Flat cable structure for energy storage power supply and wire system
By designing a wiring structure for energy storage power supply, using the combination of shell unit, stabilization unit, adjustment unit, restriction unit and wiring unit, the chaos in the wiring structure in the prior art during maintenance and sorting is solved, and a more stable and efficient wiring effect is achieved.
Patent Information
- Application Number
- CN202422208395.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-06
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-09-06
AI Technical Summary
The wiring structure of the existing energy storage power supply is tied with plastic cable ties, which leads to confusion during subsequent maintenance and combing, and the wiring effect is not ideal.
A wiring structure including a shell unit, a stabilizing unit, an adjustment unit, a restricting unit and a wiring unit is designed. The wires are fixed and adjusted through the combination of these components, instead of the binding method of plastic cable ties.
This solution improves the stability and adaptability of the cable, avoids the defects of plastic cable ties during repair and combing, and improves the stability of the cable effect.
Smart Images

Figure CN223024010U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of energy storage power supplies, in particular to a wire arrangement structure and a wire system for an energy storage power supply. Background Art
[0002] Energy storage refers to the process of storing energy through a medium or device and releasing it when needed. According to the energy storage method, energy storage can be divided into three categories: physical energy storage, chemical energy storage, and electromagnetic energy storage. Among them, physical energy storage mainly includes pumped-storage energy storage, compressed-air energy storage, flywheel energy storage, etc.; chemical energy storage mainly includes lead-acid batteries, lithium-ion batteries, sodium-sulfur batteries, flow batteries, etc.; and electromagnetic energy storage mainly includes supercapacitor energy storage and superconducting energy storage.
[0003] The wire arrangement structure of the energy storage power supply is installed inside the energy storage power supply and is used to fix the wires inside the energy storage power supply. By using the wire arrangement structure of the energy storage battery, the wire bodies of the energy storage battery can be clearly distributed, and the phenomenon of wire entanglement can be avoided.
[0004] The current power supply wire arrangement structure mainly bundles the wires through plastic ties. Although this wire arrangement method is simple, it is relatively chaotic during subsequent maintenance and sorting. It is necessary to cut each tie, and wire damage may occur when cutting the ties. Moreover, when the wires are bent for wire arrangement, the bundling effect of the wires is not ideal and it is not easy to use.
[0005] At present, for the problems of chaotic subsequent maintenance and sorting and unsatisfactory wire arrangement effect caused by bundling wires in the related art, no effective solution has been proposed. Summary of the Utility Model
[0006] The purpose of the utility model is to provide a wire arrangement structure and a wire system for an energy storage power supply to solve the problems of chaotic subsequent maintenance and sorting and unsatisfactory wire arrangement effect caused by bundling wires in the related art.
[0007] To achieve the above purpose, the technical solution adopted by the utility model is as follows:
[0008] In the first aspect, a wire arrangement structure for an energy storage power supply is provided, including:
[0009] A housing unit;
[0010] A first stabilizing unit, which is arranged inside the housing unit and connected to the housing unit, and is used to abut against a plurality of wires respectively;
[0011] A second stabilizing unit, which is movably arranged inside the housing unit, is located above the first stabilizing unit, and is movably connected to the first stabilizing unit, and is used to respectively abut against a plurality of electric wires and reciprocate vertically under the action of the first stabilizing unit to fix the electric wires between the first stabilizing unit and the second stabilizing unit;
[0012] An adjusting unit, which is movably arranged inside the housing unit and is used to rotate horizontally;
[0013] A limiting unit, which is detachably connected to the housing unit and the adjusting unit respectively, and is used to limit the movement range of the adjusting unit;
[0014] A plurality of wire arranging units, which are respectively arranged at the top end of the adjusting unit and are respectively connected to the adjusting unit, and are used to respectively abut against corresponding electric wires and rotate horizontally under the action of the adjusting unit to adjust the wire arranging direction of the electric wires;
[0015] A plurality of third stabilizing units, which are respectively movably arranged inside the corresponding wire arranging units, and are used to respectively abut against the corresponding electric wires and reciprocate vertically to fix the electric wires between the wire arranging unit and the third stabilizing unit.
[0016] In some embodiments, the housing unit includes:
[0017] A housing element, inside which the first stabilizing unit, the second stabilizing unit, the adjusting unit, the limiting unit, a plurality of the wire arranging units and a plurality of the third stabilizing units are respectively arranged;
[0018] An inlet element, which is arranged on the first side of the housing element and is used for the electric wires to enter the housing element;
[0019] A first outlet element, which is arranged on the second side of the housing element and is used for the electric wires to discharge from the housing element;
[0020] A second outlet element, which is arranged on the third side of the housing element and is used for the electric wires to discharge from the housing element;
[0021] A first adjusting element, which is arranged at the bottom end inside the housing element and is slidably connected to the adjusting unit;
[0022] A first rotating element, which is arranged at the bottom end inside the first adjusting element and is rotatably connected to the adjusting unit;
[0023] A first limiting element, which is arranged at the bottom end inside the first adjusting element and is detachably connected to the limiting unit;
[0024] A second limiting element, which is arranged at the bottom end inside the first adjusting element and is detachably connected to the limiting unit;
[0025] A cover element, which is detachably arranged at the top end of the shell element and is used to close the shell element.
[0026] In some of the embodiments, the first stabilizing unit includes:
[0027] A first stabilizing element, which is arranged inside the shell unit and is connected to the shell unit;
[0028] A plurality of first groove elements, which are arranged at the top end of the first stabilizing element and are used to respectively abut against corresponding electric wires;
[0029] A second rotating element, which is arranged at the top end of the first stabilizing element and is respectively rotatably connected to the first stabilizing element and the second stabilizing unit, and is used to drive the second stabilizing unit to reciprocate in the vertical direction.
[0030] In some of the embodiments, the first stabilizing unit further includes:
[0031] A first sliding element, which is arranged at the top end of the first stabilizing element and is slidably connected to the second stabilizing unit.
[0032] In some of the embodiments, the first stabilizing unit further includes:
[0033] A first control element, which is arranged at the top end of the second rotating element and is used to be detachably connected to a hexagonal wrench to drive the second rotating element to rotate.
[0034] In some of the embodiments, the second stabilizing unit includes:
[0035] A second stabilizing element, which is movably arranged inside the shell unit and is located above the first stabilizing unit;
[0036] A plurality of second groove elements, which are arranged at the bottom end of the second stabilizing element and are used to respectively abut against corresponding electric wires;
[0037] A third rotating element, which penetrates through the second stabilizing element and is rotatably connected to the first stabilizing unit, is configured to drive the second stabilizing element to reciprocate in the vertical direction under the action of the first stabilizing unit.
[0038] In some embodiments, the second stabilizing unit further includes:
[0039] A second sliding element, which penetrates through the second stabilizing element and is slidably connected to the first stabilizing unit.
[0040] In some embodiments, the adjusting unit includes:
[0041] A second adjusting element, which is movably disposed inside the housing unit. A plurality of the wire arranging units are respectively disposed at the top end of the second adjusting element and are configured to drive the plurality of wire arranging units to rotate in the horizontal direction to adjust the wire arranging direction of the wires;
[0042] A fourth rotating element, which is disposed at the bottom end of the second adjusting element and is rotatably connected to the housing unit;
[0043] A third limiting element, which penetrates through the second adjusting element and is detachably connected to the limiting unit.
[0044] In some embodiments, the limiting unit includes:
[0045] A fourth limiting element, which is detachably connected to the housing unit and the adjusting unit respectively and is configured to limit the movement range of the adjusting unit.
[0046] In some embodiments, the limiting unit further includes:
[0047] A second operating element, which is disposed at the top end of the fourth limiting element and is configured to be detachably connected to a hex wrench to drive the fourth limiting element to rotate.
[0048] In some embodiments, the wire arranging unit includes:
[0049] A wire arranging element, which is disposed at the top end of the adjusting unit and is connected to the adjusting unit, and is configured to rotate in the horizontal direction under the action of the adjusting unit to adjust the wire arranging direction of the wires;
[0050] A first through-groove element, which penetrates through the wire arranging element and abuts against the wire;
[0051] A third sliding element, which is disposed inside the cable element, communicates with the first through-groove element, and is slidably connected to the third stabilizing unit;
[0052] A fifth rotating element, which is disposed at the top end of the cable element, communicates with the third sliding element, and is rotatably connected to the third stabilizing unit.
[0053] In some embodiments, the cable unit further includes:
[0054] A second through-groove element, which is disposed at the top end of the cable element, communicates with the fifth rotating element, and is used for allowing the third stabilizing unit to pass through the cable element.
[0055] In some embodiments, the third stabilizing unit includes:
[0056] A third stabilizing element, which is movably disposed inside the cable unit;
[0057] A third groove element, which is disposed at the bottom end of the third stabilizing element and abuts against the wire;
[0058] A sixth rotating element, which is disposed at the top end of the third stabilizing element and is respectively rotatably connected to the third stabilizing element and the cable unit, and is used for driving the third stabilizing element to reciprocate in the vertical direction to fix the wire between the cable unit and the third stabilizing element.
[0059] In some embodiments, the third stabilizing unit further includes:
[0060] A third control element, which is disposed at the top end of the sixth rotating element and is used for detachably connecting with a hex key to drive the sixth rotating element to rotate.
[0061] In a second aspect, a wire system is provided, including:
[0062] The cable structure as described in the first aspect;
[0063] A plurality of wire structures, which respectively abut against the first stabilizing unit, the second stabilizing unit, a plurality of the cable units and a plurality of the third stabilizing units of the cable structure, and are used for power connection and adjusting the cable direction under the action of the cable unit.
[0064] The present utility model adopts the above technical solutions, and compared with the prior art, has the following technical effects:
[0065] A wire arrangement structure and a wire system for an energy storage power supply according to the present utility model fix wires by the cooperative use of a first stabilizing unit and a second stabilizing unit, replacing the method of bundling with plastic cable ties, and facilitating subsequent maintenance and sorting; the cooperative use of an adjusting unit, a wire arranging unit and a third stabilizing unit can adjust the direction of wire arrangement according to usage requirements, improving adaptability and the wire arrangement effect; a limiting unit limits the position of the wire arranging unit, improving the stability of wire arrangement installation. BRIEF DESCRIPTION OF THE DRAWINGS
[0066] Figure 1 is a three-dimensional structural schematic diagram of the wire arrangement structure according to an embodiment of the present utility model;
[0067] Figure 2 is an internal structural schematic diagram of the wire arrangement structure according to an embodiment of the present utility model;
[0068] Figure 3 is an exploded view of the wire arrangement structure according to an embodiment of the present utility model;
[0069] Figure 4a is an exploded view of the shell unit according to an embodiment of the present utility model;
[0070] Figure 4b is a partial three-dimensional structural schematic diagram of the shell unit according to an embodiment of the present utility model;
[0071] Figure 5 is a three-dimensional structural schematic diagram of the first stabilizing unit according to an embodiment of the present utility model;
[0072] Figure 6 is a three-dimensional structural schematic diagram of the second stabilizing unit according to an embodiment of the present utility model;
[0073] Figure 7 is a three-dimensional structural schematic diagram of the adjusting unit according to an embodiment of the present utility model;
[0074] Figure 8 is a three-dimensional structural schematic diagram of the limiting unit according to an embodiment of the present utility model;
[0075] Figure 9 is a cross-sectional view of the wire arranging unit according to an embodiment of the present utility model;
[0076] Figure 10 is a three-dimensional structural schematic diagram of the third stabilizing unit according to an embodiment of the present utility model;
[0077] Figure 11 is a wire arrangement schematic diagram (1) of the wire system according to an embodiment of the present utility model;
[0078] Figure 12Schematic diagram (2) of the wire arrangement of the wire system according to an embodiment of the present utility model;
[0079] The reference numerals therein are: 100, wire arrangement structure;
[0080] 110, housing unit; 111, housing element; 112, inlet element; 113, first outlet element; 114, second outlet element; 115, first adjusting element; 116, first rotating element; 117, first limiting element; 118, second limiting element; 119, cover element;
[0081] 120, first stabilizing unit; 121, first stabilizing element; 122, first groove element; 123, second rotating element; 124, first sliding element; 125, first operating element;
[0082] 130, second stabilizing unit; 131, second stabilizing element; 132, second groove element; 133, third rotating element; 134, second sliding element;
[0083] 140, adjusting unit; 141, second adjusting element; 142, fourth rotating element; 143, third limiting element;
[0084] 150, limiting unit; 151, fourth limiting element; 152, second operating element;
[0085] 160, wire arranging unit; 161, wire arranging element; 162, first through groove element; 163, third sliding element; 164, fifth rotating element; 165, second through groove element;
[0086] 170, third stabilizing unit; 171, third stabilizing element; 172, third groove element; 173, sixth rotating element; 174, third operating element;
[0087] 200, wire structure. Detailed implementation manners
[0088] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, 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 utility model without creative efforts fall within the scope of protection of the present utility model.
[0089] It should be noted that, without conflict, the embodiments in the present utility model and the features in the embodiments can be combined with each other.
[0090] The present utility model will be further described below in conjunction with the accompanying drawings and specific embodiments, but it is not intended to limit the present utility model.
[0091] Embodiment 1
[0092] This embodiment relates to the wire arrangement structure of the present utility model.
[0093] As Figure 1 、 Figure 2 、 Figure 3 shown, a wire arrangement structure 100 for an energy storage power supply includes a housing unit 110, a first stabilizing unit 120, a second stabilizing unit 130, an adjusting unit 140, a limiting unit 150, a plurality of wire arrangement units 160, and a plurality of third stabilizing units 170. Among them, the first stabilizing unit 120 is disposed inside the housing unit 110 and is connected to the housing unit 110 for respectively abutting against a plurality of wires; the second stabilizing unit 130 is movably disposed inside the housing unit 110, and is located above the first stabilizing unit 120 and is movably connected to the first stabilizing unit 120 for respectively abutting against a plurality of wires and reciprocating in the vertical direction under the action of the first stabilizing unit 120 to fix the wires between the first stabilizing unit 120 and the second stabilizing unit 130; the adjusting unit 140 is movably disposed inside the housing unit 110 for rotating in the horizontal direction; the limiting unit 150 is detachably connected to the housing unit 110 and the adjusting unit 140 respectively for limiting the movement range of the adjusting unit 140; a plurality of wire arrangement units 160 are respectively disposed at the top of the adjusting unit 140 and are respectively connected to the adjusting unit 140 for respectively abutting against the corresponding wires and rotating in the horizontal direction under the action of the adjusting unit 140 to adjust the wire arrangement direction; a plurality of third stabilizing units 170 are respectively movably disposed inside the corresponding wire arrangement units 160 for respectively abutting against the corresponding wires and reciprocating in the vertical direction to fix the wires between the wire arrangement units 160 and the third stabilizing units 170.
[0094] As Figure 4a 、 Figure 4bAs shown in the figure, the housing unit 110 includes a housing element 111, an inlet element 112, a first outlet element 113, a second outlet element 114, a first adjustment element 115, a first rotating element 116, a first limiting element 117, a second limiting element 118, and a cover element 119. Among them, a first stabilizing unit 120, a second stabilizing unit 130, an adjustment unit 140, a limiting unit 150, a plurality of wire arranging units 160, and a plurality of third stabilizing units 170 are respectively arranged inside the housing element 111; the inlet element 112 is arranged on the first side of the housing element 111 for a power line to enter the housing element 111; the first outlet element 113 is arranged on the second side of the housing element 111 for a power line to discharge from the housing element 111; the second outlet element 114 is arranged on the third side of the housing element 111 for a power line to discharge from the housing element 111; the first adjustment element 115 is arranged at the bottom end inside the housing element 111 and is slidably connected to the adjustment unit 140; the first rotating element 116 is arranged at the bottom end inside the first adjustment element 115 and is rotatably connected to the adjustment unit 140; the first limiting element 117 is arranged at the bottom end inside the first adjustment element 115 and is detachably connected to the limiting unit 150; the second limiting element 118 is arranged at the bottom end inside the first adjustment element 115 and is detachably connected to the limiting unit 150; the cover element 119 is detachably arranged at the top end of the housing element 111 for closing the housing element 111.
[0095] The housing element 111 has a structure with a hollow top end and a closed bottom end. Specifically, the housing element 111 includes a bottom plate, a first side plate, a second side plate, a third side plate, and a fourth side plate. Among them, the first adjustment element 115 is arranged at the top end of the bottom plate; the first side plate is arranged on the first side of the bottom plate, the inlet element 112 is arranged on the side of the first side plate, the cover element 119 is arranged at the top end of the first side plate and is connected to the bottom plate; the second side plate is arranged on the second side of the bottom plate, the first outlet element 113 is arranged on the side of the second side plate, the cover element 119 is arranged at the top end of the second side plate and is symmetrically arranged with the first side plate and is connected to the bottom plate; the third side plate is arranged on the third side of the bottom plate, the second outlet element 114 is arranged on the side of the third side plate, the cover element 119 is arranged at the top end of the third side plate and is located between the first side plate and the second side plate and is respectively connected to the bottom plate, the first side plate, and the second side plate; the fourth side plate is arranged on the fourth side of the bottom plate, the cover element 119 is arranged at the top end of the fourth side plate and is located between the first side plate and the second side plate and is respectively connected to the bottom plate, the first side plate, and the second side plate.
[0096] The size of the first side plate matches the size of the bottom plate. Generally, the length of the first side plate is less than the width of the bottom plate, the width of the first side plate is less than the length of the bottom plate, and the height of the first side plate is greater than the height of the bottom plate.
[0097] The size of the second side plate matches the size of the bottom plate. Generally, the length of the second side plate is less than the width of the bottom plate, the width of the second side plate is less than the length of the bottom plate, and the height of the second side plate is greater than the height of the bottom plate.
[0098] The size of the second side plate matches the size of the first side plate. Generally, the length of the second side plate is equal to the length of the first side plate, the width of the second side plate is equal to the width of the first side plate, and the height of the second side plate is equal to the height of the first side plate.
[0099] The size of the third side plate matches the size of the bottom plate. Generally, the length of the third side plate is equal to the length of the bottom plate, the width of the third side plate is less than the width of the bottom plate, and the height of the third side plate is greater than the height of the bottom plate.
[0100] The size of the third side plate matches the size of the second (first) side plate. Generally, the length of the third side plate is greater than the width of the second (first) side plate, the width of the third side plate is less than the length of the second (first) side plate, and the height of the third side plate is equal to the height of the second (first) side plate.
[0101] The size of the fourth side plate matches the size of the bottom plate. Generally, the length of the fourth side plate is equal to the length of the bottom plate, the width of the fourth side plate is less than the width of the bottom plate, and the height of the fourth side plate is greater than the height of the bottom plate.
[0102] The size of the fourth side plate matches the size of the third side plate. Generally, the length of the fourth side plate is equal to the length of the third side plate, the width of the fourth side plate is equal to the width of the third side plate, and the height of the fourth side plate is equal to the height of the third side plate.
[0103] The size of the fourth side plate matches the size of the second (first) side plate. Generally, the length of the fourth side plate is greater than the width of the second (first) side plate, the width of the fourth side plate is less than the length of the second (first) side plate, and the height of the fourth side plate is equal to the height of the second (first) side plate.
[0104] In some of the embodiments, the housing element 111 is made of stainless steel.
[0105] In some of the embodiments, the housing element 111 is a housing.
[0106] The cross-section of the inlet element 112 is rectangular.
[0107] The inlet element 112 penetrates through the first side plate.
[0108] The size of the inlet element 112 matches the size of the housing element 111. Generally, the length of the inlet element 112 is less than the length of the first side plate, the width of the inlet element 112 is equal to the width of the first side plate, and the height of the inlet element 112 is less than the height of the first side plate.
[0109] In some of these embodiments, the inlet element 112 is a wire inlet.
[0110] The cross-section of the first outlet element 113 is rectangular.
[0111] The first outlet element 113 penetrates through the second side plate.
[0112] The dimensions of the first outlet element 113 match the dimensions of the housing element 111. Generally, the length of the first outlet element 113 is less than the length of the second side plate, the width of the first outlet element 113 is equal to the width of the second side plate, and the height of the first outlet element 113 is less than the height of the second side plate.
[0113] The dimensions of the first outlet element 113 match the dimensions of the inlet element 112. Generally, the length of the first outlet element 113 is equal to the length of the inlet element 112, the width of the first outlet element 113 is equal to the width of the inlet element 112, and the height of the first outlet element 113 is equal to the height of the inlet element 112.
[0114] In some of these embodiments, the first outlet element 113 is a first wire outlet.
[0115] The cross-section of the second outlet element 114 is rectangular.
[0116] The second outlet element 114 penetrates through the third side plate.
[0117] The dimensions of the second outlet element 114 match the dimensions of the housing element 111. Generally, the length of the second outlet element 114 is less than the length of the third side plate, the width of the second outlet element 114 is equal to the width of the third side plate, and the height of the second outlet element 114 is less than the height of the third side plate.
[0118] The dimensions of the second outlet element 114 match the dimensions of the first outlet element 113. Generally, the length of the second outlet element 114 is equal to the length of the first outlet element 113, the width of the second outlet element 114 is equal to the width of the first outlet element 113, and the height of the second outlet element 114 is equal to the height of the first outlet element 113.
[0119] In some of these embodiments, the second outlet element 114 is a second wire outlet.
[0120] The cross-section of the first adjusting element 115 is fan-shaped.
[0121] The dimensions of the first adjusting element 115 match the dimensions of the housing element 111. Generally, the length of the right-angled side (such as the radius) of the first adjusting element 115 is less than the length and width of the bottom plate, and the depth of the first adjusting element 115 is less than the height of the bottom plate.
[0122] In some of these embodiments, the first adjusting element 115 is an adjusting groove.
[0123] The cross-section of the first rotating element 116 is circular.
[0124] The size of the first rotating element 116 matches the size of the first adjusting element 115. Generally, the diameter of the first rotating element 116 is less than the length of the right-angled side (such as the radius) of the first adjusting element 115, and the axial dimension (such as the depth) of the first rotating element 116 is less than the depth of the first adjusting element 115.
[0125] In some of these embodiments, the first rotating element 116 is a first rotating hole or a first rotating shaft.
[0126] In some of these embodiments, when the first rotating element 116 is a first rotating hole, the sum of the depth of the first rotating element 116 and the depth of the first adjusting element 115 is less than the height of the bottom plate.
[0127] The cross-section of the first limiting element 117 is circular.
[0128] The size of the first limiting element 117 matches the size of the first adjusting element 115. Generally, the diameter of the first limiting element 117 is less than the length of the right-angled side (such as the radius) of the first adjusting element 115, and the axial dimension (such as the depth) of the first limiting element 117 is less than the depth of the first adjusting element 115.
[0129] In some of these embodiments, the sum of the depth of the first limiting element 117 and the depth of the first adjusting element 115 is less than the height of the bottom plate.
[0130] In some of these embodiments, the first limiting element 117 is a first threaded hole.
[0131] The second limiting element 118 and the first limiting element 117 are respectively arranged on both sides of the first rotating element 116.
[0132] In some of these embodiments, the second limiting element 118, the first rotating element 116, and the first limiting element 117 form a right angle.
[0133] The cross-section of the second limiting element 118 is circular.
[0134] The size of the second limiting element 118 matches the size of the first adjusting element 115. Generally, the diameter of the second limiting element 118 is less than the length of the right-angled side (such as the radius) of the first adjusting element 115, and the axial dimension (such as the depth) of the second limiting element 118 is less than the depth of the first adjusting element 115.
[0135] The dimensions of the second limiting element 118 match those of the first limiting element 117. Generally, the diameter of the second limiting element 118 is equal to the diameter of the first limiting element 117, and the axial dimension (such as depth) of the second limiting element 118 is equal to the axial dimension (such as depth) of the first limiting element 117.
[0136] In some of these embodiments, the sum of the depth of the second limiting element 118 and the depth of the first adjusting element 115 is less than the height of the bottom plate.
[0137] In some of these embodiments, the second limiting element 118 is a second threaded hole.
[0138] The cross-section of the cover element 119 is rectangular.
[0139] The dimensions of the cover element 119 match those of the housing element 111. Generally, the length of the cover element 119 is equal to the length of the bottom plate, the width of the cover element 119 is equal to the width of the bottom plate, and the height of the cover element 119 is equal to the height of the bottom plate.
[0140] In some of these embodiments, the cover element 119 is detachably connected to the housing element 111. For example, the cover element 119 and the housing element 111 are connected by bolts.
[0141] In some of these embodiments, the cover element 119 is made of stainless steel.
[0142] In some of these embodiments, the cover element 119 is a sealing cover.
[0143] As Figure 5 shown, the first stabilizing unit 120 includes a first stabilizing element 121, a plurality of first groove elements 122, and a second rotating element 123. Among them, the first stabilizing element 121 is disposed inside the housing unit 110 and is connected to the housing unit 110; a plurality of first groove elements 122 are disposed at the top of the first stabilizing element 121 for respectively abutting against corresponding electric wires; the second rotating element 123 is disposed at the top of the first stabilizing element 121 and is respectively rotatably connected to the first stabilizing element 121 and the second stabilizing unit 130 for driving the second stabilizing unit 130 to reciprocate in the vertical direction.
[0144] Specifically, the first stabilizing element 121 is disposed inside the housing element 111, is disposed near the inlet element 112, and is connected to the housing element 111.
[0145] More specifically, the first stabilizing element 121 is disposed at the top of the bottom plate and is connected to the bottom plate.
[0146] The cross-section of the first stabilizing element 121 is rectangular.
[0147] The size of the first stabilizing element 121 matches the size of the housing element 111. Generally, the length of the first stabilizing element 121 is less than the width of the bottom plate, the width of the first stabilizing element 121 is less than the length of the bottom plate, and the height of the first stabilizing element 121 is less than the height of the first side plate (the second side plate, the third side plate, the fourth side plate).
[0148] The size of the first stabilizing element 121 matches the size of the inlet element 112. Generally, the length of the first stabilizing element 121 is not greater than the length of the inlet element 112, the width of the first stabilizing element 121 is greater than the width of the inlet element 112, and the height of the first stabilizing element 121 is less than the height of the inlet element 112.
[0149] In some of these embodiments, the first stabilizing element 121 is fixedly connected to the housing element 111, including but not limited to bolt connection.
[0150] In some of these embodiments, the first stabilizing element 121 is made of stainless steel.
[0151] In some of these embodiments, the first stabilizing element 121 is the first stabilizing plate.
[0152] The cross-section of the first groove element 122 is arc-shaped and is used to fit the outer edge surface of the wire.
[0153] The size of the first groove element 122 matches the size of the first stabilizing element 121. Generally, the radial dimension of the first groove element 122 is less than the length and height of the first stabilizing element 121, and the axial dimension of the first groove element 122 is equal to the width of the first stabilizing element 121.
[0154] A plurality of first groove elements 122 are spaced apart along the length direction of the first stabilizing element 121.
[0155] In some of these embodiments, there are three first groove elements 122.
[0156] In some of these embodiments, the first groove element 122 is the first groove.
[0157] When the second rotating element 123 rotates (self-rotates), the first stabilizing element 121 remains stationary.
[0158] The cross-section of the second rotating element 123 is circular.
[0159] The size of the second rotating element 123 matches the size of the first stabilizing element 121. Generally, the diameter of the second rotating element 123 is less than the length and width of the first stabilizing element 121, and the axial dimension of the second rotating element 123 is greater than the height of the first stabilizing element 121.
[0160] In some of these embodiments, the second rotating element 123 and the first stabilizing element 121 are rotatably connected without separation. For example, the second rotating element 123 and the first stabilizing element 121 are connected by a bearing block.
[0161] In some of these embodiments, the second rotating element 123 is made of stainless steel.
[0162] In some of these embodiments, the second rotating element 123 is a first screw.
[0163] Furthermore, the first stabilizing unit 120 further includes a first sliding element 124. Wherein, the first sliding element 124 is disposed at the top of the first stabilizing element 121 and is slidably connected to the second stabilizing unit 130.
[0164] The cross-section of the first sliding element 124 is circular, rounded rectangular, oval, etc.
[0165] The size of the first sliding element 124 matches the size of the first stabilizing element 121. Generally, the radial dimension of the first sliding element 124 is smaller than the length and width of the first stabilizing element 121, and the axial dimension of the first sliding element 124 is larger than the height of the first stabilizing element 121.
[0166] The size of the first sliding element 124 matches the size of the second rotating element 123. Generally, the axial dimension of the first sliding element 124 is not less than the axial dimension of the second rotating element 123.
[0167] In some of these embodiments, the first sliding element 124 is fixedly connected to the first stabilizing element 121, including but not limited to welding.
[0168] In some of these embodiments, the first sliding element 124 is made of stainless steel.
[0169] In some of these embodiments, the first sliding element 124 is a sliding rod.
[0170] Furthermore, the first stabilizing unit 120 further includes a first control element 125. Wherein, the first control element 125 is disposed at the top of the second rotating element 123 and is used for detachably connecting with a hex wrench to drive the second rotating element 123 to rotate.
[0171] The cross-section of the first control element 125 is a regular hexagon.
[0172] The size of the first control element 125 matches the size of the second rotating element 123. Generally, the radial dimension of the first control element 125 is smaller than the diameter of the second rotating element 123, and the axial dimension of the first control element 125 is smaller than the axial dimension of the second rotating element 123.
[0173] In some of these embodiments, the first control element 125 is a first control hole.
[0174] As Figure 6 shown, the second stabilizing unit 130 includes a second stabilizing element 131, a plurality of second groove elements 132, and a third rotating element 133. Among them, the second stabilizing element 131 is movably disposed inside the housing unit 110 and is located above the first stabilizing unit 120; a plurality of second groove elements 132 are disposed at the bottom end of the second stabilizing element 131 for respectively abutting against corresponding electric wires; the third rotating element 133 penetrates through the second stabilizing element 131 and is rotatably connected to the first stabilizing unit 120 for driving the second stabilizing element 131 to reciprocate in the vertical direction under the action of the first stabilizing unit 120.
[0175] Specifically, the second stabilizing element 131 is movably disposed inside the housing element 111 and is located above the first stabilizing element 121; a plurality of second groove elements 132 respectively correspond to a plurality of first groove elements 122; the third rotating element 133 is rotatably connected to the second rotating element 123.
[0176] The cross-section of the second stabilizing element 131 is rectangular.
[0177] The size of the second stabilizing element 131 matches the size of the housing element 111. Generally, the length of the second stabilizing element 131 is less than the width of the bottom plate, the width of the second stabilizing element 131 is less than the length of the bottom plate, and the height of the second stabilizing element 131 is less than the height of the first side plate (the second side plate, the third side plate, the fourth side plate).
[0178] The size of the second stabilizing element 131 matches the size of the first stabilizing element 121. Generally, the length of the second stabilizing element 131 is equal to the length of the first stabilizing element 121, the width of the second stabilizing element 131 is equal to the width of the first stabilizing element 121, and the height of the second stabilizing element 131 is equal to the height of the first stabilizing element 121.
[0179] In some of these embodiments, the second stabilizing element 131 is made of stainless steel.
[0180] In some of these embodiments, the second stabilizing element 131 is a second stabilizing plate.
[0181] The cross-section of the second groove element 132 is arc-shaped for adapting to the outer edge surface of the electric wire.
[0182] The size of the second groove element 132 matches the size of the second stabilizing element 131. Generally, the radial dimension of the second groove element 132 is smaller than the length and height of the second stabilizing element 131, and the axial dimension of the second groove element 132 is equal to the width of the second stabilizing element 131.
[0183] The size of the second groove element 132 matches the size of the first groove element 122. Generally, the radial dimension of the second groove element 132 is equal to the radial dimension of the first groove element 122, and the axial dimension of the second groove element 132 is equal to the axial dimension of the first groove element 122.
[0184] The number of the second groove elements 132 matches the number of the first groove elements 122. Generally, the number of the second groove elements 132 is equal to the number of the first groove elements 122.
[0185] A plurality of second groove elements 132 are spaced apart along the length direction of the second stabilizing element 131.
[0186] In some of these embodiments, the number of the second groove elements 132 is three.
[0187] In some of these embodiments, the second groove element 132 is a second groove.
[0188] The cross-section of the third rotating element 133 is circular.
[0189] The size of the third rotating element 133 matches the size of the second stabilizing element 131. Generally, the diameter of the third rotating element 133 is smaller than the length and width of the second stabilizing element 131, and the axial dimension (such as the depth) of the third rotating element 133 is equal to the height of the second stabilizing element 131.
[0190] The size of the third rotating element 133 matches the size of the second rotating element 123. Generally, the diameter of the third rotating element 133 is equal to the diameter of the second rotating element 123, and the axial dimension (such as the depth) of the third rotating element 133 is smaller than the axial dimension of the second rotating element 123.
[0191] In some of these embodiments, the third rotating element 133 is a third threaded hole.
[0192] Furthermore, the second stabilizing unit 130 further includes a second sliding element 134. Wherein, the second sliding element 134 penetrates through the second stabilizing element 131 and is slidably connected to the first stabilizing unit 120.
[0193] Specifically, the second sliding element 134 is slidably connected to the first sliding element 124.
[0194] The cross-section of the second sliding element 134 is circular, rounded rectangular, elliptical, etc.
[0195] The size of the second sliding element 134 matches the size of the second stabilizing element 131. Generally, the radial dimension of the second sliding element 134 is smaller than the length and width of the second stabilizing element 131, and the axial dimension (such as the depth) of the second sliding element 134 is equal to the height of the second stabilizing element 131.
[0196] The size of the second sliding element 134 matches the size of the first sliding element 124. Generally, the radial dimension of the second sliding element 134 is equal to the radial dimension of the first sliding element 124, and the axial dimension (such as the depth) of the second sliding element 134 is smaller than the axial dimension of the first sliding element 124.
[0197] In some of these embodiments, the second sliding element 134 is a sliding hole.
[0198] With the sliding fit between the second sliding element 134 and the first sliding element 124, the second stabilizing element 131 can only reciprocate in the vertical direction and does not rotate in the horizontal direction.
[0199] As Figure 7 shown, the adjusting unit 140 includes a second adjusting element 141, a fourth rotating element 142, and a third limiting element 143. Among them, the second adjusting element 141 is movably disposed inside the housing unit 110. A plurality of wire arranging units 160 are respectively disposed at the top end of the second adjusting element 141, for driving the plurality of wire arranging units 160 to rotate in the horizontal direction to adjust the wire arranging direction; the fourth rotating element 142 is disposed at the bottom end of the second adjusting element 141 and is rotatably connected to the housing unit 110; the third limiting element 143 penetrates through the second adjusting element 141 and is detachably connected to the limiting unit 150.
[0200] Specifically, the second adjusting element 141 is movably disposed inside the first adjusting element 115; the fourth rotating element 142 is rotatably connected to the first rotating element 116; the third limiting element 143 corresponds to the first limiting element 117 or the second limiting element 118.
[0201] The cross-section of the second adjusting element 141 is a rounded rectangle.
[0202] The size of the second adjusting element 141 matches the size of the first adjusting element 115. Generally, the length and width of the second adjusting element 141 are smaller than the length of the right-angled side (such as the radius) of the first adjusting element 115, and the height (such as the thickness) of the second adjusting element 141 is not less than the depth of the first adjusting element 115.
[0203] The size of the second adjusting element 141 matches the size of the housing element 111. Generally, the height (such as thickness) of the second adjusting element 141 is less than the height of the first side plate (the second side plate, the third side plate, the fourth side plate).
[0204] In some of these embodiments, the second adjusting element 141 is made of stainless steel.
[0205] In some of these embodiments, the second adjusting element 141 is an adjusting block.
[0206] The cross-section of the fourth rotating element 142 is circular.
[0207] The size of the fourth rotating element 142 matches the size of the second adjusting element 141. Generally, the diameter of the fourth rotating element 142 is less than the length and width of the second adjusting element 141, and the axial dimension of the fourth rotating element 142 is less than the height of the second adjusting element 141.
[0208] The size of the fourth rotating element 142 matches the size of the first rotating element 116. Generally, the diameter of the fourth rotating element 142 is equal to the diameter of the first rotating element 116, and the axial dimension of the fourth rotating element 142 is equal to the axial dimension of the first rotating element 116.
[0209] In some of these embodiments, the fourth rotating element 142 is fixedly connected to the second adjusting element 141, including but not limited to being integrally formed.
[0210] In some of these embodiments, the fourth rotating element 142 is non-separably rotatably connected to the first rotating element 116. For example, the fourth rotating element 142 is connected to the first rotating element 116 through a bearing housing.
[0211] In some of these embodiments, the fourth rotating element 142 is made of stainless steel.
[0212] In some of these embodiments, the fourth rotating element 142 is a second rotating hole or a second rotating shaft. Specifically as follows:
[0213] 1) The first rotating element 116 is a first rotating hole, and the fourth rotating element 142 is a second rotating shaft;
[0214] 2) The first rotating element 116 is a first rotating shaft, and the fourth rotating element 142 is a second rotating hole.
[0215] The cross-section of the third limiting element 143 is circular.
[0216] The dimensions of the third limiting element 143 match those of the second adjusting element 141. Generally, the diameter of the third limiting element 143 is smaller than the length and width of the second adjusting element 141, and the axial dimension (such as depth) of the third limiting element 143 is equal to the height (such as thickness) of the second adjusting element 141.
[0217] The dimensions of the third limiting element 143 match those of the first limiting element 117 (second limiting element 118). Generally, the diameter of the third limiting element 143 is equal to the diameter of the first limiting element 117 (second limiting element 118).
[0218] In some of these embodiments, the third limiting element 143 is a limiting hole, including but not limited to a smooth hole or a threaded hole.
[0219] As Figure 8 shown, the limiting unit 150 includes a fourth limiting element 151. Among them, the fourth limiting element 151 is detachably connected to the housing unit 110 and the adjusting unit 140 respectively, and is used to limit the movement range of the adjusting unit 140.
[0220] Specifically, the fourth limiting element 151 is detachably connected to the first limiting element 117 or the second limiting element 118 and the third limiting element 143 respectively.
[0221] The cross-section of the fourth limiting element 151 is circular.
[0222] The dimensions of the fourth limiting element 151 match those of the first limiting element 117 (second limiting element 118, third limiting element 143). Generally, the diameter of the fourth limiting element 151 is equal to the diameter of the first limiting element 117 (second limiting element 118, third limiting element 143), and the axial dimension of the fourth limiting element 151 is greater than the axial dimension of the first limiting element 117 (second limiting element 118, third limiting element 143).
[0223] In some of these embodiments, the axial dimension of the fourth limiting element 151 is equal to the sum of the axial dimensions of the first limiting element 117 and the third limiting element 143, or the axial dimension of the fourth limiting element 151 is equal to the sum of the axial dimensions of the second limiting element 118 and the third limiting element 143.
[0224] In some of these embodiments, the fourth limiting element 151 is made of stainless steel.
[0225] In some of these embodiments, the fourth limiting element 151 is a second screw.
[0226] Further, the limiting unit 150 further includes a second control element 152. The second control element 152 is disposed at the top of the fourth limiting element 151 and is used for detachably connecting with a hexagonal wrench to drive the fourth limiting element 151 to rotate.
[0227] The cross-section of the second control element 152 is a regular hexagon.
[0228] The size of the second control element 152 matches the size of the fourth limiting element 151. Generally, the radial dimension of the second control element 152 is smaller than the diameter of the fourth limiting element 151, and the axial dimension of the second control element 152 is smaller than the axial dimension of the fourth limiting element 151.
[0229] In some embodiments, the second control element 152 is a second control hole.
[0230] As Figure 9 shown, the wire arranging unit 160 includes a wire arranging element 161, a first through groove element 162, a third sliding element 163, and a fifth rotating element 164. The wire arranging element 161 is disposed at the top of the adjusting unit 140 and is connected to the adjusting unit 140, and is used for rotating horizontally under the action of the adjusting unit 140 to adjust the wire arranging direction; the first through groove element 162 penetrates through the wire arranging element 161 and abuts against the wire; the third sliding element 163 is disposed inside the wire arranging element 161, communicates with the first through groove element 162, and is slidably connected to the third stabilizing unit 170; the fifth rotating element 164 is disposed at the top of the wire arranging element 161, communicates with the third sliding element 163, and is rotatably connected to the third stabilizing unit 170.
[0231] Specifically, the wire arranging element 161 is disposed at the top of the second adjusting element 141 and is connected to the second adjusting element 141.
[0232] A plurality of wire arranging units 160 are distributed at intervals along the length direction of the second adjusting element 141.
[0233] The number of the wire arranging units 160 matches the number of the first groove elements 122 (second groove elements 132). Generally, the number of the wire arranging units 160 is equal to the number of the first groove elements 122 (second groove elements 132).
[0234] In some embodiments, the number of the wire arranging units 160 is three.
[0235] The cross-section of the wire arranging element 161 is rectangular.
[0236] The size of the cable element 161 matches the size of the second adjusting element 141. Generally, the length of the cable element 161 is less than the length of the second adjusting element 141, the width of the cable element 161 is not less than the width of the second adjusting element 141, and the height of the cable element 161 is greater than the height of the second adjusting element 141.
[0237] The size of the cable element 161 matches the size of the housing element 111. Generally, the length of the cable element 161 is less than the length and width of the bottom plate, the width of the cable element 161 is less than the length and width of the bottom plate, and the height of the cable element 161 is less than the height of the first side plate (second side plate, third side plate, fourth side plate).
[0238] In some of the embodiments, the cable element 161 is fixedly connected to the second adjusting element 141, including but not limited to bolt connection.
[0239] In some of the embodiments, the cable element 161 is made of stainless steel.
[0240] In some of the embodiments, the cable element 161 is a cable mounting block.
[0241] The cross-section of the first through-channel element 162 is circular.
[0242] The size of the first through-channel element 162 matches the size of the cable element 161. Generally, the radial dimension of the first through-channel element 162 is less than the length and height of the cable element 161, and the axial dimension of the first through-channel element 162 is equal to the width of the cable element 161.
[0243] In some of the embodiments, the first through-channel element 162 is a first through-channel.
[0244] The cross-section of the third sliding element 163 is rectangular.
[0245] The size of the third sliding element 163 matches the size of the cable element 161. Generally, the length of the third sliding element 163 is less than the width of the cable element 161, the width of the third sliding element 163 is less than the length of the cable element 161, and the height of the third sliding element 163 is less than the height of the cable element 161.
[0246] The size of the third sliding element 163 matches the size of the first through-channel element 162. Generally, the length of the third sliding element 163 is less than the axial dimension of the first through-channel element 162, and the width and height of the third sliding element 163 are less than the radial dimension of the first through-channel element 162.
[0247] In some of the embodiments, the third sliding element 163 is a chute.
[0248] The cross-section of the fifth rotating element 164 is circular.
[0249] The dimensions of the fifth rotating element 164 match those of the third sliding element 163. Generally, the diameter of the fifth rotating element 164 is smaller than the length and width of the third sliding element 163, and the axial dimension of the fifth rotating element 164 is smaller than the height of the third sliding element 163.
[0250] In some of the embodiments, the fifth rotating element 164 is a fourth threaded hole.
[0251] Furthermore, the cable unit 160 further includes a second through-groove element 165. Among them, the second through-groove element 165 is disposed at the top end of the cable element 161 and is in communication with the fifth rotating element 164 for allowing the third stabilizing unit 170 to pass through the cable element 161.
[0252] The cross-section of the second through-groove element 165 is rectangular.
[0253] The dimensions of the second through-groove element 165 match those of the cable element 161. Generally, the length of the second through-groove element 165 is smaller than the length of the cable element 161, the width of the second through-groove element 165 is smaller than the width of the cable element 161, and the height of the second through-groove element 165 is smaller than the height of the cable element 161.
[0254] The dimensions of the second through-groove element 165 match those of the fifth rotating element 164. Generally, the length and width of the second through-groove element 165 are larger than the diameter of the fifth rotating element 164, and the height of the second through-groove element 165 is larger than the axial dimension of the fifth rotating element 164.
[0255] In some of the embodiments, the sum of the height of the second through-groove element 165, the axial dimension of the fifth rotating element 164, the height of the third sliding element 163, and the radial dimension of the first through-groove element 162 is smaller than the height of the cable element 161.
[0256] In some of the embodiments, the second through-groove element 165 is a second through-groove.
[0257] As Figure 10 shown, the third stabilizing unit 170 includes a third stabilizing element 171, a third groove element 172, and a sixth rotating element 173. Among them, the third stabilizing element 171 is movably disposed inside the cable unit 160; the third groove element 172 is disposed at the bottom end of the third stabilizing element 171 and abuts against the wire; the sixth rotating element 173 is disposed at the top end of the third stabilizing element 171 and is rotatably connected to the third stabilizing element 171 and the cable unit 160 respectively for driving the third stabilizing element 171 to reciprocate in the vertical direction to fix the wire between the cable unit 160 and the third stabilizing element 171.
[0258] Specifically, the third stabilizing element 171 is disposed inside the third sliding element 163 and is slidably connected to the third sliding element 163 ; the sixth rotating element 173 is rotatably connected to the fifth rotating element 164 .
[0259] The cross section of the third stabilizing element 171 is rectangular.
[0260] The size of the third stabilizing element 171 matches the size of the third sliding element 163. Generally, the length of the third stabilizing element 171 is equal to the length of the third sliding element 163, the width of the third stabilizing element 171 is equal to the width of the third sliding element 163, and the height of the third stabilizing element 171 is equal to the height of the third sliding element 163.
[0261] In some of the embodiments, the third stabilizing element 171 is made of stainless steel.
[0262] In some embodiments, the third stabilizing element 171 is a third stabilizing plate.
[0263] The cross section of the third groove element 172 is in the shape of an arc, and is used to adapt the wire.
[0264] The size of the third groove element 172 matches the size of the third stabilizing element 171. Generally, the radial size of the third groove element 172 is greater than the width of the third stabilizing element 171, the depth of the third groove element 172 is less than the height of the third stabilizing element 171, and the axial size of the third groove element 172 is equal to the length of the third stabilizing element 171.
[0265] In some of the embodiments, the third groove element 172 is a third groove.
[0266] The cross section of the sixth rotating element 173 is circular.
[0267] The size of the sixth rotating element 173 matches the size of the third stabilizing element 171. Generally, the diameter of the sixth rotating element 173 is smaller than the length and width of the third stabilizing element 171, and the axial dimension of the sixth rotating element 173 is not less than the height of the third stabilizing element 171.
[0268] The size of the sixth rotating element 173 matches the size of the fifth rotating element 164. Generally, the diameter of the sixth rotating element 173 is equal to the diameter of the fifth rotating element 164, and the axial dimension of the sixth rotating element 173 is greater than the axial dimension of the fifth rotating element 164.
[0269] The size of the sixth rotating element 173 matches the size of the second through-slot element 165. Generally, the axial dimension of the sixth rotating element 173 is not greater than the height of the second through-slot element 165.
[0270] In some embodiments, the sixth rotating element 173 is integrally connected to the third fixing element 171 for rotation. For example, the sixth rotating element 173 is connected to the third fixing element 171 via a bearing seat.
[0271] In some of the embodiments, the sixth rotating element 173 is made of stainless steel.
[0272] In some embodiments, the sixth rotating element 173 is a third screw.
[0273] Furthermore, the third stabilizing unit 170 further includes a third operating element 174. The third operating element 174 is disposed at the top of the sixth rotating element 173, and is used to be detachably connected to a hexagonal wrench to drive the sixth rotating element 173 to rotate.
[0274] The cross section of the third operating element 174 is a regular hexagon.
[0275] The size of the third operating element 174 matches the size of the sixth rotating element 173. Generally, the radial size of the third operating element 174 is smaller than the diameter of the sixth rotating element 173, and the axial size of the third operating element 174 is smaller than the axial size of the sixth rotating element 173.
[0276] In some embodiments, the third operating element 174 is a third operating hole.
[0277] The method of using the utility model is as follows:
[0278] (I) Installing the shell element 111
[0279] The shell element 111 is placed at a designated position and fixed by bolt connection.
[0280] (ii) Adjust the direction of the straight line
[0281] The wire arranging element 161 is rotated along the circumference of the first rotating element 116 by the second adjusting element 141, so that the wire arranging element 161 moves to a position close to the inlet element 112, and the third limiting element 143 corresponds to the first limiting element 117;
[0282] The fourth limiting element 151 passes through the third limiting element 143 and is threadedly connected to the first limiting element 117 until the fourth limiting element 151 is tightened to complete the fixing of the wiring element 161;
[0283] The wire passes through the inlet element 112 , between the first groove element 122 and the second groove element 132 , the first through-groove element 162 , and the first outlet element 113 in sequence.
[0284] (III) Fixing the wires
[0285] The second rotating element 123 is twisted to drive the second stabilizing element 131 to move downward along the axial direction of the first sliding element 124, so that the second groove element 132 provided on the second stabilizing element 131 gradually approaches the wire until the wire is clamped between the first groove element 122 and the second groove element 132;
[0286] The sixth rotating element 173 is twisted to drive the third fixing element 171 to move downward along the height direction of the third sliding element 163, so that the third groove element 172 provided on the third fixing element 171 gradually approaches the wire until the wire is clamped between the third groove element 172 and the first through-slot element 162.
[0287] (IV) Adjust the direction of the bending cable
[0288] The wire-arranging element 161 is rotated along the circumference of the first rotating element 116 by the second adjusting element 141, so that the wire-arranging element 161 moves to a position close to the second outlet element 114, and the third limiting element 143 corresponds to the second limiting element 118;
[0289] The fourth limiting element 151 passes through the third limiting element 143 and is threadedly connected to the second limiting element 118 until the fourth limiting element 151 is tightened to complete the fixing of the wiring element 161;
[0290] The wire passes through the inlet element 112 , between the first groove element 122 and the second groove element 132 , the first through-groove element 162 , and the first outlet element 113 in sequence.
[0291] (V) Fixing wires
[0292] It is basically the same as the usage method (three), so I will not repeat it here.
[0293] The advantages of the utility model are that the first stabilizing unit and the second stabilizing unit are used in coordination to fix the wires, replacing the method of bundling with plastic ties, and are easy to use for subsequent maintenance and combing; the adjustment unit, the wiring unit and the third stabilizing unit are used in coordination to adjust the wiring direction according to usage requirements, thereby improving adaptability and wiring effect; the limiting unit is used to limit the position of the wiring unit, thereby improving the stability of the wiring installation.
[0294] Example 2
[0295] This embodiment relates to the electric wire system of the utility model.
[0296] like Figure 11 , Figure 12As shown, a wire system includes the wire arrangement structure 100 and a plurality of wire structures 200 as described in Embodiment 1. The plurality of wire structures 200 are respectively connected to the first stabilizing unit 120, the second stabilizing unit 130, the plurality of wire arrangement units 160 and the plurality of third stabilizing units 170 of the wire arrangement structure 100 for power connection and adjusting the direction of the wire arrangement under the action of the wire arrangement unit 160.
[0297] Specifically, the wire structure 200 abuts against the first groove element 122 , the second groove element 132 , the first through-groove element 162 , and the third groove element 172 , respectively.
[0298] In some embodiments, the wire structure 200 is a wire.
[0299] The above description is only a preferred embodiment of the present invention, and does not limit the implementation mode and protection scope of the present invention. For those skilled in the art, it should be aware that all solutions obtained by equivalent substitutions and obvious changes made using the description and illustrations of the present invention should be included in the protection scope of the present invention.
Claims
1. A wiring structure for an energy storage power supply, characterized in that: include: Shell element (110); A first stabilizing unit (120), the first stabilizing unit (120) being arranged inside the shell unit (110) and connected to the shell unit (110), and being used to abut against a plurality of electric wires respectively; A second stabilizing unit (130), the second stabilizing unit (130) being movably arranged inside the shell unit (110), and being located above the first stabilizing unit (120), and being movably connected to the first stabilizing unit (120), and being used for respectively contacting with a plurality of electric wires and reciprocating in a vertical direction under the action of the first stabilizing unit (120) to fix the electric wires between the first stabilizing unit (120) and the second stabilizing unit (130); an adjusting unit (140), the adjusting unit (140) being movably disposed inside the shell unit (110) and being used to rotate in a horizontal direction; a limiting unit (150), the limiting unit (150) being detachably connected to the shell unit (110) and the adjusting unit (140) respectively, and being used to limit the movement range of the adjusting unit (140); A plurality of wire arrangement units (160), each of which is disposed at the top of the adjustment unit (140) and is connected to the adjustment unit (140) and is used to abut against corresponding wires and rotate in a horizontal direction under the action of the adjustment unit (140) to adjust the arrangement direction of the wires; A plurality of third stabilizing units (170) are respectively and movably arranged inside the corresponding wiring unit (160) and are used to respectively abut against the corresponding electric wires and reciprocate in the vertical direction to fix the electric wires between the wiring unit (160) and the third stabilizing units (170).
2. The cable arrangement structure according to claim 1, characterized in that: The shell element (110) comprises: a shell element (111), wherein the first stabilizing unit (120), the second stabilizing unit (130), the adjusting unit (140), the limiting unit (150), a plurality of the wiring units (160) and a plurality of the third stabilizing units (170) are respectively arranged inside the shell element (111); an inlet element (112), the inlet element (112) being arranged on a first side of the shell element (111) and being used for allowing a power line to enter the shell element (111); a first outlet element (113), the first outlet element (113) being arranged on a second side of the shell element (111) and used for allowing the electric wire to be discharged from the shell element (111); a second outlet element (114), the second outlet element (114) being arranged on a third side of the shell element (111) and used for allowing the electric wire to be discharged from the shell element (111); a first adjusting element (115), the first adjusting element (115) being arranged at the bottom end inside the shell element (111) and being slidably connected to the adjusting unit (140); a first rotating element (116), the first rotating element (116) being disposed at the bottom end of the interior of the first adjusting element (115) and being rotationally connected to the adjusting unit (140); a first limiting element (117), the first limiting element (117) being arranged at the bottom end of the interior of the first adjusting element (115) and being detachably connected to the limiting unit (150); a second limiting element (118), the second limiting element (118) being arranged at the bottom end inside the first adjusting element (115) and being detachably connected to the limiting unit (150); A cover element (119), wherein the cover element (119) is detachably arranged on the top end of the shell element (111) and is used to close the shell element (111).
3. The cable arrangement structure according to claim 1, characterized in that: The first stabilizing unit (120) comprises: A first stabilizing element (121), wherein the first stabilizing element (121) is disposed inside the shell unit (110) and connected to the shell unit (110); A plurality of first groove elements (122), wherein the plurality of first groove elements (122) are arranged at the top end of the first stabilizing element (121) and are used to abut against corresponding electric wires respectively; a second rotating element (123), the second rotating element (123) being disposed at the top end of the first stabilizing element (121), and being rotatably connected to the first stabilizing element (121) and the second stabilizing unit (130), respectively, and being used for driving the second stabilizing unit (130) to reciprocate in a vertical direction; and / or The second stabilizing unit (130) comprises: A second stabilizing element (131), the second stabilizing element (131) being movably disposed inside the shell unit (110) and located above the first stabilizing unit (120); A plurality of second groove elements (132), wherein the plurality of second groove elements (132) are arranged at the bottom end of the second stabilizing element (131) and are used to abut against corresponding electric wires respectively; A third rotating element (133), wherein the third rotating element (133) is arranged to penetrate the second stabilizing element (131) and is rotatably connected to the first stabilizing unit (120), and is used to drive the second stabilizing element (131) to reciprocate in a vertical direction under the action of the first stabilizing unit (120).
4. The cable arrangement structure according to claim 3, characterized in that: The first stabilizing unit (120) further comprises: a first sliding element (124), the first sliding element (124) being disposed at a top end of the first stabilizing element (121) and being slidably connected to the second stabilizing unit (130); and / or The first stabilizing unit (120) further comprises: a first operating element (125), the first operating element (125) being arranged at the top end of the second rotating element (123) and being used for being detachably connected to a hexagonal wrench to drive the second rotating element (123) to rotate; and / or The second stabilizing unit (130) further comprises: A second sliding element (134), wherein the second sliding element (134) is disposed through the second stabilizing element (131) and is slidably connected to the first stabilizing unit (120).
5. The cable arrangement structure according to claim 1, characterized in that: The adjustment unit (140) comprises: A second adjusting element (141), the second adjusting element (141) being movably arranged inside the shell unit (110), and a plurality of the wiring arrangement units (160) being respectively arranged at the top of the second adjusting element (141), and being used for driving the plurality of the wiring arrangement units (160) to rotate in a horizontal direction to adjust the wiring arrangement direction of the electric wires; a fourth rotating element (142), the fourth rotating element (142) being disposed at the bottom end of the second adjusting element (141) and being rotationally connected to the shell unit (110); A third limiting element (143), wherein the third limiting element (143) is disposed through the second adjusting element (141) and is detachably connected to the limiting unit (150).
6. The cable arrangement structure according to claim 1, characterized in that: The limiting unit (150) comprises: A fourth limiting element (151), wherein the fourth limiting element (151) is detachably connected to the shell unit (110) and the adjusting unit (140) respectively, and is used to limit the movement range of the adjusting unit (140).
7. The cable arrangement structure according to claim 6, characterized in that: The limiting unit (150) further comprises: A second operating element (152), the second operating element (152) is arranged at the top end of the fourth limiting element (151), and is used to be detachably connected to a hexagonal wrench to drive the fourth limiting element (151) to rotate.
8. The cable arrangement structure according to claim 1, characterized in that: The wiring unit (160) comprises: A wire arrangement element (161), the wire arrangement element (161) being arranged at the top of the adjustment unit (140) and connected to the adjustment unit (140), and being used for rotating in a horizontal direction under the action of the adjustment unit (140) to adjust the arrangement direction of the wires; A first through-slot element (162), wherein the first through-slot element (162) penetrates the wiring element (161) and abuts against the wire; A third sliding element (163), the third sliding element (163) being disposed inside the wiring element (161), being communicated with the first through-slot element (162), and being slidably connected with the third stabilizing unit (170); a fifth rotating element (164), the fifth rotating element (164) being disposed at the top end of the wiring element (161), being communicated with the third sliding element (163), and being rotationally connected with the third stabilizing unit (170); and / or The third stabilizing unit (170) comprises: A third stabilizing element (171), the third stabilizing element (171) being movably disposed inside the wiring unit (160); A third groove element (172), the third groove element (172) being arranged at the bottom end of the third stabilizing element (171) and abutting against the electric wire; A sixth rotating element (173), the sixth rotating element (173) is arranged at the top of the third stabilizing element (171), and is rotatably connected to the third stabilizing element (171) and the wiring unit (160) respectively, and is used to drive the third stabilizing element (171) to reciprocate in the vertical direction to fix the wire between the wiring unit (160) and the third stabilizing element (171).
9. The cable arrangement structure according to claim 8, characterized in that: The wiring unit (160) further includes: a second through-slot element (165), the second through-slot element (165) being disposed at the top end of the wiring element (161) and being in communication with the fifth rotating element (164) and being used for allowing the third stabilizing unit (170) to pass through the wiring element (161); and / or The third stabilizing unit (170) further includes: A third operating element (174), the third operating element (174) is arranged at the top end of the sixth rotating element (173), and is used to be detachably connected to a hexagonal wrench to drive the sixth rotating element (173) to rotate.
10. A wire system, characterized in that: include: The cable arrangement structure (100) as claimed in any one of claims 1 to 9; A plurality of electric wire structures (200), wherein the plurality of electric wire structures (200) are respectively abutted against the first stabilizing unit (120), the second stabilizing unit (130), a plurality of the wiring units (160) and a plurality of the third stabilizing units (170) of the wiring structure (100), and are used for power connection and adjusting the wiring direction under the action of the wiring units (160).