Mounting structure and communication control system
By designing an installation structure including a base unit, an ejection unit, a clamping unit, a control unit, a top plate unit and a cover unit, the problem of inconvenient installation and disassembly of the housing of the communication control device is solved, and a more efficient maintenance process is achieved.
Patent Information
- Application Number
- CN202421962873.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-13
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2034-08-13
AI Technical Summary
The housing of the existing communication control device is inconvenient to install and disassemble, resulting in low maintenance efficiency.
An installation structure is designed, including a base unit, an ejection unit, a clamping unit, a control unit, a top plate unit and a cover unit. Through the use of these units, the convenient installation and disassembly of the cover unit is achieved, replacing the traditional screw fixation.
It improves the convenience of installation and disassembly operation of the communication control device, simplifies the process, and improves maintenance efficiency.
Smart Images

Figure CN223007760U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of communication control, in particular to an installation structure and a communication control system. Background Art
[0002] A communication control device is a communication interface device used to control data transmission between a data circuit and a host computer. It converts the parallel data of a computer into serial data transmitted on a communication line and completes all necessary control functions, error detection, and synchronization. Communication control devices are often installed at the work sites of various operations.
[0003] Currently, a communication control device includes a housing and a plurality of functional modules installed inside the housing. The controller housing is mainly used to accommodate electronic components and protect them from the environment. Conventional electronic components usually include a PCB board, and then electronic circuits, electronic components, etc. are arranged on the PCB board. The housing of the communication control device is usually fixed with screws, etc. When installing the PCB board and functional modules inside the housing or performing maintenance on the PCB board, the housing needs to be removed, and tools such as bolts are used for installation, which is rather troublesome and not conducive to improving the maintenance efficiency.
[0004] Currently, no effective solution has been proposed for the problems of inconvenient installation and disassembly of the housing and low maintenance efficiency in the related art. Summary of the Utility Model
[0005] The purpose of the utility model is to provide an installation structure and a communication control system for the deficiencies in the prior art to solve the problems of inconvenient installation and disassembly of the housing and low maintenance efficiency in the related art.
[0006] To achieve the above purpose, the technical solution adopted by the utility model is as follows:
[0007] In the first aspect, an installation structure for installing a communication interface device is provided, including:
[0008] A base unit, the base unit is arranged on a horizontal plane;
[0009] Two ejecting units, the two ejecting units are symmetrically arranged inside the base unit and are respectively connected to the base unit;
[0010] Two clamping units, the two clamping units are symmetrically arranged inside the base unit and are located between the two ejecting units, and are respectively slidably connected to the base unit for moving along the length direction of the base unit;
[0011] A control unit, which is movably arranged inside the base unit and is rotatably connected to the base unit and the two clamping units respectively, for driving the two clamping units to move towards or away from each other along the axial direction of the control unit;
[0012] A top plate unit, which is arranged on the top of the base unit. The bottom end of the top plate unit is in contact with the top ends of the two clamping units respectively, and a communication interface device is arranged at the top end of the top plate unit;
[0013] A cover unit, which is detachably arranged on the top of the base unit. The bottom of the cover unit is in contact with the two ejecting units, the two clamping units and the top plate unit respectively, for fixing the cover unit to the top end of the base unit under the action of the clamping unit, separating the cover unit from the top end of the base unit under the action of the clamping unit, and ejecting the cover unit from the top end of the base unit under the action of the ejecting unit.
[0014] In some embodiments, the base unit includes:
[0015] A base element, which is arranged on a horizontal plane, and two ejecting units, two clamping units, the control unit and the top plate unit are arranged inside the base element;
[0016] A first sliding element, which is arranged at the bottom end inside the base element and is slidably connected to the two clamping units respectively;
[0017] A first rotating element, which is arranged on the first side inside the base element and is rotatably connected to the control unit;
[0018] A second rotating element, which is arranged on the second side inside the base element and is rotatably connected to the control unit;
[0019] A third rotating element, which is arranged on the second side outside the base element, is communicated with the second rotating element, and is rotatably connected to the control unit.
[0020] In some embodiments, the ejecting unit includes:
[0021] At least one second sliding element, which is arranged inside the base unit and is connected to the base unit;
[0022] An ejecting element, the top end of the ejecting element abuts against the bottom end of the cover unit, and is used to reciprocate axially along the second sliding element under the action of the cover unit to eject the cover unit from the top end of the base unit;
[0023] At least one third sliding element, the third sliding element penetrates through the ejecting element and is slidably connected to the second sliding element;
[0024] At least one elastic element, the elastic element is sleeved on the second sliding element, and is located below the ejecting element, and is respectively connected to the ejecting element and the base unit, and is used to be extruded and deformed under the action of the ejecting element.
[0025] In some embodiments, the ejecting unit further includes:
[0026] At least one limiting element, the limiting element is arranged at the top end of the second sliding element and abuts against the ejecting element, and is used to limit the movement range of the ejecting element.
[0027] In some embodiments, the clamping unit includes:
[0028] A fourth sliding element, the fourth sliding element is slidably arranged inside the base unit;
[0029] A fourth rotating element, the fourth rotating element penetrates through the fourth sliding element and is rotatably connected to the control unit, and is used to drive the fourth sliding element to reciprocate axially along the control unit under the action of the control unit;
[0030] A first clamping element, the first clamping element is arranged on one side of the fourth sliding element close to the ejecting unit and abuts against the cover unit, and is used to reciprocate axially along the control unit under the action of the fourth sliding element to abut against or separate from the cover unit.
[0031] In some embodiments, the clamping unit further includes:
[0032] A support plate element, the support plate element is arranged at the top end of the fourth sliding element, the first clamping element is arranged at the bottom end of the support plate element, the top end of the support plate element is in contact with the bottom end of the top plate unit, and is respectively connected to the fourth sliding element and the first clamping element, and is used to drive the first clamping element to reciprocate axially along the control unit under the action of the fourth sliding element.
[0033] In some embodiments, the control unit includes:
[0034] A fifth rotating element, which is movably arranged inside the base unit and is respectively rotationally connected to the base unit and the two clamping units, and is used to drive the two clamping units to move towards or away from each other along the axial direction of the fifth rotating element;
[0035] A sixth rotating element, which is arranged at the second end of the fifth rotating element and is rotationally connected to the base unit, and is used to drive the fifth rotating element to rotate;
[0036] A control element, which is arranged at the end of the sixth rotating element and is connected to the sixth rotating element, and is used to drive the sixth rotating element to rotate.
[0037] In some of the embodiments, the top plate unit includes:
[0038] A top plate element, which is arranged on the top of the base unit. The bottom end of the top plate element is respectively in contact with the top ends of the two clamping units, and a communication interface device is arranged at the top end of the top plate element;
[0039] At least one first docking element, which is arranged at the top end of the top plate element and abuts against the cover unit;
[0040] Two through groove elements, which are symmetrically arranged on both sides of the top plate element and respectively penetrate through the top end of the top plate element, and are used for the cover unit to pass through the top plate element.
[0041] In some of the embodiments, the cover unit includes:
[0042] A cover element, which is detachably arranged on the top of the base unit;
[0043] At least one second docking element, which is arranged at the bottom end of the cover element and abuts against the top plate unit;
[0044] Two second clamping elements, which are symmetrically arranged on both sides of the bottom end of the cover element and respectively pass through the top plate unit, and respectively abut against the corresponding ejecting unit and the corresponding clamping unit, and are used to fix the cover element on the top end of the base unit under the action of the clamping unit or separate the cover element from the top end of the base unit under the action of the clamping unit and eject the cover unit from the top end of the base unit under the action of the ejecting unit.
[0045] In a second aspect, a communication control system is provided, including:
[0046] The installation structure as described in the first aspect;
[0047] A communication control device, which is arranged on the top plate unit of the installation structure.
[0048] The present utility model adopts the above technical solutions. Compared with the prior art, it has the following technical effects:
[0049] For an installation structure and a communication control system of the present utility model, by using the cooperation among the clamping unit, the control unit, the base unit and the cover unit, the cover unit can be installed on the base unit, replacing the use of screws for fixation, so as to facilitate installation and disassembly and improve the operation convenience; by using the ejection unit, the cover unit can be ejected from the bottom plate unit, further improving the operation convenience, thereby improving the maintenance efficiency. Description of the Drawings
[0050] Figure 1 is a three-dimensional structure schematic diagram of the installation structure according to an embodiment of the present utility model;
[0051] Figure 2 is a partial enlarged view of the inside of the installation structure according to an embodiment of the present utility model;
[0052] Figure 3 is a partial enlarged view of the inside of the installation structure in another state according to an embodiment of the present utility model;
[0053] Figure 4 is an exploded view of the installation structure according to an embodiment of the present utility model;
[0054] Figure 5 is a cross-sectional view of the base unit according to an embodiment of the present utility model;
[0055] Figure 6 is an exploded view of the ejection unit according to an embodiment of the present utility model;
[0056] Figure 7 is an exploded view of the clamping unit according to an embodiment of the present utility model;
[0057] Figure 8 is a partial enlarged view of the control unit according to an embodiment of the present utility model;
[0058] Figure 9 is a three-dimensional structure schematic diagram of the top plate unit according to an embodiment of the present utility model;
[0059] Figure 10 is a three-dimensional structure schematic diagram of the cover unit according to an embodiment of the present utility model;
[0060] Figure 11 is a structure schematic diagram of the communication control system according to an embodiment of the present utility model;
[0061] The accompanying reference numerals are: 100, mounting structure;
[0062] 110, base unit; 111, base element; 112, first sliding element; 113, first rotating element; 114, second rotating element; 115, third rotating element;
[0063] 120, ejection unit; 121, second sliding element; 122, ejection element; 123, third sliding element; 124, elastic element; 125, limiting element;
[0064] 130, clamping unit; 131, fourth sliding element; 132, fourth rotating element; 133, first clamping element; 134, support plate element;
[0065] 140, control unit; 141, fifth rotating element; 142, sixth rotating element; 143, control element;
[0066] 150, top plate unit; 151, top plate element; 152, first docking element; 153, through slot element;
[0067] 160, cover unit; 161, cover element; 162, second docking element; 163, second clamping element;
[0068] 200, communication control device. Detailed implementation manners
[0069] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0070] It should be noted that, without conflict, the embodiments in the present invention and the features in the embodiments may be combined with each other.
[0071] Next, the present invention will be further described in conjunction with the accompanying drawings and specific embodiments, but it is not a limitation of the present invention.
[0072] Embodiment 1
[0073] This embodiment relates to the mounting structure of the present invention.
[0074] As Figure 1 , Figure 2 , Figure 3 , Figure 4As shown, an installation structure 100 for installing a communication interface device includes a base unit 110, two ejection units 120, two clamping units 130, a control unit 140, a top plate unit 150, and a cover unit 160. Among them, the base unit 110 is disposed on a horizontal plane; the two ejection units 120 are symmetrically disposed inside the base unit 110 and are respectively connected to the base unit 110; the two clamping units 130 are symmetrically disposed inside the base unit 110, are located between the two ejection units 120, and are respectively slidably connected to the base unit 110 for moving along the length direction of the base unit 110; the control unit 140 is movably disposed inside the base unit 110 and is respectively rotationally connected to the base unit 110 and the two clamping units 130 for driving the two clamping units 130 to move towards each other or away from each other along the axial direction of the control unit 140; the top plate unit 150 is disposed on the top of the base unit 110, the bottom end of the top plate unit 150 is respectively in contact with the top ends of the two clamping units 130, and a communication interface device is disposed at the top end of the top plate unit 150; the cover unit 160 is detachably disposed on the top of the base unit 110, and the bottom of the cover unit 160 is respectively abutted against the two ejection units 120, the two clamping units 130, and the top plate unit 150 for fixing the cover unit 160 to the top end of the base unit 110 under the action of the clamping unit 130, separating the cover unit 160 from the top end of the base unit 110 under the action of the clamping unit 130, and ejecting the cover unit 160 from the top end of the base unit 110 under the action of the ejection unit 120.
[0075] As Figure 5 As shown, the base unit 110 includes a base element 111, a first sliding element 112, a first rotating element 113, a second rotating element 114, and a third rotating element 115. Among them, the base element 111 is disposed on a horizontal plane, and the two ejection units 120, the two clamping units 130, the control unit 140, and the top plate unit 150 are disposed inside the base element 111; the first sliding element 112 is disposed at the bottom end inside the base element 111 and is respectively slidably connected to the two clamping units 130; the first rotating element 113 is disposed on the first side inside the base element 111 and is rotationally connected to the control unit 140; the second rotating element 114 is disposed on the second side inside the base element 111 and is rotationally connected to the control unit 140; the third rotating element 115 is disposed on the second side outside the base element 111, is communicated with the second rotating element 114, and is rotationally connected to the control unit 140.
[0076] The base element 111 has a structure with a hollow top end and a closed bottom end.
[0077] In some embodiments, the base element 111 is made of stainless steel.
[0078] In some of these embodiments, the base element 111 is a bottom case.
[0079] The cross-section of the first sliding element 112 is convex. Specifically, the first sliding element 112 includes a first sliding groove and a second sliding groove. Among them, the first sliding groove is provided at the bottom end inside the base element 111 and is slidably connected to the clamping unit 130; the second sliding groove is provided at the bottom end inside the first sliding groove, communicates with the first sliding groove, and is slidably connected to the clamping unit 130.
[0080] The size of the first sliding groove matches the size of the base element 111. Generally, the length of the first sliding groove is less than the length of the inner side of the base element 111, the width of the first sliding groove is less than the width of the inner side of the base element 111, and the height of the first sliding groove is less than the thickness of the bottom wall of the base element 111.
[0081] The size of the second sliding groove matches the size of the base element 111. Generally, the length of the second sliding groove is less than the length of the inner side of the base element 111, the width of the second sliding groove is less than the width of the inner side of the base element 111, and the height of the second sliding groove is less than the thickness of the bottom wall of the base element 111.
[0082] The size of the second sliding groove matches the size of the first sliding groove. Generally, the length of the second sliding groove is equal to the length of the first sliding groove, and the width of the second sliding groove is greater than the width of the first sliding groove.
[0083] In some of these embodiments, the height of the second sliding groove is equal to the height of the first sliding groove.
[0084] In some of these embodiments, the sum of the height of the second sliding groove and the height of the first sliding groove is less than the thickness of the bottom wall of the base element 111.
[0085] The cross-section of the first rotating element 113 is circular.
[0086] The size of the first rotating element 113 matches the size of the base element 111. Generally, the diameter of the first rotating element 113 is less than the width and height of the inner side of the base element 111, and the axial dimension of the first rotating element 113 is less than the thickness of the side wall of the base element 111.
[0087] In some of these embodiments, the first rotating element 113 is a first rotating hole.
[0088] The cross-section of the second rotating element 114 is circular.
[0089] The second rotating element 114 is coaxially arranged with the first rotating element 113.
[0090] The size of the second rotating element 114 matches the size of the base element 111. Generally, the diameter of the second rotating element 114 is smaller than the width and height of the inner side of the base element 111, and the axial dimension of the second rotating element 114 is smaller than the thickness of the side wall of the base element 111.
[0091] The size of the second rotating element 114 matches the size of the first rotating element 113. Generally, the diameter of the second rotating element 114 is equal to the diameter of the first rotating element 113.
[0092] In some of the embodiments, the second rotating element 114 is a second rotating hole.
[0093] The cross-section of the third rotating element 115 is circular.
[0094] The third rotating element 115 is coaxially arranged with the second rotating element 114.
[0095] The size of the third rotating element 115 matches the size of the base element 111. Generally, the diameter of the third rotating element 115 is smaller than the width and height of the outer side of the base element 111, and the axial dimension of the third rotating element 115 is smaller than the thickness of the side wall of the base element 111.
[0096] The size of the third rotating element 115 matches the size of the second rotating element 114. Generally, the diameter of the third rotating element 115 is larger than the diameter of the second rotating element 114.
[0097] In some of the embodiments, the sum of the axial dimensions of the third rotating element 115 and the second rotating element 114 is equal to the thickness of the side wall of the base element 111.
[0098] In some of the embodiments, the third rotating element 115 is a third rotating hole.
[0099] As Figure 6 shown, the ejecting unit 120 includes at least one second sliding element 121, an ejecting element 122, at least one third sliding element 123, and at least one elastic element 124. Among them, the second sliding element 121 is disposed inside the base unit 110 and is connected to the base unit 110; the top end of the ejecting element 122 abuts against the bottom end of the cover unit 160 and is used to reciprocate axially along the second sliding element 121 under the action of the cover unit 160 to eject the cover unit 160 out of the top end of the base unit 110; the third sliding element 123 penetrates through the ejecting element 122 and is slidably connected to the second sliding element 121; the elastic element 124 is sleeved on the second sliding element 121 and is located below the ejecting element 122, and is respectively connected to the ejecting element 122 and the base unit 110, and is used to be extruded and deformed under the action of the ejecting element 122.
[0100] Specifically, the second sliding element 121 is disposed at the bottom end inside the base element 111 and is connected to the base element 111; the bottom end of the elastic element 124 is connected to the base element 111.
[0101] The cross-section of the second sliding element 121 is circular, oval, etc.
[0102] The size of the second sliding element 121 matches the size of the base element 111. Generally, the radial dimension of the second sliding element 121 is smaller than the inner length and inner width of the base element 111, and the axial dimension of the second sliding element 121 is smaller than the inner height of the base element 111.
[0103] In some embodiments, there are several second sliding elements 121. The several second sliding elements 121 are symmetrically disposed at the bottom end inside the base element 111.
[0104] In some embodiments, a second sliding element 121 is disposed on one side of the bottom end inside the base element 111, and a second sliding element 121 is disposed on the other side of the bottom end inside the base element 111.
[0105] In some embodiments, the second sliding element 121 is fixedly connected to the base element 111, including but not limited to welding.
[0106] In some embodiments, the second sliding element 121 is made of stainless steel.
[0107] In some embodiments, the second sliding element 121 is a sliding column.
[0108] The cross-section of the ejecting element 122 is rectangular.
[0109] The size of the ejecting element 122 matches the size of the second sliding element 121. Generally, the length and width of the ejecting element 122 are greater than the radial dimension of the second sliding element 121, and the height of the ejecting element 122 is smaller than the axial dimension of the second sliding element 121.
[0110] The size of the ejecting element 122 matches the size of the base element 111. Generally, the length of the ejecting element 122 is smaller than the inner width of the base element 111, the width of the ejecting element 122 is smaller than the inner length of the base element 111, and the height of the ejecting element 122 is smaller than the inner height of the base element 111.
[0111] In some embodiments, the ejecting element 122 is made of stainless steel.
[0112] In some embodiments, the ejecting element 122 is an ejecting plate.
[0113] The cross-section of the third sliding element 123 is circular, elliptical, etc.
[0114] The size of the third sliding element 123 matches the size of the ejecting element 122. Generally, the radial dimension of the third sliding element 123 is smaller than the length and width of the ejecting element 122, and the axial dimension of the third sliding element 123 is equal to the height of the ejecting element 122.
[0115] The size of the third sliding element 123 matches the size of the second sliding element 121. Generally, the radial dimension of the third sliding element 123 is equal to the radial dimension of the second sliding element 121, and the axial dimension of the third sliding element 123 is smaller than the axial dimension of the second sliding element 121.
[0116] The number of the third sliding elements 123 matches the number of the second sliding elements 121. Generally, the number of the third sliding elements 123 is equal to the number of the second sliding elements 121.
[0117] In some of the embodiments, there are several third sliding elements 123. The several third sliding elements 123 are symmetrically arranged at the top end of the ejecting element 122.
[0118] In some of the embodiments, a third sliding element 123 is arranged on one side of the top end of the ejecting element 122, and a third sliding element 123 is arranged on the other side of the top end of the ejecting element 122.
[0119] In some of the embodiments, the third sliding element 123 is a sliding hole.
[0120] The number of the elastic elements 124 matches the number of the second sliding elements 121. Generally, the number of the elastic elements 124 is equal to the number of the second sliding elements 121
[0121] In some of the embodiments, the elastic elements 124 are respectively fixedly connected to the base element 111 and the ejecting element 122.
[0122] In some of the embodiments, the elastic elements 124 are made of stainless steel.
[0123] In some of the embodiments, the elastic elements 124 are springs.
[0124] Furthermore, the ejecting unit 120 further includes at least one limiting element 125. Wherein, the limiting element 125 is arranged at the top end of the second sliding element 121 and abuts against the ejecting element 122 for limiting the movement range of the ejecting element 122.
[0125] The cross-section of the limiting element 125 is circular, rounded rectangular, elliptical, etc.
[0126] The size of the limiting element 125 matches the size of the second sliding element 121. Generally, the radial dimension of the limiting element 125 is greater than the radial dimension of the second sliding element 121, and the axial dimension of the limiting element 125 is less than the axial dimension of the second sliding element 121.
[0127] The size of the limiting element 125 matches the size of the third sliding element 123. Generally, the radial dimension of the limiting element 125 is greater than the radial dimension of the third sliding element 123.
[0128] The number of the limiting elements 125 matches the number of the second sliding elements 121. Generally, the number of the limiting elements 125 is equal to the number of the second sliding elements 121.
[0129] In some of these embodiments, the limiting element 125 is fixedly connected to the second sliding element 121, including but not limited to being integrally formed.
[0130] In some of these embodiments, the limiting element 125 is made of stainless steel.
[0131] In some of these embodiments, the limiting element 125 is a limiting plate.
[0132] As Figure 7 shown, the clamping unit 130 includes a fourth sliding element 131, a fourth rotating element 132, and a first clamping element 133. Among them, the fourth sliding element 131 is slidably disposed inside the base unit 110; the fourth rotating element 132 passes through the fourth sliding element 131 and is rotatably connected to the control unit 140 for driving the fourth sliding element 131 to reciprocate axially along the control unit 140 under the action of the control unit 140; the first clamping element 133 is disposed on one side of the fourth sliding element 131 close to the ejecting unit 120 and abuts against the cover unit 160 for reciprocating axially along the control unit 140 under the action of the fourth sliding element 131 to abut against or separate from the cover unit 160.
[0133] Specifically, the fourth sliding element 131 is slidably disposed on the first sliding element 112; the fourth rotating element 132 corresponds to the first rotating element 113 and the second rotating element 114; the first clamping element 133 is disposed on one side of the fourth sliding element 131 close to the ejecting element 122.
[0134] The cross-section of the fourth sliding element 131 is convex. Specifically, the fourth sliding element 131 includes a first slider and a second slider. Among them, a first clamping element 133 is provided at the top end of the first slider. The first slider is provided with a fourth rotating element 132 therethrough and is slidably connected to the first chute; the second slider is provided at the bottom end of the first slider and is slidably connected to the second chute.
[0135] The size of the first slider matches the size of the first chute. Generally, the length of the first slider is equal to the width of the first chute, the width of the first slider is less than the length of the first chute, and the height of the first slider is greater than the height of the first chute.
[0136] The size of the first slider matches the size of the base element 111. Generally, the length of the first slider is less than the inner width of the base element 111, the width of the first slider is less than the inner length of the base element 111, and the height of the first slider is less than the inner height of the base element 111.
[0137] The size of the second slider matches the size of the second chute. Generally, the length of the second slider is equal to the width of the second chute, the width of the second slider is less than the length of the second chute, and the height of the second slider is equal to the height of the second chute.
[0138] The size of the second slider matches the size of the first slider. Generally, the length of the second slider is greater than the length of the first slider, the width of the second slider is equal to the width of the first slider, and the height of the second slider is less than the height of the first slider.
[0139] In some of the embodiments, the fourth sliding element 131 is made of stainless steel.
[0140] The cross-section of the fourth rotating element 132 is circular.
[0141] The size of the fourth rotating element 132 matches the size of the fourth sliding element 131. Generally, the diameter of the fourth rotating element 132 is less than the length and height of the first slider, and the axial dimension of the fourth rotating element 132 is equal to the width of the first slider.
[0142] The size of the fourth rotating element 132 matches the size of the first rotating element 113 (second rotating element 114). Generally, the diameter of the fourth rotating element 132 is equal to the diameter of the first rotating element 113 (second rotating element 114).
[0143] In some of the embodiments, the fourth rotating element 132 of one clamping unit 130 is a right-threaded hole, and the fourth rotating element 132 of the other clamping unit 130 is a left-threaded hole.
[0144] The cross-section of the first clamping element 133 is a right triangle. Specifically, the short right-angled side of the first clamping element 133 is arranged on the side of the fourth sliding element 131 close to the ejecting element 122.
[0145] The size of the first clamping element 133 matches the size of the fourth sliding element 131. Generally, the length of the first clamping element 133 is equal to the length of the first slider.
[0146] The size of the first clamping element 133 matches the size of the base element 111. Generally, the length of the first clamping element 133 is less than the inner width of the base element 111, the length of the long right-angled side of the first clamping element 133 is less than the inner length of the base element 111, and the length of the short right-angled side of the first clamping element 133 is less than the inner height of the base element 111.
[0147] In some of the embodiments, the first clamping element 133 is made of stainless steel.
[0148] In some of the embodiments, the first clamping element 133 is a first clamping block.
[0149] Furthermore, the clamping unit 130 further includes a support plate element 134. Among them, the support plate element 134 is arranged at the top of the fourth sliding element 131. The bottom end of the support plate element 134 is provided with the first clamping element 133. The top end of the support plate element 134 is in contact with the bottom end of the top plate unit 150 and is respectively connected to the fourth sliding element 131 and the first clamping element 133, and is used to drive the first clamping element 133 to reciprocate axially along the control unit 140 under the action of the fourth sliding element 131.
[0150] Specifically, the support plate element 134 is arranged at the top of the first slider and is connected to the first slider.
[0151] The cross-section of the support plate element 134 is rectangular.
[0152] The size of the support plate element 134 matches the size of the first slider. Generally, the length of the support plate element 134 is equal to the length of the first slider, the width of the support plate element 134 is greater than the width of the first slider, and the height of the support plate element 134 is less than the height of the first slider.
[0153] The size of the support plate element 134 matches the size of the base element 111. Generally, the length of the support plate element 134 is less than the inner width of the base element 111, the width of the support plate element 134 is less than the inner length of the base element 111, and the height of the support plate element 134 is less than the inner height of the base element 111.
[0154] The size of the support plate element 134 matches the size of the first clamping element 133. Generally, the length of the support plate element 134 is equal to the length of the first clamping element 133, the width of the support plate element 134 is greater than the length of the long right-angled side of the first clamping element 133, and the height of the support plate element 134 is not greater than the length of the short right-angled side of the first clamping element 133.
[0155] In some of these embodiments, the support plate element 134 is fixedly connected to the fourth sliding element 131 and the first clamping element 133 respectively, including but not limited to being integrally formed.
[0156] In some of these embodiments, the support plate element 134 is made of stainless steel.
[0157] In some of these embodiments, the support plate element 134 is a support plate.
[0158] As Figure 8 shown, the control unit 140 includes a fifth rotating element 141, a sixth rotating element 142, and a control element 143. Among them, the fifth rotating element 141 is movably arranged inside the base unit 110 and is respectively rotationally connected to the base unit 110 and the two clamping units 130, and is used to drive the two clamping units 130 to move towards or away from each other along the axial direction of the fifth rotating element 141; the sixth rotating element 142 is arranged at the second end of the fifth rotating element 141 and is rotationally connected to the base unit 110, and is used to drive the fifth rotating element 141 to rotate; the control element 143 is arranged at the end of the sixth rotating element 142 and is connected to the sixth rotating element 142, and is used to drive the sixth rotating element 142 to rotate.
[0159] Specifically, the fifth rotating element 141 is respectively rotationally connected to the first rotating element 113, the second rotating element 114, and the two fourth rotating elements 132; the sixth rotating element 142 is rotationally connected to the third rotating element 115.
[0160] The cross-section of the fifth rotating element 141 is circular. Specifically, the fifth rotating element 141 includes a support rod, a positive thread groove, and a reverse thread groove. Among them, the support rod is respectively rotationally connected to the first rotating element 113, the second rotating element 114, and the two fourth rotating elements 132, and the second end of the support rod is provided with the sixth rotating element 142; the positive thread groove is arranged on the support rod and is threadedly connected to the fourth rotating element 132 of one clamping unit 130; the reverse thread groove is arranged on the support rod and is threadedly connected to the fourth rotating element 132 of the other clamping unit 130.
[0161] The size of the support rod matches the size of the first rotating element 113 (the second rotating element 114, the fourth rotating element 132). Generally, the diameter of the support rod is equal to the diameter of the first rotating element 113 (the second rotating element 114, the fourth rotating element 132), and the axial dimension of the support rod is greater than the axial dimension of the first rotating element 113 (the second rotating element 114, the fourth rotating element 132).
[0162] The size of the support rod matches the size of the base element 111. Generally, the axial dimension of the support rod is greater than the inner length of the base element 111.
[0163] In some of these embodiments, the fifth rotating element 141 is respectively rotatably connected to the first rotating element 113 and the second rotating element 114 in a non-separable manner. For example, the fifth rotating element 141 is respectively connected to the first rotating element 113 and the second rotating element 114 through bearing seats.
[0164] In some of these embodiments, the fifth rotating element 141 is made of stainless steel.
[0165] In some of these embodiments, the fifth rotating element 141 is a lead screw.
[0166] In some of these embodiments, the sixth rotating element 142 has a structure with one side closed and one side hollowed out.
[0167] The size of the sixth rotating element 142 matches the size of the third rotating element 115. Generally, the outer diameter of the sixth rotating element 142 is equal to the diameter of the third rotating element 115, and the outer axial dimension of the sixth rotating element 142 is equal to the axial dimension of the third rotating element 115.
[0168] The size of the sixth rotating element 142 matches the size of the fifth rotating element 141. Generally, the outer diameter of the sixth rotating element 142 is greater than the diameter of the support rod, and the outer axial dimension of the sixth rotating element 142 is less than the axial dimension of the support rod.
[0169] In some of these embodiments, the sixth rotating element 142 is fixedly connected to the fifth rotating element 141, including but not limited to welding.
[0170] In some of these embodiments, the sixth rotating element 142 is made of stainless steel.
[0171] In some of these embodiments, the sixth rotating element 142 is a rotating shell.
[0172] The cross-section of the control element 143 is arc-shaped.
[0173] The size of the control element 143 matches the size of the sixth rotating element 142. Generally, the radial dimension (such as length) of the control element 143 is equal to the inner diameter of the sixth rotating element 142, the radial dimension (such as thickness) of the control element 143 is less than the inner diameter of the sixth rotating element 142, and the axial dimension of the control element 143 is not greater than the inner axial dimension of the sixth rotating element 142.
[0174] In some of these embodiments, the control element 143 is fixedly connected to the sixth rotating element 142, including but not limited to being integrally formed.
[0175] In some of these embodiments, the control element 143 is made of stainless steel.
[0176] In some of these embodiments, the control element 143 is a control block.
[0177] As Figure 9 shown, the top plate unit 150 includes a top plate element 151, at least one first docking element 152, and two through-channel elements 153. Among them, the top plate element 151 is disposed on the top of the base unit 110, the bottom ends of the top plate element 151 are respectively in contact with the top ends of the two clamping units 130, and a communication interface device is disposed at the top end of the top plate element 151; the first docking element 152 is disposed at the top end of the top plate element 151 and abuts against the cover unit 160; the two through-channel elements 153 are symmetrically disposed on both sides of the top plate element 151 and respectively penetrate through the top end of the top plate element 151 for the cover unit 160 to pass through the top plate element 151.
[0178] Specifically, the top plate element 151 is disposed on the top of the base element 111, and the bottom end of the top plate element 151 is in contact with the support plate element 134.
[0179] The cross-section of the top plate element 151 is rectangular.
[0180] The size of the top plate element 151 matches the size of the base element 111. Generally, the length of the top plate element 151 is equal to the inner length of the base element 111, the width of the top plate element 151 is equal to the inner width of the base element 111, and the height of the top plate element 151 is less than the inner height of the base element 111.
[0181] In some of these embodiments, the top plate element 151 is fixedly connected to the base element 111, including but not limited to being bolted.
[0182] In some of these embodiments, the top plate element 151 is made of stainless steel.
[0183] In some of these embodiments, the top plate element 151 is a top plate.
[0184] The cross-section of the first docking element 152 is rectangular.
[0185] The dimensions of the first docking element 152 match those of the top plate element 151. Generally, the length of the first docking element 152 is less than the length of the top plate element 151, the width of the first docking element 152 is less than the width of the top plate element 151, and the height of the first docking element 152 is less than the height of the top plate element 151.
[0186] In some embodiments thereof, there are a plurality of first docking elements 152. The plurality of first docking elements 152 are symmetrically arranged on both sides of the top of the top plate element 151.
[0187] In some embodiments thereof, a first docking element 152 is arranged on one side of the top of the top plate element 151, and a first docking element 152 is arranged on the other side of the top of the top plate element 151.
[0188] In some embodiments thereof, the first docking element 152 is a docking groove.
[0189] The cross-section of the through groove element 153 is rectangular.
[0190] The dimensions of the through groove element 153 match those of the top plate element 151. Generally, the length of the through groove element 153 is less than the width of the top plate element 151, the width of the through groove element 153 is less than the length of the top plate element 151, and the height of the first docking element 152 is equal to the height of the top plate element 151.
[0191] In some embodiments thereof, the through groove element 153 is a through groove.
[0192] As Figure 10 shown, the cover unit 160 includes a cover element 161, at least one second docking element 162, and two second clamping elements 163. Among them, the cover element 161 is detachably arranged on the top of the base unit 110; the second docking element 162 is arranged at the bottom end of the cover element 161 and abuts against the top plate unit 150; the two second clamping elements 163 are symmetrically arranged on both sides of the bottom end of the cover element 161, and respectively pass through the top plate unit 150 and respectively abut against the corresponding ejecting unit 120 and the corresponding clamping unit 130, and are used for fixing the cover element 161 to the top of the base unit 110 under the action of the clamping unit 130 or separating the cover element 161 from the top of the base unit 110 under the action of the clamping unit 130 and ejecting the cover unit 160 from the top of the base unit 110 under the action of the ejecting unit 120.
[0193] Specifically, the cover element 161 is detachably disposed on the top of the base element 111; the second docking element 162 abuts against the first docking element 152; the second clamping element 163 passes through the top plate element 151 through the corresponding through slot element 153 and abuts against the corresponding ejecting element 122 and the corresponding first clamping element 133.
[0194] The cover element 161 has a structure with a closed top and a hollow bottom.
[0195] The size of the cover element 161 matches the size of the base element 111. Generally, the outer length of the cover element 161 is equal to the outer length of the base element 111, the outer width of the cover element 161 is equal to the outer width of the base element 111, and the outer height of the cover element 161 is greater than the outer height of the base element 111.
[0196] In some embodiments, the cover element 161 is made of stainless steel.
[0197] In some embodiments, the cover element 161 is a cover shell.
[0198] The cross-section of the second docking element 162 is rectangular.
[0199] The size of the second docking element 162 matches the size of the cover element 161. Generally, the length of the second docking element 162 is less than the outer length of the cover element 161, the width of the second docking element 162 is less than the inner wall thickness of the cover element 161, and the height of the second docking element 162 is less than the outer height of the cover element 161.
[0200] The size of the second docking element 162 matches the size of the first docking element 152. Generally, the length of the second docking element 162 is equal to the length of the first docking element 152, the width of the second docking element 162 is equal to the width of the first docking element 152, and the height of the second docking element 162 is equal to the height of the first docking element 152.
[0201] The number of the second docking elements 162 matches the number of the first docking elements 152. Generally, the number of the second docking elements 162 is equal to the number of the first docking elements 152.
[0202] In some embodiments, there are several second docking elements 162. The several second docking elements 162 are symmetrically disposed at the bottom end of the cover element 161.
[0203] In some embodiments, a second docking element 162 is disposed on one side of the bottom end of the cover element 161, and a second docking element 162 is disposed on the other side of the bottom end of the cover element 161.
[0204] In some of these embodiments, the second docking element 162 is fixedly connected to the cover element 161, including but not limited to welding.
[0205] In some of these embodiments, the second docking element 162 is made of stainless steel.
[0206] In some of these embodiments, the second docking element 162 is a docking block.
[0207] In some of these embodiments, the second clamping element 163 includes a connecting plate and a second clamping block. Among them, the connecting plate is arranged at the bottom end of the cover element 161 and is connected to the cover element 161; the second clamping block is arranged at the bottom end of the connecting plate, and the second clamping block passes through the top plate element 151 through the corresponding through groove element 153 and abuts against the corresponding ejecting element 122 and the corresponding first clamping element 133.
[0208] The size of the connecting plate matches the size of the cover element 161. Generally, the length of the connecting plate is less than the outer width of the cover element 161, the width of the connecting plate is less than the inner wall thickness of the cover element 161, and the height of the connecting plate is less than the outer height of the cover element 161.
[0209] The size of the connecting plate matches the size of the through groove element 153. Generally, the length of the connecting plate is equal to the length of the through groove element 153, the width of the connecting plate is less than the width of the through groove element 153, and the height of the connecting plate is greater than the height of the through groove element 153.
[0210] The cross section of the second clamping block is a right triangle. Among them, the short right-angled side of the second clamping block is arranged vertically to the connecting plate, the long right-angled side of the second clamping block is perpendicular to the connection setting and abuts against the top end of the corresponding ejecting element 122; the hypotenuse of the second clamping block abuts against the hypotenuse of the first clamping block.
[0211] The size of the second clamping block matches the size of the through groove element 153. Generally, the length of the second clamping block is equal to the length of the through groove element 153, and the length of the long right-angled side of the second clamping block is equal to the width of the through groove element 153.
[0212] The size of the second clamping block matches the size of the connecting plate. Generally, the length of the second clamping block is equal to the length of the connecting plate, the length of the short right-angled side of the second clamping block is not less than the height of the connecting plate, and the length of the long right-angled side of the second clamping block is greater than the width of the connecting plate.
[0213] The size of the second clamping block matches the size of the first clamping block. Generally, the length of the second clamping block is equal to the length of the first clamping block, the length of the short right-angled side of the second clamping block is equal to the length of the short right-angled side of the first clamping block, and the length of the long right-angled side of the second clamping block is equal to the length of the long right-angled side of the first clamping block.
[0214] In some of these embodiments, the second engaging element 163 is fixedly connected to the cover element 161, including but not limited to welding.
[0215] In some of these embodiments, the second engaging element 163 is made of stainless steel.
[0216] The usage method of the present utility model is as follows:
[0217] (1) Disassembling the cover element 161
[0218] By operating the control element 143 to twist the sixth rotating element 142 to rotate circumferentially along the third rotating element 115, the fifth rotating element 141 is driven by the sixth rotating element 142 to rotate circumferentially along the first rotating element 113;
[0219] The fifth rotating element 141 drives the two fourth sliding elements 131 to move towards each other along the length direction of the first sliding element 112;
[0220] The two fourth sliding elements 131 respectively drive the corresponding first engaging elements 133 through the corresponding support plate elements 134 to gradually move away from the corresponding second engaging elements 163, so that the cover element 161 is in a relaxed state;
[0221] At this time, the ejecting element 122 moves upward along the axial direction of the second sliding element 121 under the action of the elastic element 124, and drives the second engaging element 163 to move vertically upward, so that the cover element 161 is separated from the base element 111, thereby disassembling the cover element 161 from the base element 111.
[0222] (2) Installing the communication control device
[0223] Place the communication control device on the top of the top plate element 151 and fix it by bolt connection.
[0224] (3) Installing the cover element 161
[0225] Place the cover element 161 on the top of the base element 111, and make the second docking element 162 provided on the cover element 161 correspond to the first docking element 152 provided on the top plate element 151, and make the two second engaging elements 163 provided on the cover element 161 pass through the top plate element 151 through the corresponding through slot elements 153;
[0226] By operating the control element 143 to twist the sixth rotating element 142 to rotate circumferentially along the third rotating element 115, the fifth rotating element 141 is driven by the sixth rotating element 142 to rotate circumferentially along the first rotating element 113;
[0227] Drive the two fourth sliding elements 131 to move away from each other along the length direction of the first sliding element 112 through the fifth rotating element 141;
[0228] The two fourth sliding elements 131 respectively drive the corresponding first clamping elements 133 to gradually approach the corresponding second clamping elements 163 through the corresponding support plate elements 134, thereby squeezing the second clamping elements 163 to make the second clamping elements 163 move vertically downward;
[0229] During the process, drive the corresponding ejecting element 122 to move downward along the axis of the second sliding element 121 through the second clamping element 163, and squeeze the elastic element 124 to deform;
[0230] Finally, make the first clamping element 133 firmly abut against the second clamping element 163, thereby fixing the cover element 161.
[0231] The advantages of the present utility model are that the cooperation between the clamping unit, the control unit, the base unit, and the cover unit can be used to install the cover unit on the base unit, replacing the use of screws for fixing, which is convenient for installation and disassembly and improves the operation convenience; the use of the ejecting unit can eject the cover unit from the bottom plate unit, further improving the operation convenience, thereby improving the maintenance efficiency.
[0232] Embodiment 2
[0233] This embodiment relates to the communication control system of the present utility model.
[0234] As Figure 11 shown, a communication control system includes the installation structure 100 and the communication control device 200 as described in Embodiment 1. Among them, the communication control device 200 is arranged on the top plate unit 150 of the installation structure 100.
[0235] Specifically, the communication control device 200 is arranged at the top of the top plate element 151 and is connected to the top plate element 151.
[0236] In some of these embodiments, the communication control device 200 is a communication interface device.
[0237] The above are only the preferred embodiments of the present utility model, and do not limit the implementation manners and protection scope of the present utility model. For those skilled in the art, it should be able to realize that all the equivalent replacements and obvious changes made by using the description and illustrations of the present utility model should be included in the protection scope of the present utility model.
Claims
1. A mounting structure for mounting a communication interface device, characterized in that: include: A base unit (110), wherein the base unit (110) is arranged on a horizontal plane; Two ejection units (120), the two ejection units (120) are symmetrically arranged inside the base unit (110) and are respectively connected to the base unit (110); Two clamping units (130), the two clamping units (130) are symmetrically arranged inside the base unit (110), and are located between the two ejection units (120), and are respectively slidably connected to the base unit (110) and are used to move along the length direction of the base unit (110); a control unit (140), the control unit (140) being movably disposed inside the base unit (110) and being rotatably connected to the base unit (110) and the two clamping units (130) respectively, and being used to drive the two clamping units (130) to move toward or away from each other along the axial direction of the control unit (140); A top plate unit (150), the top plate unit (150) being arranged on the top of the base unit (110), the bottom end of the top plate unit (150) being in contact with the top ends of the two clamping units (130) respectively, and a communication interface device being arranged on the top end of the top plate unit (150); A cover unit (160), wherein the cover unit (160) is detachably arranged on the top of the base unit (110), and the bottom of the cover unit (160) is respectively abutted against the two ejection units (120), the two clamping units (130), and the top plate unit (150), and is used for fixing the cover unit (160) to the top of the base unit (110) under the action of the clamping unit (130), separating the cover unit (160) from the top of the base unit (110) under the action of the clamping unit (130), and ejecting the cover unit (160) out of the top of the base unit (110) under the action of the ejection unit (120).
2. The mounting structure according to claim 1, characterized in that: The base unit (110) comprises: A base element (111), the base element (111) being arranged on a horizontal plane, and the base element (111) being provided with two ejection units (120), two clamping units (130), the control unit (140) and the top plate unit (150); A first sliding element (112), the first sliding element (112) being arranged at the bottom end inside the base element (111) and being slidably connected to the two clamping units (130) respectively; a first rotating element (113), the first rotating element (113) being disposed on a first side inside the base element (111) and being rotationally connected to the control unit (140); a second rotating element (114), the second rotating element (114) being disposed on a second side inside the base element (111) and being rotationally connected to the control unit (140); A third rotating element (115), wherein the third rotating element (115) is disposed on a second side of the outside of the base element (111), is communicated with the second rotating element (114), and is rotationally connected to the control unit (140).
3. The mounting structure according to claim 1, characterized in that: The ejection unit (120) comprises: at least one second sliding element (121), the second sliding element (121) being arranged inside the base unit (110) and connected to the base unit (110); an ejection element (122), the top end of the ejection element (122) being in contact with the bottom end of the cover unit (160), and being used for reciprocating along the axial direction of the second sliding element (121) under the action of the cover unit (160) to eject the cover unit (160) from the top end of the base unit (110); at least one third sliding element (123), the third sliding element (123) being disposed through the ejection element (122) and being slidably connected to the second sliding element (121); At least one elastic element (124), the elastic element (124) is sleeved on the second sliding element (121), is located below the ejection element (122), and is respectively connected to the ejection element (122) and the base unit (110), and is used for being squeezed and deformed under the action of the ejection element (122).
4. The mounting structure according to claim 3, characterized in that: The ejection unit (120) further comprises: At least one limiting element (125), wherein the limiting element (125) is arranged at the top end of the second sliding element (121) and contacts the ejecting element (122) to limit the movement range of the ejecting element (122).
5. The mounting structure according to claim 1, characterized in that: The card connection unit (130) comprises: a fourth sliding element (131), the fourth sliding element (131) being slidably disposed inside the base unit (110); a fourth rotating element (132), the fourth rotating element (132) being arranged to penetrate the fourth sliding element (131) and being rotationally connected to the control unit (140), and being used for driving the fourth sliding element (131) to reciprocate along the axial direction of the control unit (140) under the action of the control unit (140); A first clamping element (133), wherein the first clamping element (133) is arranged on a side of the fourth sliding element (131) close to the ejection unit (120) and abuts against the cover unit (160), and is used for reciprocating along the axial direction of the control unit (140) under the action of the fourth sliding element (131) to abut against or separate from the cover unit (160).
6. The mounting structure according to claim 5, characterized in that: The card connection unit (130) further comprises: A support plate element (134), wherein the support plate element (134) is arranged at the top end of the fourth sliding element (131), and the first clamping element (133) is arranged at the bottom end of the support plate element (134), and the top end of the support plate element (134) contacts the bottom end of the top plate unit (150), and is respectively connected to the fourth sliding element (131) and the first clamping element (133), and is used to drive the first clamping element (133) to reciprocate along the axial direction of the control unit (140) under the action of the fourth sliding element (131).
7. The mounting structure according to claim 1, characterized in that: The control unit (140) comprises: a fifth rotating element (141), the fifth rotating element (141) being movably disposed inside the base unit (110) and being rotationally connected to the base unit (110) and the two clamping units (130) respectively, and being used for driving the two clamping units (130) to move toward or away from each other along the axial direction of the fifth rotating element (141); a sixth rotating element (142), the sixth rotating element (142) being disposed at the second end of the fifth rotating element (141) and being rotationally connected to the base unit (110) and being used to drive the fifth rotating element (141) to rotate; A control element (143), wherein the control element (143) is disposed at an end of the sixth rotating element (142) and is connected to the sixth rotating element (142) to drive the sixth rotating element (142) to rotate.
8. The mounting structure according to claim 1, characterized in that: The top plate unit (150) comprises: A top plate element (151), the top plate element (151) being arranged on the top of the base unit (110), the bottom end of the top plate element (151) being in contact with the top ends of the two card connection units (130) respectively, and a communication interface device being arranged on the top end of the top plate element (151); At least one first docking element (152), wherein the first docking element (152) is disposed at the top end of the top plate element (151) and abuts against the cover unit (160); Two through-slot elements (153), the two through-slot elements (153) are symmetrically arranged on both sides of the top plate element (151), and respectively penetrate the top end of the top plate element (151), so as to allow the cover unit (160) to pass through the top plate element (151).
9. The mounting structure according to claim 1, characterized in that: The cover unit (160) comprises: A cover element (161), the cover element (161) being detachably arranged on the top of the base unit (110); at least one second docking element (162), wherein the second docking element (162) is disposed at the bottom end of the cover element (161) and abuts against the top plate unit (150); Two second clamping elements (163), the two second clamping elements (163) are symmetrically arranged on both sides of the bottom end of the cover element (161), and respectively pass through the top plate unit (150), and respectively abut against the corresponding ejection unit (120) and the corresponding clamping unit (130), and are used to fix the cover element (161) to the top of the base unit (110) under the action of the clamping unit (130), or to separate the cover element (161) from the top of the base unit (110) under the action of the clamping unit (130), and to eject the cover unit (160) out of the top of the base unit (110) under the action of the ejection unit (120).
10. A communication control system, characterized in that: include: The mounting structure (100) according to any one of claims 1 to 9; A communication control device (200) is provided on the top plate unit (150) of the mounting structure (100).