Position adjusting device and power line communication monitoring system

By designing a position adjustment device including a support unit, an angle adjustment unit and a height adjustment unit, the problem of cumbersome monitoring position adjustment in the power control system is solved, and the rapid and convenient adjustment of the monitor position is achieved.

CN222966987UActive Publication Date: 2025-06-10SHANGHAI LUXIN POWER TECH CO LTD
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Patent Information

Application Number
CN202421963078.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-13
Publication Date
2025-06-10
Estimated Expiration
2034-08-13

AI Technical Summary

Technical Problem

In the prior art, when monitoring power equipment, the power control system needs to frequently adjust the position of the camera, resulting in a cumbersome process of adjusting the monitoring position.

Method used

A position adjustment device is designed, including a support unit, a first angle adjustment unit, a height adjustment unit and a second angle adjustment unit. Through the use of these units, adjustment of the horizontal, vertical direction and height of the monitor is achieved.

Benefits of technology

This device makes the position adjustment of the monitor more convenient, avoids the disassembly and reinstallation process, and improves the operation efficiency during the monitoring process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a position adjusting device and a power line communication monitoring system. The position adjusting device comprises a supporting unit, a first angle adjusting unit, a first driving unit, a height adjusting unit, a second driving unit, a second angle adjusting unit and a third driving unit. The supporting unit is perpendicular to the horizontal plane. The first angle adjusting unit is movably arranged in the supporting unit; the rotating shaft rotates in the horizontal direction; the first driving unit is arranged at the top end of the supporting unit and connected with the first angle adjusting unit. The monitor has the advantages that the first angle adjusting unit, the height adjusting unit and the second angle adjusting unit are used in cooperation, the horizontal direction, the vertical direction and the height direction of the monitor can be correspondingly adjusted, and therefore corresponding adjustment can be conducted according to use requirements in the actual monitoring process; the process of dismounting the monitor and then mounting the monitor is avoided, and the adjustment convenience is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of power line communication control and monitoring equipment, in particular to a position adjusting device and a power line communication monitoring system. Background Art

[0002] Power line communication technology is a means of using the existing low-voltage distribution network as a transmission medium to achieve data transfer and information exchange. When sending data by power line communication, the transmitter first modulates the data onto a high-frequency carrier wave, and then after power amplification, it is coupled to the power line through a coupling circuit. The peak-to-peak voltage of the signal frequency band generally does not exceed 10V, so it will not cause adverse effects on the power line. Among them, as an important modern monitoring, control, and management means in power line communication technology, an industrial television monitoring system needs to be installed during the application process. The purpose is to improve the solution speed of emergency situations for unexpected events during the period of ensuring power regulation and power supply, and further ensure the safe operation level of power supply.

[0003] When the power regulation system monitors power equipment, multiple cameras are required. In the prior art, multiple cameras are separately installed and fixed on the wall, and then aimed at the equipment to be monitored. When the position of the camera needs to be adjusted, disassembly and installation operations need to be carried out on the wall, and the working process is relatively cumbersome.

[0004] Currently, for the problem that the operation process of adjusting the monitoring position in the related technology is relatively cumbersome, no effective solution has been proposed yet. Content of the Utility Model

[0005] The purpose of the utility model is to provide a position adjusting device and a power line communication monitoring system for the deficiencies in the prior art, so as to solve the problem that the operation process of adjusting the monitoring position in the related technology is relatively cumbersome.

[0006] To achieve the above purpose, the technical solution adopted by the utility model is:

[0007] In the first aspect, a position adjusting device is provided for installing a power monitoring device and adjusting the height and angle of the power monitoring device, including:

[0008] A support unit, the support unit is arranged perpendicular to the horizontal plane;

[0009] A first angle adjusting unit, the first angle adjusting unit is movably arranged inside the support unit; for rotating in the horizontal direction;

[0010] The first driving unit is disposed at the top of the support unit and is connected to the first angle adjustment unit for driving the first angle adjustment unit to rotate in the horizontal direction;

[0011] The height adjustment unit is movably disposed on the first angle adjustment unit and is configured to rotate in the horizontal direction and reciprocate axially along the axis of the first angle adjustment unit under the action of the first angle adjustment unit;

[0012] The second driving unit is disposed inside the first angle adjustment unit and is rotatably connected to the height adjustment unit for rotating in the horizontal direction under the action of the first angle adjustment unit and driving the height adjustment unit to reciprocate axially along the axis of the first angle adjustment unit;

[0013] The second angle adjustment unit is movably disposed on the height adjustment unit and is connected to the monitor for rotating in the vertical direction, rotating in the horizontal direction under the action of the height adjustment unit, and reciprocating axially along the axis of the first angle adjustment unit under the action of the height adjustment unit;

[0014] The third driving unit is respectively connected to the height adjustment unit and the second angle adjustment unit for driving the second angle adjustment unit to rotate in the vertical direction.

[0015] In some embodiments, the support unit includes:

[0016] A support element is disposed perpendicular to the horizontal plane, and the first driving unit is disposed at the top of the support element;

[0017] A first rotating element is disposed at the bottom of the support element and is rotatably connected to the first angle adjustment unit;

[0018] A second rotating element is disposed at the top of the support element and is rotatably connected to the first angle adjustment unit.

[0019] In some embodiments, the first angle adjustment unit includes:

[0020] A first angle adjustment element is movably disposed inside the support unit, and the height adjustment unit is sleeved on the first angle adjustment element for driving the height adjustment unit to rotate in the horizontal direction;

[0021] A third rotating element is disposed at the bottom of the first angle adjustment element and is rotatably connected to the support unit;

[0022] A fourth rotating element, which is disposed at the top of the first angle adjusting element and is respectively connected to the support unit and the first driving unit, and is configured to drive the first angle adjusting element to rotate horizontally under the action of the first driving unit;

[0023] A cavity element, which is disposed inside the first angle adjusting element, and the second driving unit is disposed in the cavity element;

[0024] A first sliding element, which penetrates through the first angle adjusting element, communicates with the cavity element, and is slidably connected to the height adjusting unit.

[0025] In some embodiments, the first angle adjusting unit further includes:

[0026] A fifth rotating element, which is disposed at the bottom end inside the cavity element and is rotatably connected to the second driving unit.

[0027] In some embodiments, the first driving unit includes:

[0028] A first driving element, which is disposed at the top of the support unit and is connected to the first angle adjusting unit, and is configured to drive the first angle adjusting unit to rotate horizontally.

[0029] In some embodiments, the height adjusting unit includes:

[0030] A height adjusting element, which is movably disposed on the first angle adjusting unit and is connected to the third driving unit, and is configured to rotate horizontally under the action of the first angle adjusting unit;

[0031] A first through groove element, which penetrates through the height adjusting element and is configured to allow the height adjusting element to be sleeved on the first angle adjusting unit;

[0032] A movable element, which is disposed inside the first through groove element and is slidably connected to the first angle adjusting unit;

[0033] A sixth rotating element, which penetrates through the movable element and is rotatably connected to the second driving unit, and is configured to drive the height adjusting element to reciprocate along the axial direction of the first angle adjusting unit under the action of the second driving unit;

[0034] A second through groove element, which penetrates through the height adjusting element;

[0035] A seventh rotating element, which is arranged on one side of the second through groove element and is rotatably connected to the second angle adjusting unit;

[0036] An eighth rotating element, which is arranged on the other side of the second through groove element and is rotatably connected to the second angle adjusting unit.

[0037] In some embodiments, the second driving unit includes:

[0038] A second driving element, which is arranged inside the first angle adjusting unit and is used to rotate horizontally under the action of the first angle adjusting unit;

[0039] A ninth rotating element, which is respectively connected to the second driving element, the first angle adjusting unit and the height adjusting unit, and is used to drive the height adjusting unit to reciprocate along the axial direction of the first angle adjusting unit under the action of the second driving element.

[0040] In some embodiments, the second angle adjusting unit includes:

[0041] A second angle adjusting element, which is movably arranged on the height adjusting unit and is used to rotate horizontally and reciprocate along the axial direction of the first angle adjusting unit under the action of the height adjusting unit;

[0042] A tenth rotating element, which is arranged on one side of the second angle adjusting element and is rotatably connected to the height adjusting unit;

[0043] An eleventh rotating element, which is arranged on the other side of the second angle adjusting element and is respectively connected to the height adjusting unit and the third driving unit, and is used to drive the second angle adjusting element to rotate vertically under the action of the third driving unit;

[0044] A placing element, which is arranged at the top of the second angle adjusting element and is respectively connected to the second angle adjusting element and the monitor, and is used to rotate vertically under the action of the second angle adjusting element.

[0045] In some embodiments, the third driving unit includes:

[0046] A third driving element, which is respectively connected to the height adjusting unit and the second angle adjusting unit, and is used to drive the second angle adjusting unit to rotate vertically.

[0047] Second aspect, a power line communication monitoring system provided, comprising:

[0048] The position adjusting device as described in the first aspect;

[0049] A monitor, which is arranged at the top of the second angle adjusting unit of the position adjusting device, and is used for monitoring power equipment and reciprocating in the vertical direction, rotating in the horizontal direction and rotating in the vertical direction under the action of the position adjusting device.

[0050] Adopting the above technical solutions, compared with the prior art, the present utility model has the following technical effects:

[0051] For the position adjusting device and the power line communication monitoring system of the present utility model, by using the cooperation among the first angle adjusting unit, the height adjusting unit and the second angle adjusting unit, the horizontal direction, the vertical direction and the height direction of the monitor can be correspondingly adjusted, so that corresponding adjustments can be made according to the usage requirements during the actual monitoring process, avoiding the process of disassembling and reinstalling the monitor, and improving the adjustment convenience. Description of the Drawings

[0052] Figure 1 is a three-dimensional structural schematic diagram of the position adjusting device according to an embodiment of the present utility model;

[0053] Figure 2 is an exploded view of the position adjusting device according to an embodiment of the present utility model;

[0054] Figure 3 is a three-dimensional structural schematic diagram of the support unit according to an embodiment of the present utility model

[0055] Figure 4a is a three-dimensional structural schematic diagram of the first angle adjusting unit according to an embodiment of the present utility model;

[0056] Figure 4b is a cross-sectional view of the first angle adjusting unit according to an embodiment of the present utility model;

[0057] Figure 5 is a three-dimensional structural schematic diagram of the first driving unit according to an embodiment of the present utility model;

[0058] Figure 6 is an exploded view of the height adjusting unit according to an embodiment of the present utility model;

[0059] Figure 7 is a three-dimensional structural schematic diagram of the second driving unit according to an embodiment of the present utility model;

[0060] Figure 8 is a three-dimensional structural schematic diagram of the second angle adjusting unit according to an embodiment of the present utility model;

[0061] Figure 9 It is a schematic three-dimensional structure diagram of a third driving unit according to an embodiment of the present utility model;

[0062] Figure 10 It is a schematic structure diagram of a power line communication monitoring system according to an embodiment of the present utility model;

[0063] Among them, the reference numerals are: 100, position adjusting device;

[0064] 110, support unit; 111, support element; 112, first rotating element; 113, second rotating element;

[0065] 120, first angle adjusting unit; 121, first angle adjusting element; 122, third rotating element; 123, fourth rotating element; 124, cavity element; 125, first sliding element; 126, fifth rotating element;

[0066] 130, first driving unit; 131, first driving element;

[0067] 140, height adjusting unit; 141, height adjusting element; 142, first through groove element; 143, movable element; 144, sixth rotating element; 145, second through groove element; 146, seventh rotating element; 147, eighth rotating element;

[0068] 150, second driving unit; 151, second driving element; 152, ninth rotating element;

[0069] 160, second angle adjusting unit; 161, second angle adjusting element; 162, tenth rotating element; 163, eleventh rotating element; 164, placing element;

[0070] 170, third driving unit; 171, third driving element;

[0071] 200, monitor. Detailed implementation manners

[0072] 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 the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without making creative efforts fall within the protection scope of the present utility model.

[0073] It should be noted that, without conflict, the embodiments in the present utility model and the features in the embodiments may be combined with each other.

[0074] 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.

[0075] Embodiment 1

[0076] This embodiment relates to the position adjustment device of the present utility model.

[0077] As Figure 1 , Figure 2 shown, a position adjustment device 100, which is used for installing a power monitoring device and adjusting the height and angle of the power monitoring device, includes a support unit 110, a first angle adjustment unit 120, a first driving unit 130, a height adjustment unit 140, a second driving unit 150, a second angle adjustment unit 160 and a third driving unit 170. Among them, the support unit 110 is arranged perpendicular to the horizontal plane; the first angle adjustment unit 120 is movably arranged inside the support unit 110 and is used for rotating in the horizontal direction; the first driving unit 130 is arranged at the top of the support unit 110 and is connected to the first angle adjustment unit 120 for driving the first angle adjustment unit 120 to rotate in the horizontal direction; the height adjustment unit 140 is movably arranged on the first angle adjustment unit 120 and is used for rotating in the horizontal direction under the action of the first angle adjustment unit 120 and reciprocatingly moving along the axial direction of the first angle adjustment unit 120; the second driving unit 150 is arranged inside the first angle adjustment unit 120 and is rotatably connected to the height adjustment unit 140 for rotating in the horizontal direction under the action of the first angle adjustment unit 120 and driving the height adjustment unit 140 to reciprocatingly move along the axial direction of the first angle adjustment unit 120; the second angle adjustment unit 160 is movably arranged on the height adjustment unit 140 and is connected to the monitor for rotating in the vertical direction, rotating in the horizontal direction under the action of the height adjustment unit 140 and reciprocatingly moving along the axial direction of the first angle adjustment unit 120 under the action of the height adjustment unit 140; the third driving unit 170 is respectively connected to the height adjustment unit 140 and the second angle adjustment unit 160 for driving the second angle adjustment unit 160 to rotate in the vertical direction.

[0078] As Figure 3 shown, the support unit 110 includes a support element 111, a first rotating element 112 and a second rotating element 113. Among them, the support element 111 is arranged perpendicular to the horizontal plane, and the first driving unit 130 is arranged at the top of the support element 111; the first rotating element 112 is arranged at the bottom of the support element 111 and is rotatably connected to the first angle adjustment unit 120; the second rotating element 113 is arranged at the top of the support element 111 and is rotatably connected to the first angle adjustment unit 120.

[0079] The cross-section of the support element 111 is U-shaped. Specifically, the support element 111 includes a vertical plate, a first horizontal plate, and a second horizontal plate. Among them, the vertical plate is arranged perpendicular to the horizontal plane; the first horizontal plate is arranged at the bottom end of the vertical plate, and a first rotating element 112 is arranged at the top end of the first horizontal plate; the second horizontal plate is arranged at the top end of the vertical plate, and a second rotating element 113 is arranged through the second horizontal plate and is symmetrically arranged with the first horizontal plate.

[0080] In some of these embodiments, the first horizontal plate and the second horizontal plate are respectively arranged perpendicular to the vertical plate.

[0081] The size of the first horizontal plate matches the size of the vertical plate. Generally, the length of the first horizontal plate is greater than the width of the vertical plate, the width of the first horizontal plate is equal to the length of the vertical plate, and the height of the first horizontal plate is less than the height of the vertical plate.

[0082] The size of the second horizontal plate matches the size of the vertical plate. Generally, the length of the second horizontal plate is greater than the width of the vertical plate, the width of the second horizontal plate is equal to the length of the vertical plate, and the height of the second horizontal plate is less than the height of the vertical plate.

[0083] The size of the second horizontal plate matches the size of the first horizontal plate. Generally, the length of the second horizontal plate is equal to the length of the first horizontal plate, the width of the second horizontal plate is equal to the width of the first horizontal plate, and the height of the second horizontal plate is equal to the height of the first horizontal plate.

[0084] In some of these embodiments, the support element 111 is made of aluminum alloy.

[0085] The cross-section of the first rotating element 112 is circular.

[0086] The size of the first rotating element 112 matches the size of the support element 111. Generally, the diameter of the first rotating element 112 is less than the length and width of the first horizontal plate, and the axial dimension of the first rotating element 112 is less than the height of the first horizontal plate.

[0087] In some of these embodiments, the first rotating element 112 is a first rotating hole.

[0088] The cross-section of the second rotating element 113 is circular.

[0089] The size of the second rotating element 113 matches the size of the support element 111. Generally, the diameter of the second rotating element 113 is less than the length and width of the second horizontal plate, and the axial dimension of the second rotating element 113 is equal to the height of the second horizontal plate.

[0090] The size of the second rotating element 113 matches the size of the first rotating element 112. Generally, the diameter of the second rotating element 113 is equal to the diameter of the first rotating element 112, and the axial dimension of the second rotating element 113 is greater than the axial dimension of the first rotating element 112.

[0091] In some of these embodiments, the second rotating element 113 is a second rotating hole.

[0092] As Figure 4a 、 Figure 4b shown, the first angle adjustment unit 120 includes a first angle adjustment element 121, a third rotating element 122, a fourth rotating element 123, a cavity element 124, and a first sliding element 125. Among them, the first angle adjustment element 121 is movably disposed inside the support unit 110, and the height adjustment unit 140 is sleeved on the first angle adjustment element 121 for driving the height adjustment unit 140 to rotate in the horizontal direction; the third rotating element 122 is disposed at the bottom end of the first angle adjustment element 121 and is rotatably connected to the support unit 110; the fourth rotating element 123 is disposed at the top end of the first angle adjustment element 121 and is respectively connected to the support unit 110 and the first driving unit 130 for driving the first angle adjustment element 121 to rotate in the horizontal direction under the action of the first driving unit 130; the cavity element 124 is disposed inside the first angle adjustment element 121, and the second driving unit 150 is disposed in the cavity element 124; the first sliding element 125 penetrates through the first angle adjustment element 121, communicates with the cavity element 124, and is slidably connected to the height adjustment unit 140.

[0093] Specifically, the first angle adjustment element 121 is movably disposed inside the support element 111; the third rotating element 122 is rotatably connected to the first rotating element 112; the fourth rotating element 123 is rotatably connected to the second rotating element 113.

[0094] More specifically, the first angle adjustment element 121 is movably disposed between the first horizontal plate and the second horizontal plate.

[0095] The cross-section of the first angle adjustment element 121 is circular.

[0096] The size of the first angle adjustment element 121 matches the size of the support element 111. Generally, the radial dimension of the first angle adjustment element 121 is smaller than the length of the vertical plate, the axial dimension of the first angle adjustment element 121 is smaller than the height of the vertical plate, the radial dimension of the first angle adjustment element 121 is smaller than the length and width of the first horizontal plate (second horizontal plate), and the axial dimension of the first angle adjustment element 121 is larger than the height of the first horizontal plate (second horizontal plate).

[0097] In some of these embodiments, the first angle adjustment element 121 is made of aluminum alloy material.

[0098] In some of these embodiments, the first angle adjustment element 121 is an adjustment column.

[0099] The cross-section of the third rotating element 122 is circular.

[0100] The size of the third rotating element 122 matches the size of the first angle adjusting element 121. Generally, the diameter of the third rotating element 122 is smaller than the radial dimension of the first angle adjusting element 121, and the axial dimension of the third rotating element 122 is smaller than the axial dimension of the first angle adjusting element 121.

[0101] The size of the third rotating element 122 matches the size of the first rotating element 112. Generally, the diameter of the third rotating element 122 is equal to the diameter of the first rotating element 112, and the axial dimension of the third rotating element 122 is greater than the axial dimension of the first rotating element 112.

[0102] In some of these embodiments, the third rotating element 122 is fixedly connected to the first angle adjusting element 121, including but not limited to welding.

[0103] In some of these embodiments, the third rotating element 122 and the first rotating element 112 are non-separable rotatably connected. For example, the third rotating element 122 and the first rotating element 112 are connected through a bearing housing.

[0104] In some of these embodiments, the third rotating element 122 is made of aluminum alloy.

[0105] In some of these embodiments, the third rotating element 122 is the first rotating shaft.

[0106] The cross-section of the fourth rotating element 123 is circular.

[0107] The size of the fourth rotating element 123 matches the size of the first angle adjusting element 121. Generally, the diameter of the fourth rotating element 123 is smaller than the radial dimension of the first angle adjusting element 121, and the axial dimension of the fourth rotating element 123 is smaller than the axial dimension of the first angle adjusting element 121.

[0108] The size of the fourth rotating element 123 matches the size of the second rotating element 113. Generally, the diameter of the fourth rotating element 123 is equal to the diameter of the second rotating element 113, and the axial dimension of the fourth rotating element 123 is greater than the axial dimension of the second rotating element 113.

[0109] The size of the fourth rotating element 123 matches the size of the third rotating element 122. Generally, the diameter of the fourth rotating element 123 is equal to the diameter of the third rotating element 122, and the axial dimension of the fourth rotating element 123 is greater than the axial dimension of the third rotating element 122.

[0110] In some of these embodiments, the third rotating element 122 is fixedly connected to the first angle adjusting element 121, including but not limited to welding.

[0111] In some of these embodiments, the fourth rotating element 123 and the second rotating element 113 are non-separably rotationally connected. For example, the fourth rotating element 123 and the second rotating element 113 are connected through a bearing housing.

[0112] In some of these embodiments, the fourth rotating element 123 is made of aluminum alloy material.

[0113] In some of these embodiments, the fourth rotating element 123 is the second rotating shaft.

[0114] The cross-section of the cavity element 124 is circular.

[0115] The size of the cavity element 124 matches the size of the first angle adjustment element 121. Generally, the radial size of the cavity element 124 is smaller than the radial size of the first angle adjustment element 121, and the axial size of the cavity element 124 is smaller than the axial size of the first angle adjustment element 121.

[0116] In some of these embodiments, the cavity element 124 is a cavity.

[0117] The cross-section of the first sliding element 125 is rectangular.

[0118] Viewed from the cross-section, the first sliding element 125 and the cavity element 124 form a structure similar to a "plus" sign.

[0119] The size of the first sliding element 125 matches the size of the cavity element 124. Generally, the length of the first sliding element 125 is greater than the radial size of the cavity element 124, the width of the first sliding element 125 is smaller than the radial size of the cavity element 124, and the height of the first sliding element 125 is smaller than the axial size of the cavity element 124.

[0120] In some of these embodiments, the first sliding element 125 is a sliding groove.

[0121] Furthermore, the first angle adjustment unit 120 further includes a fifth rotating element 126. Among them, the fifth rotating element 126 is disposed at the bottom end inside the cavity element 124 and is rotationally connected to the second driving unit 150.

[0122] The cross-section of the fifth rotating element 126 is circular.

[0123] The size of the fifth rotating element 126 matches the size of the cavity element 124. Generally, the diameter of the fifth rotating element 126 is smaller than the radial size of the cavity element 124, and the axial size of the fifth rotating element 126 is smaller than the axial size of the cavity element 124.

[0124] In some of these embodiments, the fifth rotating element 126 is the third rotating hole.

[0125] As Figure 5 shown, the first driving unit 130 includes a first driving element 131. Among them, the first driving element 131 is disposed at the top of the supporting unit 110 and is connected to the first angle adjusting unit 120 for driving the first angle adjusting unit 120 to rotate in the horizontal direction.

[0126] Specifically, the first driving element 131 is disposed at the top of the supporting element 111 and is respectively connected to the supporting element 111 and the fourth rotating element 123.

[0127] More specifically, the first driving element 131 is disposed at the top of the second horizontal plate and is connected to the second horizontal plate.

[0128] In some of the embodiments, the first driving element 131 is fixedly connected to the supporting element 111 and the fourth rotating element 123, including but not limited to bolt connection.

[0129] In some of the embodiments, the first driving element 131 is a first driving motor.

[0130] As Figure 6 shown, the height adjusting unit 140 includes a height adjusting element 141, a first through groove element 142, a movable element 143, a sixth rotating element 144, a second through groove element 145, a seventh rotating element 146, and an eighth rotating element 147. Among them, the height adjusting element 141 is movably disposed on the first angle adjusting unit 120 and is connected to the third driving unit 170 for rotating in the horizontal direction under the action of the first angle adjusting unit 120; the first through groove element 142 is disposed through the height adjusting element 141 for the height adjusting element 141 to be sleeved on the first angle adjusting unit 120; the movable element 143 is disposed inside the first through groove element 142 and is slidably connected to the first angle adjusting unit 120; the sixth rotating element 144 is disposed through the movable element 143 and is rotatably connected to the second driving unit 150 for driving the height adjusting element 141 to reciprocate along the axial direction of the first angle adjusting unit 120 under the action of the second driving unit 150; the second through groove element 145 is disposed through the height adjusting element 141; the seventh rotating element 146 is disposed on one side of the second through groove element 145 and is rotatably connected to the second angle adjusting unit 160; the eighth rotating element 147 is disposed on the other side of the second through groove element 145 and is rotatably connected to the second angle adjusting unit 160.

[0131] Specifically, the height adjusting element 141 is sleeved on the first angle adjusting element 121 through the first through groove element 142 and is movably connected to the first angle adjusting element 121; the movable element 143 is slidably connected to the first sliding element 125.

[0132] The height adjustment element 141 has a structure with an arc-shaped side and a rectangular side.

[0133] The dimensions of the height adjustment element 141 match those of the first angle adjustment element 121. Generally, the length and width of the height adjustment element 141 are greater than the radial dimension of the first angle adjustment element 121, and the height of the height adjustment element 141 is less than the axial dimension of the first angle adjustment element 121.

[0134] In some of the embodiments, the height adjustment element 141 is made of aluminum alloy.

[0135] In some of the embodiments, the height adjustment element 141 is a height adjustment block.

[0136] The cross-section of the first through slot element 142 is circular.

[0137] The dimensions of the first through slot element 142 match those of the height adjustment element 141. Generally, the radial dimension of the first through slot element 142 is less than the length and width of the height adjustment element 141, and the axial dimension of the first through slot element 142 is equal to the height of the height adjustment element 141.

[0138] The dimensions of the first through slot element 142 match those of the first angle adjustment element 121. Generally, the radial dimension of the first through slot element 142 is not less than the radial dimension of the first angle adjustment element 121, and the axial dimension of the first through slot element 142 is less than the axial dimension of the first angle adjustment element 121.

[0139] In some of the embodiments, the first through slot element 142 is a first through slot.

[0140] The movable element 143 is fixedly connected to the height adjustment element 141, including but not limited to bolt connection, integral molding, welding, etc.

[0141] The cross-section of the movable element 143 is waist-shaped, and the two sides are arc-shaped for adapting to the first through slot element 142.

[0142] The dimensions of the movable element 143 match those of the first through slot element 142. Generally, the length of the movable element 143 is equal to the radial dimension of the first through slot element 142, the width of the movable element 143 is less than the radial dimension of the first through slot element 142, and the height of the movable element 143 is equal to the axial dimension of the first through slot element 142.

[0143] The size of the movable element 143 matches the size of the first sliding element 125. Generally, the length of the movable element 143 is not less than the length of the first sliding element 125, the width of the movable element 143 is equal to the width of the first sliding element 125, and the height of the movable element 143 is less than the height of the first sliding element 125.

[0144] In some of these embodiments, the movable element 143 is made of aluminum alloy.

[0145] In some of these embodiments, the movable element 143 is a movable block.

[0146] The cross-section of the sixth rotating element 144 is circular.

[0147] The size of the sixth rotating element 144 matches the size of the movable element 143. Generally, the diameter of the sixth rotating element 144 is less than the length and width of the movable element 143, and the axial dimension of the sixth rotating element 144 is equal to the height of the movable element 143.

[0148] In some of these embodiments, the sixth rotating element 144 is a threaded hole.

[0149] The cross-section of the second through-groove element 145 is rectangular.

[0150] The size of the second through-groove element 145 matches the size of the height adjustment element 141. Generally, the length of the second through-groove element 145 is less than the length of the height adjustment element 141, the width of the second through-groove element 145 is less than the width of the height adjustment element 141, and the height of the second through-groove element 145 is equal to the height of the height adjustment element 141.

[0151] In some of these embodiments, the second through-groove element 145 is a second through-groove.

[0152] The cross-section of the seventh rotating element 146 is circular.

[0153] The size of the seventh rotating element 146 matches the size of the second through-groove element 145. Generally, the diameter of the seventh rotating element 146 is less than the length and height of the second through-groove element 145, and the axial dimension of the seventh rotating element 146 is less than the width of the second through-groove element 145.

[0154] In some of these embodiments, the seventh rotating element 146 is a fourth rotating hole.

[0155] The cross-section of the eighth rotating element 147 is circular.

[0156] The size of the eighth rotating element 147 matches the size of the second through-groove element 145. Generally, the diameter of the eighth rotating element 147 is smaller than the length and height of the second through-groove element 145, and the axial dimension of the eighth rotating element 147 is smaller than the width of the second through-groove element 145.

[0157] The size of the eighth rotating element 147 matches the size of the seventh rotating element 146. Generally, the diameter of the eighth rotating element 147 is equal to the diameter of the seventh rotating element 146, and the axial dimension of the eighth rotating element 147 is greater than the axial dimension of the seventh rotating element 146.

[0158] In some of these embodiments, the eighth rotating element 147 is the fifth rotating hole.

[0159] As Figure 7 shown, the second driving unit 150 includes a second driving element 151 and a ninth rotating element 152. Among them, the second driving element 151 is disposed inside the first angle adjusting unit 120 and is used to rotate horizontally under the action of the first angle adjusting unit 120; the ninth rotating element 152 is respectively connected to the second driving element 151, the first angle adjusting unit 120, and the height adjusting unit 140, and is used to drive the height adjusting unit 140 to reciprocate along the axial direction of the first angle adjusting unit 120 under the action of the second driving element 151.

[0160] Specifically, the second driving element 151 is disposed inside the cavity element 124 and is connected to the first angle adjusting element 121; the ninth rotating element 152 is respectively rotatably connected to the fifth rotating element 126 and the sixth rotating element 144.

[0161] In some of these embodiments, the second driving element 151 is fixedly connected to the first angle adjusting element 121, including but not limited to bolt connection.

[0162] In some of these embodiments, the second driving element 151 is a servo motor.

[0163] The cross-section of the ninth rotating element 152 is circular.

[0164] The size of the ninth rotating element 152 matches the size of the fifth rotating element 126 (the sixth rotating element 144). Generally, the diameter of the ninth rotating element 152 is equal to the diameter of the fifth rotating element 126 (the sixth rotating element 144), and the axial dimension of the ninth rotating element 152 is greater than the axial dimension of the fifth rotating element 126 (the sixth rotating element 144).

[0165] In some of these embodiments, the ninth rotating element 152 is fixedly connected to the second driving element 151, including but not limited to bolt connection.

[0166] In some of these embodiments, the ninth rotating element 152 and the fifth rotating element 126 are rotatably connected without separation. For example, the ninth rotating element 152 and the fifth rotating element 126 are connected by a bearing block.

[0167] In some of these embodiments, the ninth rotating element 152 is made of stainless steel.

[0168] In some of these embodiments, the ninth rotating element 152 is a lead screw.

[0169] As Figure 8 shown, the second angle adjustment unit 160 includes a second angle adjustment element 161, a tenth rotating element 162, an eleventh rotating element 163, and a placement element 164. Among them, the second angle adjustment element 161 is movably disposed on the height adjustment unit 140 and is used to rotate horizontally and reciprocate axially along the first angle adjustment unit 120 under the action of the height adjustment unit 140; the tenth rotating element 162 is disposed on one side of the second angle adjustment element 161 and is rotatably connected to the height adjustment unit 140; the eleventh rotating element 163 is disposed on the other side of the second angle adjustment element 161 and is respectively connected to the height adjustment unit 140 and the third driving unit 170, and is used to drive the second angle adjustment element 161 to rotate vertically under the action of the third driving unit 170; the placement element 164 is disposed at the top of the second angle adjustment element 161 and is respectively connected to the second angle adjustment element 161 and the monitor, and is used to rotate vertically under the action of the second angle adjustment element 161.

[0170] Specifically, the second angle adjustment element 161 is movably disposed on the second through groove element 145; the tenth rotating element 162 is rotatably connected to the seventh rotating element 146; the eleventh rotating element 163 is rotatably connected to the eighth rotating element 147.

[0171] The second angle adjustment element 161 has a rectangular top and a circular bottom.

[0172] The size of the second angle adjustment element 161 matches the size of the second through groove element 145. Generally, the length of the second angle adjustment element 161 is not greater than the length of the second through groove element 145, the width of the second angle adjustment element 161 is less than the width of the second through groove element 145, and the height of the second angle adjustment element 161 is equal to the height of the second through groove element 145.

[0173] In some of these embodiments, the second angle adjustment element 161 is made of aluminum alloy.

[0174] In some of these embodiments, the second angle adjustment element 161 is an angle adjustment block.

[0175] The cross-section of the tenth rotating element 162 is circular.

[0176] The dimensions of the tenth rotating element 162 match the dimensions of the second angle adjusting element 161. Generally, the diameter of the tenth rotating element 162 is smaller than the width and height of the second angle adjusting element 161, and the axial dimension of the tenth rotating element 162 is smaller than the length of the second angle adjusting element 161.

[0177] The dimensions of the tenth rotating element 162 match the dimensions of the seventh rotating element 146. Generally, the diameter of the tenth rotating element 162 is equal to the diameter of the seventh rotating element 146, and the axial dimension of the tenth rotating element 162 is not less than the axial dimension of the seventh rotating element 146.

[0178] In some of these embodiments, the tenth rotating element 162 is fixedly connected to the second angle adjusting element 161, including but not limited to welding.

[0179] In some of these embodiments, the tenth rotating element 162 and the seventh rotating element 146 are non-separable rotationally connected. For example, the tenth rotating element 162 and the seventh rotating element 146 are connected through a bearing housing.

[0180] In some of these embodiments, the tenth rotating element 162 is made of stainless steel.

[0181] In some of these embodiments, the tenth rotating element 162 is the third rotating shaft.

[0182] The cross-section of the eleventh rotating element 163 is circular.

[0183] The dimensions of the eleventh rotating element 163 match the dimensions of the second angle adjusting element 161. Generally, the diameter of the eleventh rotating element 163 is smaller than the width and height of the second angle adjusting element 161, and the axial dimension of the eleventh rotating element 163 is smaller than the length of the second angle adjusting element 161.

[0184] The dimensions of the eleventh rotating element 163 match the dimensions of the eighth rotating element 147. Generally, the diameter of the eleventh rotating element 163 is equal to the diameter of the eighth rotating element 147, and the axial dimension of the eleventh rotating element 163 is not less than the axial dimension of the eighth rotating element 147.

[0185] The dimensions of the eleventh rotating element 163 match the dimensions of the tenth rotating element 162. Generally, the diameter of the eleventh rotating element 163 is equal to the diameter of the tenth rotating element 162, and the axial dimension of the eleventh rotating element 163 is greater than the axial dimension of the tenth rotating element 162.

[0186] In some of these embodiments, the eleventh rotating element 163 is fixedly connected to the second angle adjusting element 161, including but not limited to welding.

[0187] In some of these embodiments, the eleventh rotating element 163 and the eighth rotating element 147 are non-separable rotatably connected. For example, the eleventh rotating element 163 and the eighth rotating element 147 are connected through a bearing housing.

[0188] In some of these embodiments, the eleventh rotating element 163 is made of stainless steel.

[0189] In some of these embodiments, the eleventh rotating element 163 is the fourth rotating shaft.

[0190] The cross-section of the placement element 164 is rectangular.

[0191] The size of the placement element 164 matches the size of the second angle adjusting element 161. Generally, the length of the placement element 164 is greater than the width of the second angle adjusting element 161, the width of the eleventh rotating element 163 is equal to the length of the second angle adjusting element 161, and the height of the placement element 164 is less than the height of the second angle adjusting element 161.

[0192] In some of these embodiments, the placement element 164 is fixedly connected to the second angle adjusting element 161, including but not limited to being integrally formed.

[0193] In some of these embodiments, the placement element 164 is made of aluminum alloy.

[0194] In some of these embodiments, the placement element 164 is a placement plate.

[0195] As Figure 9 shown, the third driving unit 170 includes a third driving element 171. Among them, the third driving element 171 is respectively connected to the height adjusting unit 140 and the second angle adjusting unit 160, and is used to drive the second angle adjusting unit 160 to rotate in the vertical direction.

[0196] Specifically, the third driving element 171 is arranged at the front end of the height adjusting element 141, and is respectively connected to the height adjusting element 141 and the eleventh rotating element 163.

[0197] In some of these embodiments, the third driving element 171 is fixedly connected to the height adjusting element 141 and the eleventh rotating element 163 respectively. Including but not limited to bolt connection.

[0198] In some of these embodiments, the third driving element 171 is a second driving motor.

[0199] The usage method of the present utility model is as follows:

[0200] (I) Install the monitor

[0201] Place the monitor on the placement element 164 and fix it by bolt connection.

[0202] (II) Install the support element 111

[0203] Place the support element 111 at the designated installation position and fix it by bolt connection.

[0204] (III) Adjustment operation

[0205] Start the first drive element 131 to drive the first angle adjustment element 121 to rotate along the circumferential direction of the first rotating element 112, thereby driving the monitor to perform angle adjustment in the horizontal direction;

[0206] Start the second drive element 151 to drive the ninth rotating element 152 to rotate along the circumferential direction of the fifth rotating element 126;

[0207] The ninth rotating element 152 drives the height adjustment element 141 to move axially along the first angle adjustment element 121 through the movable element 143, thereby driving the monitor to move up and down in the vertical direction;

[0208] Start the third drive element 171 to work, so that it drives the second angle adjustment element 161 to rotate along the axial direction of the eighth rotating element 147 through the eleventh rotating element 163, thereby driving the monitor to perform angle adjustment in the vertical direction.

[0209] The advantages of the present utility model are that by using the cooperation between the first angle adjustment unit, the height adjustment unit and the second angle adjustment unit, the horizontal direction, the vertical direction and the height direction of the monitor can be correspondingly adjusted, so that corresponding adjustments can be made according to the use requirements during the actual monitoring process, avoiding the process of disassembling and reinstalling the monitor, and improving the adjustment convenience.

[0210] Embodiment 2

[0211] This embodiment relates to the power line communication monitoring system of the present utility model.

[0212] As Figure 10 shown, a power line communication monitoring system includes a position adjustment device 100 and a monitor 200 as described in Embodiment 1. Among them, the monitor 200 is arranged at the top of the second angle adjustment unit 160 of the position adjustment device 100, and is used to monitor power equipment and reciprocate in the vertical direction, rotate in the horizontal direction and rotate in the vertical direction under the action of the position adjustment device 100.

[0213] Specifically, the monitor 200 is disposed on the top of the placement element 164 and is connected to the placement element 164.

[0214] In some of these embodiments, the monitor 200 is a monitoring probe.

[0215] 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 realized 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 position adjustment device for installing a power monitoring device and adjusting the height and angle of the power monitoring device, characterized in that: include: A support unit (110), wherein the support unit (110) is arranged perpendicular to a horizontal plane; A first angle adjustment unit (120), the first angle adjustment unit (120) being movably arranged inside the support unit (110) and being used for rotating in a horizontal direction; A first driving unit (130), the first driving unit (130) being arranged at the top end of the supporting unit (110) and connected to the first angle adjustment unit (120), and being used for driving the first angle adjustment unit (120) to rotate in a horizontal direction; a height adjustment unit (140), the height adjustment unit (140) being movably arranged on the first angle adjustment unit (120) and configured to rotate in a horizontal direction and to reciprocate along an axial direction of the first angle adjustment unit (120) under the action of the first angle adjustment unit (120); a second driving unit (150), the second driving unit (150) being arranged inside the first angle adjustment unit (120) and being rotatably connected to the height adjustment unit (140), and being used for rotating in a horizontal direction under the action of the first angle adjustment unit (120) and driving the height adjustment unit (140) to reciprocate in an axial direction of the first angle adjustment unit (120); a second angle adjustment unit (160), the second angle adjustment unit (160) being movably disposed on the height adjustment unit (140) and connected to a monitor, and being used for rotating in a vertical direction, rotating in a horizontal direction under the action of the height adjustment unit (140), and reciprocating along the axial direction of the first angle adjustment unit (120) under the action of the height adjustment unit (140); A third driving unit (170), wherein the third driving unit (170) is respectively connected to the height adjustment unit (140) and the second angle adjustment unit (160), and is used to drive the second angle adjustment unit (160) to rotate in a vertical direction.

2. The position adjustment device according to claim 1, characterized in that: The support unit (110) comprises: A supporting element (111), the supporting element (111) being arranged perpendicular to a horizontal plane, and the first driving unit (130) being arranged at the top end of the supporting element (111); A first rotating element (112), the first rotating element (112) being arranged at the bottom end of the supporting element (111) and being rotationally connected to the first angle adjustment unit (120); A second rotating element (113), the second rotating element (113) is arranged at the top end of the supporting element (111) and is rotationally connected to the first angle adjustment unit (120).

3. The position adjustment device according to claim 1, characterized in that: The first angle adjustment unit (120) comprises: A first angle adjustment element (121), the first angle adjustment element (121) being movably arranged inside the support unit (110), the first angle adjustment element (121) being sleeved with the height adjustment unit (140) and being used to drive the height adjustment unit (140) to rotate in a horizontal direction; a third rotating element (122), the third rotating element (122) being arranged at the bottom end of the first angle adjustment element (121) and being rotatably connected to the supporting unit (110); a fourth rotating element (123), the fourth rotating element (123) being arranged at the top end of the first angle adjustment element (121), and being respectively connected to the support unit (110) and the first driving unit (130), and being used for driving the first angle adjustment element (121) to rotate in a horizontal direction under the action of the first driving unit (130); a cavity element (124), the cavity element (124) being arranged inside the first angle adjustment element (121), the cavity element (124) being provided with the second driving unit (150); A first sliding element (125), wherein the first sliding element (125) is disposed through the first angle adjustment element (121), is communicated with the cavity element (124), and is slidably connected with the height adjustment unit (140).

4. The position adjustment device according to claim 3, characterized in that: The first angle adjustment unit (120) further comprises: A fifth rotating element (126), wherein the fifth rotating element (126) is disposed at the bottom end of the interior of the cavity element (124) and is rotationally connected to the second driving unit (150).

5. The position adjustment device according to claim 1, characterized in that: The first driving unit (130) comprises: A first driving element (131), wherein the first driving element (131) is arranged at the top end of the supporting unit (110) and is connected to the first angle adjustment unit (120), and is used to drive the first angle adjustment unit (120) to rotate in a horizontal direction.

6. The position adjustment device according to claim 1, characterized in that: The height adjustment unit (140) comprises: a height adjustment element (141), the height adjustment element (141) being movably disposed on the first angle adjustment unit (120) and connected to the third driving unit (170), and being used for rotating in a horizontal direction under the action of the first angle adjustment unit (120); a first through-slot element (142), the first through-slot element (142) being arranged to penetrate the height adjustment element (141) and used for allowing the height adjustment element (141) to be inserted into the first angle adjustment unit (120); A movable element (143), the movable element (143) being arranged inside the first through-slot element (142) and being slidably connected to the first angle adjustment unit (120); a sixth rotating element (144), the sixth rotating element (144) being arranged to penetrate the movable element (143) and being rotationally connected to the second driving unit (150), and being used for driving the height adjustment element (141) to reciprocate along the axial direction of the first angle adjustment unit (120) under the action of the second driving unit (150); A second through-slot element (145), wherein the second through-slot element (145) is disposed through the height adjustment element (141); a seventh rotating element (146), the seventh rotating element (146) being disposed on one side of the second through-groove element (145) and being rotationally connected to the second angle adjustment unit (160); An eighth rotating element (147), wherein the eighth rotating element (147) is disposed on the other side of the second through-slot element (145) and is rotationally connected to the second angle adjustment unit (160).

7. The position adjustment device according to claim 1, characterized in that: The second driving unit (150) comprises: a second driving element (151), the second driving element (151) being arranged inside the first angle adjustment unit (120) and being used for rotating in a horizontal direction under the action of the first angle adjustment unit (120); A ninth rotating element (152), the ninth rotating element (152) being respectively connected to the second driving element (151), the first angle adjustment unit (120), and the height adjustment unit (140), and being used for driving the height adjustment unit (140) to perform axial reciprocating motion along the first angle adjustment unit (120) under the action of the second driving element (151).

8. The position adjustment device according to claim 1, characterized in that: The second angle adjustment unit (160) comprises: a second angle adjustment element (161), the second angle adjustment element (161) being movably arranged on the height adjustment unit (140) and configured to rotate in a horizontal direction and to reciprocate along an axial direction of the first angle adjustment unit (120) under the action of the height adjustment unit (140); a tenth rotating element (162), the tenth rotating element (162) being disposed on one side of the second angle adjustment element (161) and being rotationally connected to the height adjustment unit (140); an eleventh rotating element (163), the eleventh rotating element (163) being arranged on the other side of the second angle adjustment element (161), and being respectively connected to the height adjustment unit (140) and the third driving unit (170), and being used for driving the second angle adjustment element (161) to rotate in a vertical direction under the action of the third driving unit (170); A placing element (164), wherein the placing element (164) is arranged at the top end of the second angle adjustment element (161), and is respectively connected to the second angle adjustment element (161) and a monitor, and is used to rotate in a vertical direction under the action of the second angle adjustment element (161).

9. The position adjustment device according to claim 1, characterized in that: The third driving unit (170) comprises: A third driving element (171), wherein the third driving element (171) is respectively connected to the height adjustment unit (140) and the second angle adjustment unit (160), and is used to drive the second angle adjustment unit (160) to rotate in a vertical direction.

10. A power line communication monitoring system, characterized in that: include: The position adjustment device (100) as claimed in any one of claims 1 to 9; A monitor (200), the monitor (200) being arranged at the top of the second angle adjustment unit (160) of the position adjustment device (100), and being used for monitoring the electric equipment and reciprocating in the vertical direction, rotating in the horizontal direction, and rotating in the vertical direction under the action of the position adjustment device (100).