Operating table device and system for heat preservation plate machining
By designing a multi-directional positioning and support operating table device, the problem of fixing the spacing of the limit blocks and the opening size was solved, and stable positioning and high-precision drilling of insulation boards of different specifications were achieved.
Patent Information
- Application Number
- CN202520356036.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2035-02-28
AI Technical Summary
In existing technologies, the spacing and opening size of the limiting blocks are fixed, making it difficult to effectively position insulation boards with large differences in width and thickness.
An operating platform device was designed, including a main body unit, a support unit, a first stabilizing unit, and a second stabilizing unit. Through the coordinated movement of these units, multi-directional positioning and support of the insulation board can be achieved, adapting to insulation boards of different specifications.
It achieves stable positioning of insulation boards of different specifications, ensures that the drilled holes meet the design requirements, and improves the processing accuracy and practicality.
Smart Images

Figure CN223749787U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of insulation board processing especially relates to a kind of operation platform device and system for insulation board processing. BACKGROUND
[0002] Insulation board is a kind of building material. Insulation board is made of polystyrene resin as raw material plus other raw and auxiliary materials and poly-inclusion, by heating mixing while injecting catalyst, then extruding and forming to manufacture rigid foam plastic board, with moisture-proof, waterproof performance, can reduce the thickness of building envelope structure, thereby increasing indoor usable area.
[0003] The prior art patent publication No. "CN219359654U" discloses a drilling equipment for insulation board processing, which comprises a supporting table, an adjusting structure is arranged on the top of the supporting table, the adjusting structure comprises a vertical pipe, the vertical pipe is fixedly installed on the upper part of the supporting table through a base, and a gas cylinder is fixedly connected to the top end of the vertical pipe, a supporting rod is movably connected to the upper end of the outer part of the vertical pipe, a first motor is installed above the supporting rod, the first motor is connected with a lead screw through an output shaft, the lead screw is located above the supporting rod, and a machine head is movably connected to the rear end of the lead screw through a lead sleeve, an axle seat is arranged on the bottom of the machine head, a bolt is arranged through the axle seat, and a laser pen is rotatably connected to the axle seat through the bolt. By arranging the rotating shaft and the fixed table, the workbench and the limiting block are cooperated, the workbench can be rotated through the rotating shaft, so that the insulation board can be rotated, the punching position can be adjusted at any time, the drilling work is more simple and fast, the top of the fixed table is penetrated by the bolt, the workbench can be fixed by rotating the bolt and pressing it on the edge of the workbench, so that the positioning of the workbench is more convenient and fast.
[0004] According to the above-mentioned disclosure, the distance between the symmetrical limiting blocks is fixed, and the size of the opening on one side of the limiting block is also fixed, which is not convenient for positioning the insulation boards with large width difference and large thickness difference.
[0005] At present, there is no effective solution to the problem of fixed distance between the limiting blocks and fixed size of the opening, which affects the positioning of the insulation board in the related technology. UTILITY MODEL CONTENTS
[0006] The utility model aims at the deficiencies in the prior art, and provides an operation platform device and system for insulation board processing to solve the problem of fixed distance between the limiting blocks and fixed size of the opening, which affects the positioning of the insulation board in the related technology.
[0007] To achieve the above-mentioned purpose, the technical scheme adopted by the utility model is as follows:
[0008] In a first aspect, an operating table device for processing insulation boards is provided, comprising:
[0009] a main unit arranged on a horizontal plane for placing an insulation board to be processed;
[0010] a support unit movably arranged at a second end of the main unit for reciprocating along a length direction of the main unit to support the insulation board to be processed;
[0011] a first stabilizing unit movably arranged at the second end of the main unit for reciprocating along the length direction of the main unit to stabilize the insulation board to be processed;
[0012] a second stabilizing unit movably arranged at a first end of the main unit for reciprocating along a width direction of the main unit to cooperate with the first stabilizing unit to stabilize the insulation board to be processed.
[0013] In some embodiments, the main unit comprises:
[0014] a main element arranged on a horizontal plane;
[0015] a plurality of first support elements distributed and arranged at a bottom end of the main element for supporting the main element;
[0016] a placing element arranged at a top end of the main element, an interior of the placing element movably arranged with the first stabilizing unit and the second stabilizing unit for placing the insulation board to be processed;
[0017] a first through-slot element arranged at a bottom end of the interior of the placing element;
[0018] a first mounting element arranged at an inner side of the first through-slot element and in sliding connection with the support unit;
[0019] a first connecting element arranged at a second end of the main element, in communication with the first through-slot element, and in rotational connection with the support unit;
[0020] a second connecting element arranged at the second end of the main element, in communication with the placing element, and in rotational connection with the first stabilizing unit;
[0021] a third connecting element arranged at a first end of the main element, in communication with the placing element, and in rotational connection with the second stabilizing unit.
[0022] In some embodiments, the main body unit further comprises:
[0023] A first sliding element is arranged at the second end of the main body unit and in communication with the placing element and in sliding connection with the first stabilizing unit.
[0024] In some embodiments, the main body unit further comprises:
[0025] A second sliding element is arranged at the first end of the main body unit and in communication with the placing element and in sliding connection with the second stabilizing unit.
[0026] In some embodiments, the supporting unit comprises:
[0027] A second mounting element is movably arranged at the inner side of the main body unit for reciprocating movement along the length direction of the main body unit;
[0028] A second through-slot element is arranged through the second mounting element and in communication with the main body unit;
[0029] At least one second supporting element is arranged at the top end of the second mounting element for reciprocating movement along the length direction of the main body unit under the action of the second mounting element to support the thermal insulation board to be processed;
[0030] A first control element is rotatably connected with the second mounting element and the main body unit respectively for driving the second mounting element to reciprocate along the length direction of the main body unit.
[0031] In some embodiments, the first stabilizing unit comprises:
[0032] A first stabilizing element is movably arranged at the inner side of the main body unit for reciprocating movement along the length direction of the main body unit to cooperate with the second stabilizing unit to stabilize the thermal insulation board to be processed;
[0033] A second control element is rotatably connected with the first stabilizing element and the main body unit respectively for driving the first stabilizing element to reciprocate along the length direction of the main body unit.
[0034] In some embodiments, the first stabilizing unit further comprises:
[0035] A third sliding element is arranged at the side of the first stabilizing element and in sliding connection with the main body unit.
[0036] In some embodiments, the second stabilizing unit comprises:
[0037] A second stabilizing element movably arranged inside the main unit for reciprocating along the width direction of the main unit to cooperate with the first stabilizing unit to stabilize the thermal insulation board to be processed;
[0038] A third control element rotatably connected with the second stabilizing element and the main unit respectively for driving the second stabilizing element to reciprocate along the width direction of the main unit.
[0039] In some embodiments, the second stabilizing unit further comprises:
[0040] A fourth sliding element arranged at the side of the second stabilizing element and slidably connected with the main unit.
[0041] An operation platform system comprising:
[0042] The operation platform device according to the first aspect;
[0043] A punching device arranged above the main unit of the operation platform device for performing punching operation on the thermal insulation board to be processed:
[0044] The operation platform device and system for processing thermal insulation boards according to the present application have the following technical effects compared with the prior art:
[0045] The operation platform device and system for processing thermal insulation boards according to the present application have the following technical effects compared with the prior art: BRIEF DESCRIPTION OF DRAWINGS
[0046] Figure 1 is a perspective structural schematic view of the operation platform device according to the present application;
[0047] Figure 2 is an exploded view of the operation platform device according to the present application;
[0048] Figure 3 is a perspective structural schematic view of the main unit according to the present application;
[0049] Figure 4is a three-dimensional structure schematic view of the support unit according to the embodiment of the utility model;
[0050] Figure 5 is a three-dimensional structure schematic view of the first stable unit according to the embodiment of the utility model;
[0051] Figure 6 is a three-dimensional structure schematic view of the second stable unit according to the embodiment of the utility model;
[0052] Figure 7 is a structure schematic view of the operation platform system according to the embodiment of the utility model.
[0053] The figure mark in it is: 100, operation platform device;
[0054] 110, main unit;111, main element;112, first support element;113, placing element;114, first through slot element;115, first installation element;116, first connecting element;117, second connecting element;118, third connecting element;119, first sliding element;1110, second sliding element;
[0055] 120, support unit;121, second installation element;122, second through slot element;123, second support element;124, first control element;
[0056] 130, first stable unit;131, first stable element;132, second control element;133, third sliding element;
[0057] 140, second stable unit;141, second stable element;142, third control element;143, fourth sliding element;
[0058] 200, punching equipment;A, thermal insulation board. DETAILED DESCRIPTION
[0059] The technical scheme in the embodiments of the utility model will be described clearly and completely below in conjunction with the drawings in the embodiments of the utility model, obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the person skilled in the art without creative labor belong to the scope of protection of the utility model.
[0060] It should be noted that the embodiments in the utility model and the features in the embodiments can be combined with each other without conflict.
[0061] The utility model will be further described below in conjunction with the drawings and specific embodiments, but not as the limitation of the utility model.
[0062] Example 1
[0063] This embodiment relates to the operating console device of this utility model.
[0064] like Figure 1 , Figure 2 As shown, an operating table device 100 for processing insulation boards includes a main body unit 110, a support unit 120, a first stabilizing unit 130, and a second stabilizing unit 140. The main body unit 110 is disposed on a horizontal plane and is used to place the insulation board to be processed. The support unit 120 is movably disposed at the second end of the main body unit 110 and is used to reciprocate along the length direction of the main body unit 110 to support the insulation board to be processed. The first stabilizing unit 130 is movably disposed at the second end of the main body unit 110 and is used to reciprocate along the length direction of the main body unit 110 to stabilize the insulation board to be processed. The second stabilizing unit 140 is movably disposed at the first end of the main body unit 110 and is used to reciprocate along the width direction of the main body unit 110 to cooperate with the first stabilizing unit 130 in stabilizing the insulation board to be processed.
[0065] like Figure 3 As shown, the main body unit 110 includes a main body element 111, several first support elements 112, placement elements 113, a first through slot element 114, a first mounting element 115, a first connecting element 116, a second connecting element 117, and a third connecting element 118. The main component 111 is positioned on a horizontal plane; several first support components 112 are distributed at the bottom of the main component 111 to support it; a placement component 113 is positioned at the top of the main component 111, and a first stabilizing unit 130 and a second stabilizing unit 140 are movably disposed inside the placement component 113 to place the insulation board to be processed; a first through-slot component 114 is positioned at the bottom of the placement component 113; a first mounting component 115 is positioned inside the first through-slot component 114 and is slidably connected to the support unit 120; a first connecting component 116 is positioned at the second end of the main component 111, communicates with the first through-slot component 114, and is rotatably connected to the support unit 120; a second connecting component 117 is positioned at the second end of the main component 111, communicates with the placement component 113, and is rotatably connected to the first stabilizing unit 130; and a third connecting component 118 is positioned at the first end of the main component 111, communicates with the placement component 113, and is rotatably connected to the second stabilizing unit 140.
[0066] The cross-section of the main component 111 is rectangular.
[0067] In some of these embodiments, the main component 111 is made of stainless steel.
[0068] In some of these embodiments, the main component 111 is a main frame.
[0069] The cross section of the first support element 112 is rectangular.
[0070] The size of the first support element 112 matches the size of the main body element 111. Generally, the length of the first support element 112 is less than the length of the main body element 111, the width of the first support element 112 is less than the width of the main body element 111, and the height of the first support element 112 is greater than the height of the main body element 111.
[0071] In some embodiments, several first support elements 112 are distributed at the four corners of the bottom end of the main body element 111.
[0072] In some embodiments, one first support element 112 is arranged at each of the four corners of the bottom end of the main body element 111.
[0073] In some embodiments, the first support element 112 is fixedly connected to the main body element 111, including but not limited to bolt connection.
[0074] In some embodiments, the first support element 112 is made of stainless steel.
[0075] In some embodiments, the first support element 112 is a support leg.
[0076] The cross section of the placement element 113 is rectangular.
[0077] The size of the placement element 113 matches the size of the main body element 111. Generally, the length of the placement element 113 is less than the length of the main body element 111, the width of the placement element 113 is less than the width of the main body element 111, and the height of the placement element 113 is less than the height of the main body element 111.
[0078] In some embodiments, the placement element 113 is an operation placement bin.
[0079] The cross section of the first through slot element 114 is rectangular.
[0080] The size of the first through slot element 114 matches the size of the main body element 111. Generally, the length of the first through slot element 114 is less than the length of the main body element 111, the width of the first through slot element 114 is less than the width of the main body element 111, and the height of the first through slot element 114 is less than the height of the main body element 111.
[0081] The first through-slot element 114 has dimensions matching those of the placement element 113. Typically, the length of the first through-slot element 114 is less than the length of the placement element 113, the width of the first through-slot element 114 is less than the width of the placement element 113, and the height of the first through-slot element 114 is less than the height of the placement element 113.
[0082] The height of the first through-slot element 114 plus the height of the placement element 113 equals the height of the main body element 111.
[0083] In some embodiments, the first through-slot element 114 is a first through-slot.
[0084] The first mounting element 115 has a rectangular cross-section.
[0085] The first mounting element 115 has dimensions matching those of the main body element 111. Typically, the length of the first mounting element 115 is less than the length of the main body element 111, the width of the first mounting element 115 is less than the width of the main body element 111, and the height of the first mounting element 115 is less than the height of the main body element 111.
[0086] The first mounting element 115 has dimensions matching those of the first through-slot element 114. Typically, the length of the first mounting element 115 is less than the length of the first through-slot element 114, the width of the first mounting element 115 is greater than the width of the first through-slot element 114, and the height of the first mounting element 115 is less than the height of the first through-slot element 114.
[0087] In some embodiments, the first mounting element 115 is a mounting slot.
[0088] The first connecting element 116 has a circular cross-section.
[0089] The first connecting element 116 has dimensions matching those of the main body element 111. Typically, the radial dimension of the first connecting element 116 is less than the width and height of the main body element 111, and the axial dimension of the first connecting element 116 is less than the length of the main body element 111.
[0090] The first connecting element 116 has dimensions matching those of the first through-slot element 114. Typically, the radial dimension of the first connecting element 116 is less than the width and height of the first through-slot element 114, and the axial dimension of the first connecting element 116 is less than the length of the first through-slot element 114.
[0091] The axial dimension of the first connecting element 116 equals the thickness of the side wall formed by the main body element 111 and the first through-slot element 114.
[0092] In some embodiments, the first connecting element 116 is a first threaded hole.
[0093] The cross section of the second connecting element 117 is circular.
[0094] The size of the second connecting element 117 matches the size of the main element 111. Generally, the radial dimension of the second connecting element 117 is smaller than the width and height of the main element 111, and the axial dimension of the second connecting element 117 is smaller than the length of the main element 111.
[0095] The size of the second connecting element 117 matches the size of the placing element 113. Generally, the radial dimension of the second connecting element 117 is smaller than the width and height of the placing element 113, and the axial dimension of the second connecting element 117 is smaller than the length of the placing element 113.
[0096] The axial dimension of the first connecting element 116 is equal to the thickness of the side wall formed by the main element 111 and the placing element 113.
[0097] In some embodiments, the second connecting element 117 is a second threaded hole.
[0098] The cross section of the third connecting element 118 is circular.
[0099] The size of the third connecting element 118 matches the size of the main element 111. Generally, the radial dimension of the third connecting element 118 is smaller than the length and height of the main element 111, and the axial dimension of the third connecting element 118 is smaller than the width of the main element 111.
[0100] The size of the third connecting element 118 matches the size of the placing element 113. Generally, the radial dimension of the third connecting element 118 is smaller than the length and height of the placing element 113, and the axial dimension of the third connecting element 118 is smaller than the width of the placing element 113.
[0101] The axial dimension of the third connecting element 118 is equal to the thickness of the front wall formed by the main element 111 and the placing element 113.
[0102] In some embodiments, the third connecting element 118 is a third threaded hole.
[0103] Further, the main unit 110 further comprises a first sliding element 119. The first sliding element 119 is arranged at the second end of the main element 111, and is in communication with the placing element 113 and in sliding connection with the first stabilizing unit 130.
[0104] The cross section of the first sliding element 119 is circular.
[0105] The first sliding element 119 has a size matching that of the main element 111. Generally, the radial dimension of the first sliding element 119 is smaller than the width and height of the main element 111, and the axial dimension of the first sliding element 119 is smaller than the length of the main element 111.
[0106] The first sliding element 119 has a size matching that of the main element 111. Generally, the radial dimension of the first sliding element 119 is smaller than the width and height of the main element 111, and the axial dimension of the first sliding element 119 is smaller than the length of the main element 111.
[0107] The axial dimension of the first sliding element 119 is equal to the thickness of the side wall formed by the main element 111 and the placement element 113.
[0108] In some embodiments, the first sliding element 119 is a first sliding hole.
[0109] Further, the main unit 110 further comprises a second sliding element 1110. The second sliding element 1110 is arranged at the first end of the main element 111, and is in communication with the placement element 113 and in sliding connection with the second stabilizing unit 140.
[0110] The second sliding element 1110 has a circular cross section.
[0111] The second sliding element 1110 has a size matching that of the main element 111. Generally, the radial dimension of the second sliding element 1110 is smaller than the length and height of the main element 111, and the axial dimension of the second sliding element 1110 is smaller than the width of the main element 111.
[0112] The second sliding element 1110 has a size matching that of the main element 111. Generally, the radial dimension of the second sliding element 1110 is smaller than the length and height of the main element 111, and the axial dimension of the second sliding element 1110 is smaller than the width of the main element 111.
[0113] The axial dimension of the second sliding element 1110 is equal to the thickness of the front wall formed by the main element 111 and the placement element 113.
[0114] In some embodiments, the second sliding element 1110 is a second sliding hole.
[0115] As Figure 4As shown, the supporting unit 120 comprises a second mounting element 121, a second through-slot element 122, at least one second supporting element 123, and a first control element 124. The second mounting element 121 is movably arranged at the inner side of the main unit 110, for reciprocating along the length direction of the main unit 110; the second through-slot element 122 is arranged through the second mounting element 121 and communicates with the main unit 110; the second supporting element 123 is arranged at the top end of the second mounting element 121, for reciprocating along the length direction of the main unit 110 under the action of the second mounting element 121 to support the heat-insulating board to be processed; and the first control element 124 is rotatably connected with the second mounting element 121 and the main unit 110, for driving the second mounting element 121 to reciprocate along the length direction of the main unit 110.
[0116] Specifically, the second mounting element 121 is movably arranged at the inner side of the first mounting element 115; the second through-slot element 122 communicates with the first through-slot element 114; the top end of the second supporting element 123 is flush with the bottom end of the placing element 113; and the first control element 124 is threadedly connected with the first connecting element 116.
[0117] The second mounting element 121 has a rectangular cross section.
[0118] The size of the second mounting element 121 matches the size of the first mounting element 115. Generally, the length of the second mounting element 121 is equal to the width of the first mounting element 115, the width of the second mounting element 121 is less than the length of the first mounting element 115, and the height of the second mounting element 121 is equal to the height of the first mounting element 115.
[0119] In some embodiments, the second mounting element 121 is made of stainless steel.
[0120] In some embodiments, the second mounting element 121 is a mounting plate.
[0121] The second through-slot element 122 has a rectangular cross section.
[0122] The size of the second through-slot element 122 matches the size of the second mounting element 121. Generally, the length of the second through-slot element 122 is less than the length of the second mounting element 121, the width of the second through-slot element 122 is less than the width of the second mounting element 121, and the height of the second through-slot element 122 is equal to the height of the second mounting element 121.
[0123] The size of the second through-slot element 122 matches the size of the first through-slot element 114. Generally, the length of the second through-slot element 122 is equal to the width of the first through-slot element 114.
[0124] In some embodiments, the second through-slot element 122 is a second through slot.
[0125] The second support element 123 has a rectangular cross section.
[0126] The second support element 123 has a size matching that of the second mounting element 121. Generally, the length of the second support element 123 is less than that of the second mounting element 121, and the width of the second support element 123 is less than that of the second mounting element 121.
[0127] The second support element 123 has a size matching that of the first through-slot element 114. Generally, the length of the second support element 123 is equal to the width of the first through-slot element 114.
[0128] In some embodiments, there are a plurality of second support elements 123, which are arranged at intervals along the width direction of the second mounting element 121.
[0129] In some embodiments, one second support element 123 is arranged at one side of the second mounting element 121, and another second support element 123 is arranged at the other side of the second mounting element 121.
[0130] In some embodiments, the second support element 123 is fixedly connected to the second mounting element 121, including but not limited to welding.
[0131] In some embodiments, the second support element 123 is made of stainless steel.
[0132] In some embodiments, the second support element 123 is a support plate.
[0133] In some embodiments, the first control element 124 includes a first threaded rod and a first control handle. The first threaded rod is rotationally connected to the second mounting element 121 and is threadedly connected to the first connecting element 116. The first control handle is arranged at the end of the first threaded rod and is connected to the first threaded rod, for driving the first threaded rod to rotate along the circumference of the first connecting element 116.
[0134] The first threaded rod has a size matching that of the second mounting element 121. Generally, the radial dimension of the first threaded rod is less than the length and height of the second mounting element 121.
[0135] The first threaded rod has a size matching that of the first connecting element 116. Generally, the radial dimension of the first threaded rod is equal to that of the first connecting element 116, and the axial dimension of the first threaded rod is greater than that of the first connecting element 116.
[0136] In some embodiments, the first operating element 124 is rotatably connected with the second mounting element 121 without separation. For example, the first operating element 124 is connected with the second mounting element 121 through a bearing seat.
[0137] In some embodiments, the first operating element 124 is made of stainless steel.
[0138] As shown in FIG. 1, the first operating element 124 is rotatably connected with the second mounting element 121. Figure 5 The first stabilizing unit 130 includes a first stabilizing element 131 and a second operating element 132. The first stabilizing element 131 is movably arranged at the inner side of the main body unit 110, and is configured to reciprocate along the length direction of the main body unit 110 to cooperate with the second stabilizing unit 140 to stabilize the heat-insulating board to be processed. The second operating element 132 is rotatably connected with the first stabilizing element 131 and the main body unit 110, and is configured to drive the first stabilizing element 131 to reciprocate along the length direction of the main body unit 110.
[0139] Specifically, the first stabilizing element 131 is movably arranged at the inner side of the placing element 113. The second operating element 132 is threadedly connected with the second connecting element 117.
[0140] The first stabilizing element 131 has a rectangular cross section.
[0141] The size of the first stabilizing element 131 matches the size of the placing element 113. Generally, the length of the first stabilizing element 131 is less than the width of the placing element 113, the width of the first stabilizing element 131 is less than the length of the placing element 113, and the height of the first stabilizing element 131 is equal to the height of the placing element 113.
[0142] In some embodiments, the first stabilizing element 131 is made of stainless steel.
[0143] In some embodiments, the first stabilizing element 131 is a first stabilizing plate.
[0144] In some embodiments, the second operating element 132 includes a second threaded rod and a second operating handle. The second threaded rod is rotatably connected with the first stabilizing element 131 and is threadedly connected with the second connecting element 117. The second operating handle is arranged at the end of the second threaded rod and is connected with the second threaded rod, and is configured to drive the second threaded rod to rotate along the circumferential direction of the second connecting element 117.
[0145] The size of the second threaded rod matches the size of the first stabilizing element 131. Generally, the radial dimension of the second threaded rod is less than the length and height of the first stabilizing element 131.
[0146] The second threaded rod is sized to match the size of the second connecting element 117. Generally, the radial dimension of the second threaded rod is equal to the radial dimension of the second connecting element 117, and the axial dimension of the second threaded rod is greater than the axial dimension of the second connecting element 117.
[0147] In some embodiments, the second operating element 132 is rotatably connected to the first stabilizing element 131 without being separated. For example, the second operating element 132 is connected to the first stabilizing element 131 through a bearing seat.
[0148] In some embodiments, the second operating element 132 is made of stainless steel.
[0149] Further, the first stabilizing unit 130 further comprises a third sliding element 133. The third sliding element 133 is arranged on the side of the first stabilizing element 131 and is slidably connected to the main body unit 110.
[0150] Specifically, the third sliding element 133 is slidably connected to the first sliding element 119.
[0151] The third sliding element 133 has a circular cross section.
[0152] The third sliding element 133 is sized to match the size of the first stabilizing element 131. Generally, the radial dimension of the third sliding element 133 is less than the length and height of the first stabilizing element 131.
[0153] The third sliding element 133 is sized to match the size of the first sliding element 119. Generally, the radial dimension of the third sliding element 133 is equal to the radial dimension of the first sliding element 119, and the axial dimension of the third sliding element 133 is greater than the axial dimension of the first sliding element 119.
[0154] In some embodiments, the third sliding element 133 is fixedly connected to the first stabilizing element 131, including but not limited to bolt connection.
[0155] In some embodiments, the third sliding element 133 is made of stainless steel.
[0156] In some embodiments, the third sliding element 133 is a first sliding rod.
[0157] As Figure 6As shown, the second stabilizing unit 140 comprises a second stabilizing element 141 and a third operating element 142. The second stabilizing element 141 is movably arranged at the inner side of the main body unit 110, and is configured to reciprocate along the width direction of the main body unit 110 to cooperate with the first stabilizing unit 130 to stabilize the thermal insulation board to be processed. The third operating element 142 is rotatably connected with the second stabilizing element 141 and the main body unit 110, and is configured to drive the second stabilizing element 141 to reciprocate along the width direction of the main body unit 110.
[0158] Specifically, the second stabilizing element 141 is movably arranged at the inner side of the placing element 113. The third operating element 142 is threadedly connected with the third connecting element 118.
[0159] The second stabilizing element 141 has a rectangular cross section.
[0160] The size of the second stabilizing element 141 matches the size of the placing element 113. Generally, the length of the second stabilizing element 141 is less than the length of the placing element 113, the width of the second stabilizing element 141 is less than the width of the placing element 113, and the height of the second stabilizing element 141 is equal to the height of the placing element 113.
[0161] The size of the second stabilizing element 141 matches the size of the first stabilizing element 131. Generally, the length of the second stabilizing element 141 is equal to the length of the first stabilizing element 131, the width of the second stabilizing element 141 is equal to the width of the first stabilizing element 131, and the height of the second stabilizing element 141 is equal to the height of the first stabilizing element 131.
[0162] In some embodiments, the second stabilizing element 141 is made of stainless steel.
[0163] In some embodiments, the second stabilizing element 141 is a second stabilizing plate.
[0164] In some embodiments, the third operating element 142 comprises a third threaded rod and a third operating handle. The third threaded rod is rotatably connected with the second stabilizing element 141 and threadedly connected with the third connecting element 118. The third operating handle is arranged at the end of the third threaded rod and connected with the third threaded rod, and is configured to drive the third threaded rod to rotate along the circumference of the third connecting element 118.
[0165] The size of the third threaded rod matches the size of the second stabilizing element 141. Generally, the radial dimension of the third threaded rod is less than the length and height of the second stabilizing element 141.
[0166] The third threaded rod is matched in size with the third connecting element 118. Generally, the radial dimension of the third threaded rod is equal to the radial dimension of the third connecting element 118, and the axial dimension of the third threaded rod is greater than the axial dimension of the third connecting element 118.
[0167] In some embodiments, the third operating element 142 is rotatably connected with the second stabilizing element 141 without separation. For example, the third operating element 142 is connected with the second stabilizing element 141 through a bearing seat.
[0168] In some embodiments, the third operating element 142 is made of stainless steel.
[0169] Further, the second stabilizing unit 140 further comprises a fourth sliding element 143. The fourth sliding element 143 is arranged at the side of the second stabilizing element 141 and is slidably connected with the main body unit 110.
[0170] Specifically, the fourth sliding element 143 is slidably connected with the second sliding element 1110.
[0171] The fourth sliding element 143 is circular in cross section.
[0172] The fourth sliding element 143 is matched in size with the second stabilizing element 141. Generally, the radial dimension of the fourth sliding element 143 is smaller than the length and height of the second stabilizing element 141.
[0173] The fourth sliding element 143 is matched in size with the second sliding element 1110. Generally, the radial dimension of the fourth sliding element 143 is equal to the radial dimension of the second sliding element 1110, and the axial dimension of the fourth sliding element 143 is greater than the axial dimension of the second sliding element 1110.
[0174] In some embodiments, the fourth sliding element 143 is fixedly connected with the second stabilizing element 141, including but not limited to bolt connection.
[0175] In some embodiments, the fourth sliding element 143 is made of stainless steel.
[0176] In some embodiments, the fourth sliding element 143 is a second sliding rod.
[0177] The use method of the utility model is as follows:
[0178] (I) placing operation
[0179] Place the heat preservation plate A to be processed in the placing element 113, and make the heat preservation plate A located at a corner of the placing element 113 (such as shown in the figure). Figure 7
[0180] (ii) positioning operation
[0181] Twist the second control element 132 to rotate along the circumference of the second connecting element 117 and move along the axial direction of the second connecting element 117 towards the direction of approaching the heat preservation plate A, drive the first stable element 131 to move correspondingly through the second control element 132, until abutting with the heat preservation plate A;
[0182] Twist the third control element 142 to rotate along the circumference of the third connecting element 118 and move along the axial direction of the third connecting element 118 towards the direction of approaching the heat preservation plate A, drive the second stable element 141 to move correspondingly through the third control element 142, until abutting with the heat preservation plate A.
[0183] (iii) support adjustment operation
[0184] Twist the first control element 124 to rotate along the circumference of the first connecting element 116 and move along the axial direction of the first connecting element 116, drive the second mounting element 121 to move correspondingly along the length direction of the first mounting element 115 through the first control element 124;
[0185] Drive the second support element 123 to move correspondingly through the second mounting element 121, until moving to the specified position (the punching position).
[0186] (iv) punching operation
[0187] Start the puncher to perform the punching operation on the heat preservation plate A to be processed;
[0188] During the process, the drill bit of the puncher gradually punches the heat preservation plate A and penetrates through the second through groove element 122.
[0189] The utility model discloses the advantages lie in, utilize the cooperation and use between main body unit 110, first stable unit 130 and second stable unit 140 can carry out positioning operation to different specifications' heat preservation plate, to satisfy the processing use to different specifications' heat preservation plate, improve practicality, utilize the cooperation and use of support unit 120 can support the punching place, make can evenly disperse the pressure that drill bit exerts, make the heat preservation plate keep steady form in the punching process, ensure that the hole that punches meets the design requirement, and the size precision is higher.
[0190] Example 2
[0191] This embodiment relates to the operation table system of the utility model.
[0192] As Figure 7As shown, an operating platform system comprises the operating platform device 100 and the perforating equipment 200.
[0193] Specifically, the perforating equipment 200 is arranged above the main body element 111.
[0194] In some embodiments, the perforating equipment 200 is a puncher.
[0195] The above description is only the preferred embodiments of the present application, and is not intended to limit the implementation and protection scope of the present application. It should be realized by those skilled in the art that any equivalent replacement and obvious changes made according to the content of the present application should be included in the protection scope of the present application.
Claims
1. An operating table device for processing of thermal insulation boards, characterized in that, The utility model relates to a heat preservation plate processing device, which comprises a main unit (110) arranged on a horizontal plane for placing a heat preservation plate to be processed, a supporting unit (120) movably arranged at a second end of the main unit (110) for reciprocating along the length direction of the main unit (110) to support the heat preservation plate to be processed, a first stabilizing unit (130) movably arranged at the second end of the main unit (110) for reciprocating along the length direction of the main unit (110) to stabilize the heat preservation plate to be processed, and a second stabilizing unit (140) movably arranged at a first end of the main unit (110) for reciprocating along the width direction of the main unit (110) to cooperate with the first stabilizing unit (130) to stabilize the heat preservation plate to be processed. The main unit (110) comprises a main element (111) arranged on a horizontal plane, a plurality of first supporting elements (112) distributed and arranged at the bottom end of the main element (111) for supporting the main element (111), a placing element (113) arranged at the top end of the main element (111), the inside of the placing element (113) movably arranged with the first stabilizing unit (130) and the second stabilizing unit (140) for placing the heat preservation plate to be processed, a first through slot element (114) arranged at the bottom end inside the placing element (113), a first mounting element (115) arranged inside the first through slot element (114) and slidably connected with the supporting unit (120), a first connecting element (116) arranged at the second end of the main element (111) and in communication with the first through slot element (114) and rotatably connected with the supporting unit (120), a second connecting element (117) arranged at the second end of the main element (111) and in communication with the placing element (113) and rotatably connected with the first stabilizing unit (130), and a third connecting element (118) arranged at the first end of the main element (111) and in communication with the placing element (113) and rotatably connected with the second stabilizing unit (140). The main unit (110) further comprises a first sliding element (119) arranged at the second end of the main element (111) and in communication with the placing element (113) and slidably connected with the first stabilizing unit (130). The main unit (110) further comprises 2. The console device according to claim 1, characterized by 3. The console arrangement of claim 2, wherein, 4. The console apparatus according to claim 3, characterized in that, A second sliding element (1110) is arranged at the first end of the main element (111) and is in communication with the placing element (113) and is in sliding connection with the second stabilizing unit (140).
5. The console apparatus of claim 1, wherein The supporting unit (120) comprises: A second mounting element (121) is movably arranged at the inner side of the main unit (110) and is used for reciprocating movement along the length direction of the main unit (110); A second through-groove element (122) is arranged through the second mounting element (121) and is in communication with the main unit (110); At least one second supporting element (123) is arranged at the top end of the second mounting element (121) and is used for reciprocating movement along the length direction of the main unit (110) under the action of the second mounting element (121) to support the heat insulation board to be processed; A first control element (124) is rotatably connected with the second mounting element (121) and the main unit (110) respectively and is used for driving the second mounting element (121) to reciprocate along the length direction of the main unit (110).
6. The console apparatus of claim 1, wherein The first stabilizing unit (130) comprises: A first stabilizing element (131) is movably arranged at the inner side of the main unit (110) and is used for reciprocating movement along the length direction of the main unit (110) to cooperate with the second stabilizing unit (140) to stabilize the heat insulation board to be processed; A second control element (132) is rotatably connected with the first stabilizing element (131) and the main unit (110) respectively and is used for driving the first stabilizing element (131) to reciprocate along the length direction of the main unit (110).
7. The console arrangement of claim 6, wherein, The first stabilizing unit (130) further comprises: A third sliding element (133) is arranged at the side of the first stabilizing element (131) and is in sliding connection with the main unit (110).
8. The console apparatus of claim 1, wherein The second stabilizing unit (140) comprises: A second stabilizing element (141) is movably arranged at the inner side of the main unit (110) and is used for reciprocating movement along the width direction of the main unit (110) to cooperate with the first stabilizing unit (130) to stabilize the heat insulation board to be processed; A third control element (142) is rotatably connected with the second stabilizing element (141) and the main unit (110) respectively and is used for driving the second stabilizing element (141) to reciprocate along the width direction of the main unit (110).
9. The console arrangement of claim 8, wherein, The second stabilizing unit (140) further comprises: A fourth sliding element (143) is arranged at the side of the second stabilizing element (141) and is in sliding connection with the main unit (110).
10. A console system, characterized by Comprising: The operating table device (100) according to any one of claims 1-9; A punching device (200) is arranged above the main unit (110) of the operating table device (100) and is used for punching work on the heat preservation plate to be processed.
Citation Information
Patent Citations
Drilling equipment for heat preservation plate machining
CN219359654U