202, the correction motor 207, the lifting electric push rod 225 and the linkage electromagnet 226 are all electrically connected to the output end of the external controller;
[0063] The input end of the external controller is electrically connected to the output end of the external power supply.
[0064] The integrated support frame 1 is provided with a balanced pressing assembly 3;
[0065] The balancing and pressing assembly 3 includes a support and mounting sleeve 301, a supporting electric push rod 302, a moving wheel 303, a lifting electric slide rail 304, a lifting and balancing box 305, an embedded clamping groove 306, a sliding limit hole 307, a pressing electric slide rail 308, a pressing upper push plate 309, a combination spring 310, a combination slide frame 311, a pressing bandage 312, a level detector 313, a pressure sensor 314 and an anti-slip support pad 315;
[0066] Several support mounting sleeves 301 are symmetrically welded at the bottom of the integrated support frame 1. Support electric push rods 302 are symmetrically installed at the position of the support mounting sleeve 301 at the bottom of the integrated support frame 1. Moving wheels 303 are installed at the bottom ends of the two support electric push rods 302. Lifting electric slide rails 304 are clamped at both ends of the integrated support frame 1. One end of the two lifting electric slide rails 304 is connected to a lifting balance box 305 through a slide rail seat. The lifting balance box 305 is sleeved and connected with the support mounting sleeve 301. The moving wheel 303 is placed inside the lifting balance box 305 to achieve synchronous lifting and ensure the steady operation of the mobile support and the load-bearing support.
[0067] The top of the load-bearing support frame 208 is equidistantly provided with a number of embedded card slots 306, and the bottom of the load-bearing support frame 208 is equidistantly provided with a number of sliding limit holes 307. Both ends of the inner side of the load-bearing support frame 208 are embedded with press-fit electric slide rails 308. A press-fit upper push plate 309 is connected between the two press-fit electric slide rails 308 through the slide rail seat. The top of the press-fit upper push plate 309 fits with the bottom of the combined slide frame 311 to ensure stable lifting and supporting linkage. Several combined springs 310 are symmetrically welded on the inner side of the sliding limit hole 307, and the bottom ends of multiple combined springs 310 are welded to the combined slide frame 311. A press-fit bandage 312 is installed on the top of the combined slide frame 311. The combined slide frame 311 and the press-fit bandage 312 are both slidably installed on the inner side of the sliding limit hole 307 to ensure steady clamping and limiting guidance.
[0068] A level detector 313 is fixed to the top of the flat laminating plate 235, a pressure sensor 314 is fixed to one side of the top of the lifting operation frame 233, and an anti-slip support pad 315 is bonded to the inner side of the embedded clamping groove 306;
[0069] For stable operation of the equipment, the input ends of the supporting electric push rod 302, the lifting electric slide rail 304, the pressing electric slide rail 308, the level detector 313 and the pressure sensor 314 are all electrically connected to the output end of the external controller;
[0070] The signal output terminal of the pressure sensor 314 is electrically connected to the signal input terminal of the external controller.
[0071] The working principle and use process of the present invention are as follows: when processing materials, the staff adjusts the position of the equipment according to the length of the material and the height of the processing machine. The lifting electric slide 304 drives the lifting balance box 305 to rise along the support installation sleeve 301, and the moving wheel 303 is attached to the ground. The moving wheel 303 drives the integrated support frame 1 to move and change position to realize the equipment positioning limit. The dual-axis motor 202 drives the two belt transmission boxes 201, and the belt transmission box 201 drives the two sets of inlet and outlet screw rods 203 to rotate, and the inlet and outlet screw rods 203 drive the sliding whole. The closing block 204 moves along the integrated support frame 1, and pushes the sleeve support plate 205 to move and rotate along the load-bearing support frame 208 through the sliding integration block 204. At this time, the positioning lifting plate 206 rotates along the integrated support frame 1, and the sleeve support plate 205 rotates and moves, and the positioning lifting plate 206 rotates and rises synchronously, pushing the load-bearing support frame 208 to rise. The correction motor 207 drives the load-bearing support frame 208 to rotate along the positioning lifting plate 206, so that the top of the load-bearing support frame 208 is always horizontal, so that the flatness of the support position can be guaranteed during the lifting process;
[0072] During the movement of the sliding integration block 204, the side end of the sliding integration block 204 fits with the side end of the one-way interception box 212, and pushes the one-way interception box 212 along the inlet and outlet fixing hole 209 into the inner side of the connecting fixing box 210. At this time, the insertion spring 211 is compressed. When the sliding integration block 204 moves and passes the position of the one-way interception box 212, the insertion spring 211 and the fixed damper 222 push the one-way interception box 212 along the connecting fixing box 210 and the inlet and outlet fixing hole 209, and fits one end with one end of the sliding integration block 204 to achieve blocking fixation.
[0073] When the positioning lifting plate 206 is rotated and lifted, the positioning lifting plate 206 drives the load-bearing limit rod 213 to rotate and lift synchronously. At this time, the load-bearing limit rod 213 drives the rotating support plate 214 to rotate and lift. The rotating support plate 214 drives the concave-convex slide frame 215 to move along the integrated support frame 1. At this time, the side end of the pressing special-shaped block 236 on the inner side of the concave-convex slide frame 215 contacts the side end of the concave arc groove 216 and gradually rises along the concave arc groove 216. At this time, the pressing spring 217 is compressed. When it moves to the next position of the concave arc groove 216, the pressing spring 217 and the fixed damper 222 drive the pressing special-shaped block 236 to insert into the inner side of the concave arc groove 216. The L-shaped limit is used to effectively block the limit when the whole moves downward, avoiding the situation of sliding off.
[0074] When the sheathed support plate 205 is lifted and moved, the double-limit locking rod 218 drives the side block fixing box 219 to rise. At this time, the special-shaped positioning sleeve 224 moves along the integrated support frame 1. When the side block fixing box 219 rises, the integrated spring 220 is stretched, and the integrated spring 220 and the fixed damper 222 block and limit the side block fixing box 219 and the stable limit box 221. The lifting electric push rod 225 drives the sliding connection sleeve 223 to rise and fall along the special-shaped positioning sleeve 224, so as to adjust the height of the sliding connection sleeve 223 according to the rising height, and realize the overall pressing limit. The pressing limit at both ends and the middle support positioning are used to realize the overall limit fixation, reduce the one-way cost caused by the swing of the equipment during the lifting support process, and ensure the stability of the overall support and positioning;
[0075] When the load-bearing support frame 208 needs to be reset, the two sets of linked electromagnets 226 are magnetically attracted to each other, thereby driving the one-way interception box 212 to move into the inner side of the connection and fixing box 210, driving the pressing special-shaped block 236 to move into the inner side of the concave-convex sliding frame 215, and then the sliding integration block 204 is driven to move again by the in-and-out screw rod 203, thereby driving the sleeve support plate 205, the positioning lifting plate 206 and the load-bearing support frame 208 to move and reset;
[0076] When the load-bearing support frame 208 is lifted, the belt transmission box 201 drives the transmission gear 227 to rotate along the integrated support frame 1, and the transmission gear 227 drives the limiting rack 228 to move along the integrated support frame 1. When the limiting rack 228 moves, it drives the lifting matching bar 229 to rotate and lift, and the lifting matching bar 229 drives the lifting operation frame 233 to rise. At this time, the matching spring 231 presses the lifting sleeve 232 and the lifting operation frame 233 downward to limit. At this time, the lifting sleeve 232 at the bottom rises along the limiting sleeve 230, and the multiple lifting sleeves 232 slide and limit each other, and the lifting operation frame 233 rises along the lifting sleeve 232 to achieve multi-group step-by-step lifting cooperation. When the lifting operation frame 233 rises, the matching spring 231 is stretched. At this time, the flat laminating plate 235 is driven to rise, and the two sets of belt transmission boxes 201 are used to synchronously drive the lifting and lowering to achieve steady alignment processing and ensure the accuracy of flat alignment.
[0077] The pressing electric slide rail 308 drives the pressing upper push plate 309 to rise along the load-bearing support frame 208, pushing the combined sliding frame 311 to rise along the sliding limit hole 307. At this time, the combined spring 310 is compressed, and the staff pulls the pressing bandage 312 to place the material to be processed on the top of the non-slip support pad 315 embedded in the clamping groove 306 at the top position of the load-bearing support frame 208. After the placement is completed, the pressing electric slide rail 308 drives the pressing upper push plate 309 to move downward. At this time, the combined spring 310 drives the combined sliding frame 311 to move downward along the sliding limit hole 307, driving the pressing bandage 312 to press the material, realizing stable material positioning, so that the material can be steadily fixed according to the material shape when the material is placed, ensuring the stability of the material fixed limit;
[0078] The leveling laminating plate 235 is in an inclined state before the material is placed. The material pushes the leveling laminating plate 235 to rotate along the lifting operation frame 233. At this time, the return spring 234 is twisted and deformed, and the leveling laminating plate 235 drives the level detector 313 to rotate. The level detector 313 continuously detects the horizontal state. When the height of the equipment support plane is lower than the height of the machine support plane, the level detector 313 cannot fit with the bottom end of the material. At this time, the level detector 313 is in an inclined state. The level of the material is adjusted by rising the equipment to achieve parallel fitting of the material with the top of the leveling laminating plate 235 and the level detector 313. When the equipment height is higher than the machine height, the bottom end of the leveling laminating plate 235 and the pressure The top of the sensor 314 is pressed, and the pressure sensor 314 is under pressure. The level detector 313 is in an inclined state. The material level is adjusted by the equipment to achieve the material and the top of the flat laminating plate 235. At the same time, the level detector 313 and the pressure sensor 314 are used to detect together. When the whole is level, the level detector 313 is in a horizontal state and the bottom of the flat laminating plate 235 is in contact with the pressure sensor 314. Through the cooperation of the level detection and pressure detection, it is determined whether the height of the equipment support surface and the height of the machine support surface are in a horizontal position, thereby achieving overall level detection, ensuring the levelness of the equipment support, avoiding the material from tilting during the support process, and ensuring the levelness of the material placement;
[0079] When placing materials and equipment, the supporting electric push rod 302 drives the moving wheel 303 to rise and fall, and the lifting electric slide rail 304 drives the lifting balance box 305 to rise and fall along the supporting installation sleeve 301, and adjusts the distance between the lifting balance box 305 and the supporting installation sleeve 301. Moreover, multiple groups of supporting installation sleeves 301 and lifting balance boxes 305 can be adjusted arbitrarily to realize the leveling and integration of equipment. The moving wheel 303 drives the integrated support frame 1 to move, so that automatic feeding and processing can be carried out during material processing to ensure the balance and efficiency of production processing.
[0080] Finally, it should be noted that the above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art will be able to modify the technical solutions described in the aforementioned embodiments or substitute equivalents for some of the technical features. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.
Claims
1. An adjustable balancing device comprising an integrated support frame (1), characterized in that: The integrated support frame (1) is provided with a support adjustment and anti-falling component (2); The support and anti-falling component (2) comprises a belt transmission box (201); The side ends of the integrated support frame (1) are equidistantly mounted with belt transmission boxes (201), and a dual-axis motor (202) is mounted at one end of the integrated support frame (1) at a position corresponding to the input shaft of the belt transmission box (201) through a motor seat, wherein an inlet and outlet screw rod (203) is clamped on one side of the belt transmission box (201) through a symmetrical output shaft, and the side ends of the inlet and outlet screw rod (203) are connected to a sliding integrated block (204) through a screw rod seat; One end of the sliding integration block (204) is rotatably connected to a sleeve support plate (205), and both ends of the inner side of the integration support frame (1) are rotatably connected to positioning lifting plates (206), one end of the positioning lifting plate (206) is mounted with a correction motor (207) through a motor seat, and one end of the output shaft of the correction motor (207) is clamped with a load-bearing support frame (208); A plurality of inlet and outlet fixing holes (209) are equidistantly provided at both ends of the integrated support frame (1), and connecting fixing boxes (210) are welded at positions corresponding to the inlet and outlet fixing holes (209) at both ends of the integrated support frame (1), and a plurality of insertion springs (211) are equidistantly welded inside the connecting fixing box (210), and a one-way intercepting box (212) is welded at one end of the insertion spring (211); A plurality of limiting sleeves (230) are fixed at equal intervals on one end of the inner side of the integrated support frame (1), a plurality of matching springs (231) are arranged at equal intervals on the inner side of the limiting sleeve (230), a plurality of matching springs (231) are welded with a lifting sleeve (232) at one end, a lifting operation frame (233) is welded to the top end of one matching spring (231), a return spring (234) is fixed to the top end of the side end of the lifting operation frame (233), and a flat bonding plate (235) is welded to one end of the return spring (234); A level detector (313) is fixed to the top of the flat laminating plate (235), a pressure sensor (314) is fixed to one side of the top of the lifting operation frame (233), and a plurality of embedded card slots (306) are equidistantly formed at the top of the load-bearing support frame (208), and anti-slip support pads (315) are bonded to the inner sides of the embedded card slots (306).
2. The adjustable balancing device according to claim 1, characterized in that: The output shaft of the dual-axis motor (202) is engaged with the input shaft of the belt transmission box (201), the cross-sections of the top ends of the sliding integration block (204) and the one-way interception box (212) are both arc-shaped, and the load-bearing support frame (208) is rotatably sleeved on the side ends of the sleeve support plate (205) and the positioning lifting plate (206).
3. The adjustable balancing device according to claim 1, characterized in that: A load-bearing limit rod (213) is welded between the two positioning lifting plates (206); the side ends of the load-bearing limit rod (213) are rotatably connected to a plurality of rotating support plates (214) at equal intervals; the bottom ends of the plurality of rotating support plates (214) are rotatably connected to concave-convex sliding frames (215); and the top end of the integrated support frame (1) is provided with a plurality of concave arc grooves (216) at equal intervals; A plurality of compression springs (217) are symmetrically welded to the top inner side of the concave-convex sliding frame (215), and compression special-shaped blocks (236) are welded to the bottom ends of two compression springs (217). A double-limit locking rod (218) is rotatably passed through the side ends of the two sleeve support plates (205), and both ends of the double-limit locking rod (218) are rotatably connected to a side block fixing box (219). An integration spring (220) is symmetrically welded to the top inner side of the side block fixing box (219), and a stabilization limit box (221) is welded to one end of the two integration springs (220); The one-way intercepting box (212), the pressed special-shaped block (236) and the side stop fixing box (219) are all installed with a fixed damper (222) at one end, the bottom of the side end of the stable limit box (221) is rotatably connected to a sliding connection sleeve (223), and the two ends of the integrated support frame (1) are slidably connected to the positions of the sliding connection sleeve (223), and the bottom end of the inner side of the special-shaped positioning sleeve (224) is fixed with a lifting electric push rod (225); The connecting and fixing box (210), the one-way intercepting box (212), the concave-convex sliding frame (215) and the pressed special-shaped block (236) are all installed with a linkage electromagnet (226) at one end, wherein the output shaft of another belt transmission box (201) is equidistantly installed with a plurality of transmission gears (227), and the side end of the integrated support frame (1) is slidably connected to the position of the transmission gear (227), and one end of the limiting rack (228) is equidistantly connected to a lifting matching strip (229).
4. The adjustable balancing device according to claim 3, characterized in that: The one-way interception box (212) is slidably sleeved on the inner side of the inlet and outlet fixing hole (209), one end of the one-way interception box (212) is fitted with one end of the sliding integration block (204), and the side stop fixing box (219) is sleeved and connected with the stabilizing limit box (221).
5. The adjustable balancing device according to claim 3, characterized in that: The sliding connection sleeve (223) is sleeve-connected with the special-shaped positioning sleeve (224); the longitudinal section of the bottom of one end of the press-fit special-shaped block (236) is arc-shaped; and the longitudinal section of the press-fit special-shaped block (236) is L-shaped.
6. The adjustable balancing device according to claim 3, characterized in that: The plurality of fixed dampers (222) are respectively connected to the connection fixing box (210), the concave-convex sliding frame (215) and the stable limit box (221); the transmission gear (227) is engaged with the limiting rack (228); and one end of the lifting matching strip (229) is rotationally connected to the lifting operation frame (233).
7. The adjustable balancing device according to claim 3, characterized in that: The plurality of rising sleeves (232) are connected one by one by fitting together; The input ends of the dual-axis motor (202), the correction motor (207), the lifting electric push rod (225) and the linkage electromagnet (226) are all electrically connected to the output end of the external controller; The input end of the external controller is electrically connected to the output end of the external power supply.
8. The adjustable balancing device according to claim 7, characterized in that: The integrated support frame (1) is provided with a balanced pressing component (3); The balanced pressing assembly (3) comprises a support mounting sleeve (301); The bottom end of the integrated support frame (1) is symmetrically welded with a plurality of support mounting sleeves (301), and the bottom end of the integrated support frame (1) is symmetrically mounted with support electric push rods (302) at positions corresponding to the support mounting sleeves (301). The bottom ends of the two support electric push rods (302) are mounted with moving wheels (303). Both ends of the integrated support frame (1) are clamped with lifting electric slide rails (304), and one end of the two lifting electric slide rails (304) is connected to a lifting balance box (305) through a slide rail seat. The bottom end of the load-bearing support frame (208) is provided with a plurality of sliding limit holes (307) at equal intervals, and both ends of the inner side of the load-bearing support frame (208) are embedded with pressed electric slide rails (308), and a pressed upper push plate (309) is connected between the two pressed electric slide rails (308) through a slide rail seat, and a plurality of combined springs (310) are welded symmetrically at equal intervals on the inner side of the sliding limit holes (307), and a combined sliding frame (311) is welded to the bottom end of the plurality of combined springs (310), and a pressed bandage (312) is installed on the top end of the combined sliding frame (311).
9. The adjustable balancing device according to claim 8, characterized in that: The lifting balance box (305) is sleeve-connected with the support mounting sleeve (301), the moving wheel (303) is placed inside the lifting balance box (305), and the combined sliding frame (311) and the pressed bandage (312) are both slidably mounted inside the sliding limit hole (307).
10. The adjustable balancing device according to claim 8, characterized in that: The top end of the pressed upper push plate (309) is fitted with the bottom end of the combined sliding frame (311); The input ends of the supporting electric push rod (302), the lifting electric slide rail (304), the pressing electric slide rail (308), the level detector (313) and the pressure sensor (314) are all electrically connected to the output end of the external controller; The signal output end of the pressure sensor (314) is electrically connected to the signal input end of the external controller.
Citation Information
Patent Citations
Hydraulic balancing device and operation method thereof
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