A multi-scene environment monitoring device special for outdoor container computing power center

CN122590957APending Publication Date: 2026-08-18SICHUAN COMM RES PLANNING & DESIGNING CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202610504248.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-04-16
Publication Date
2026-08-18

AI Technical Summary

Technical Problem

[0002]室外集装箱算力中心内部管线系统的运行环境对其承载的高密度计算设备稳定性影响重大,需精准掌握管线的环境状态,但实际情况是要么仅监测管线外部环境,要么仅监测内部环境,难以实现对管线整体环境的全面把控,无法满足室外集装箱算力中心多场景下的应用需求,且室外集装箱算力中心配套的抗震支吊架多为分散式结构,在现场安装时,需依赖扳手、螺丝刀等工具对多个分散零件逐一进行螺栓拧紧拼装,每一套环境监测设备的组装都需重复繁琐的固定工序,并且由于室外作业场景中往往需要安装大量该设备,工作人员不得不对成百上千套支吊架逐个完成拼装与固定,劳动强度大、耗时极长,安装效率低,严重影响整体施工进度,此外,分散的零部件在运输至室外作业点的过程中易出现丢失、损坏等情况,且仓储时,由于规格多样、数量繁杂,需要划分多个区域分别存放,不仅占用较多仓储空间,还容易因分类不清导致取用混乱,增加了物料管理的难度和成本

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN122590957A_ABST
    Figure CN122590957A_ABST
Patent Text Reader

Abstract

This invention relates to the field of outdoor container computing centers and discloses a multi-scenario environmental monitoring device specifically designed for outdoor container computing centers. The device includes a main body comprising a base and four mounting components, two of which are equipped with longitudinal hanger components; a connecting part comprising connectors mounted on the other two mounting components, the base, and the longitudinal hanger components, the connectors being equipped with diagonal bracing hanger components; and a monitoring part comprising a pipeline body mounted on the base, the pipeline body being equipped with a first environmental monitor and a second environmental monitor inside the pipeline body. The diagonal bracing hanger components can be adjusted in angle via the connectors. This device enables real-time monitoring of the internal and external environments of the pipeline body, meeting the application needs of outdoor container computing centers in multiple scenarios. Furthermore, the longitudinal hanger components and the diagonal bracing hanger components can be unfolded or folded as a whole via the connectors. When unfolded, they facilitate installation, saving time and effort, improving safety and efficiency, and significantly accelerating the overall construction progress. When folded, they facilitate transportation and storage.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of outdoor container computing centers, and in particular to a multi-scenario environmental monitoring device specifically designed for outdoor container computing centers. Background Technology

[0002] The operating environment of the internal pipeline system in outdoor containerized computing centers has a significant impact on the stability of the high-density computing equipment it supports. Accurate monitoring of the pipeline's environmental status is crucial. However, in reality, monitoring often focuses only on either the external or internal environment, making comprehensive control of the entire pipeline environment difficult. This fails to meet the diverse application needs of outdoor containerized computing centers across various scenarios. Furthermore, the seismic supports for these centers are often distributed structures, requiring the use of wrenches, screwdrivers, and other tools to individually tighten bolts and assemble multiple disparate parts during on-site installation. Each set of environmental monitoring equipment... Assembly requires repetitive and tedious fixing procedures. Furthermore, since a large number of these devices often need to be installed in outdoor work scenarios, workers have to assemble and fix hundreds or thousands of support brackets one by one. This is labor-intensive, time-consuming, and inefficient, seriously affecting the overall construction progress. In addition, scattered parts are prone to loss or damage during transportation to outdoor work sites. Moreover, due to the variety of specifications and quantities, storage requires dividing the area into multiple zones, which not only occupies a lot of storage space but also easily leads to confusion in retrieval due to unclear classification, increasing the difficulty and cost of material management. Summary of the Invention

[0003] In view of the problems existing in the prior art, the present invention is proposed.

[0004] The above-mentioned technical problems are solved by the following technical solution: This invention proposes a multi-scenario environmental monitoring device specifically for outdoor container computing centers, comprising: a main body, including a base and four mounting components, two of which are equipped with longitudinal hanger components; a connecting part, including connectors on the other two mounting components, the base, and the longitudinal hanger components, the connectors being equipped with diagonal bracing hanger components; and a monitoring part, including a pipeline body on the base, a first environmental monitor on the pipeline body, and a second environmental monitor inside the pipeline body; wherein the angle of the diagonal bracing hanger components is adjusted by the connectors, and the longitudinal hanger components and the diagonal bracing hanger components can be fully unfolded or folded through the connectors. Unfolding facilitates installation, and folding facilitates transportation and storage. The monitoring part performs real-time monitoring of the internal and external environments of the pipeline body.

[0005] In a preferred embodiment of the multi-scenario environmental monitoring device for outdoor container computing centers described in this invention: the base is provided with a first anti-vibration pad, and the first anti-vibration pad is provided with a through groove.

[0006] In a preferred embodiment of the multi-scenario environmental monitoring device for outdoor container computing centers described in this invention: the mounting component includes a fixing plate, the fixing plate is provided with a mounting groove, and the fixing plate is provided with a first anti-slip pad.

[0007] In a preferred embodiment of the multi-scenario environmental monitoring equipment for outdoor container computing centers described in this invention: the longitudinal hanger includes a first hanger rod disposed on two of the fixed plates, the first hanger rod having a first sliding groove, the first sliding groove having a first slider, the first slider having a first screw, the first screw having a first throttle, the first throttle having a second hanger rod, the first hanger rod having a first threaded groove adapted to the first screw, and the second hanger rod having a support; wherein, the first screw is threadedly connected to the first threaded groove.

[0008] In a preferred embodiment of the multi-scenario environmental monitoring device for outdoor container computing centers described in this invention: the connector includes two support plates disposed on two other fixed plates and supports; the upper left and upper right sides of the base are also provided with two support plates; a movable column is provided between the two support plates; the side wall of the movable column is provided with a movable groove; a connecting groove is provided in the movable groove; a connecting column is provided in the movable groove; a connecting block is provided on the outer surface of the connecting column; a spring is provided on the connecting block; a connecting plate is provided on the side wall of the connecting column; a limiting slot is provided on the connecting plate; and a limiting insert is provided on the side wall of one of the support plates; wherein the limiting insert is plugged into the limiting slot.

[0009] In a preferred embodiment of the multi-scenario environmental monitoring device for outdoor container computing centers described in this invention: it further includes a limiting member disposed on the side wall of the connecting column, the limiting member including a push handle disposed on the side wall of the connecting column, the outer surface of the push handle being provided with a limiting plate, the limiting plate being provided with a limiting block, and the other side wall of the support plate being provided with a limiting seat; wherein, the limiting block and the limiting seat are plugged into each other.

[0010] In a preferred embodiment of the multi-scenario environmental monitoring equipment for outdoor container computing centers described in this invention: the inclined support bracket includes adjusting seats on four movable columns, two of which are provided with third lifting rods, each third lifting rod having a second sliding groove, each second sliding groove having a second slider, each second slider having a second screw, each second screw having a second throttle, and each third lifting rod having a second threaded groove adapted to the second screw; wherein the second screw is threadedly connected to the second threaded groove.

[0011] In a preferred embodiment of the multi-scenario environmental monitoring device for outdoor container computing centers described in this invention: it further includes a limiting member disposed on the side wall of the connecting plate. The limiting member includes a connecting seat disposed on the side wall of the connecting plate. The side wall of the connecting seat is provided with a limiting block. The outer surfaces of the first throttle and the second throttle are both provided with limiting grooves. The limiting block is inserted into the limiting groove.

[0012] In a preferred embodiment of the multi-scenario environmental monitoring device for outdoor container computing centers described in this invention: it further includes a clamping component on the base, the clamping component including a slide on the base, the slide having a clamping plate on its side wall, and the clamping plate having a second anti-vibration pad on its side wall.

[0013] In a preferred embodiment of the multi-scenario environmental monitoring device for outdoor container computing centers described in this invention: it further includes a fixing member provided on the clamping plate, the fixing member including a threaded rod provided on the clamping plate, the side wall of the threaded rod is provided with a third throttle, the side wall of the third throttle is fixedly connected with a second anti-slip pad, the side wall of the slide is provided with a third threaded groove adapted to the threaded rod, and the base is provided with a fixing groove.

[0014] The beneficial effects of this invention are as follows: By setting up a monitoring unit, real-time monitoring of the internal and external environments of the pipeline body can be achieved, enabling comprehensive control of the overall pipeline environment, meeting the application needs of outdoor container computing centers in multiple scenarios, ensuring the real-time and comprehensiveness of environmental data, and by setting up a main body and connecting parts, the longitudinal hanger components and diagonal brace hanger components can be unfolded or folded as a whole through connecting parts. When unfolded, it is easy to install, eliminating the need to tighten bolts on multiple scattered parts one by one on-site, saving time and effort, improving safety and efficiency, and significantly accelerating the overall construction progress. When folded, it is easy to transport and store, avoiding the loss or damage of scattered parts during transportation, reducing the difficulty and cost of material management. Attached Figure Description

[0015] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments of the present invention will be briefly described below. Obviously, the drawings described below only relate to some embodiments of the present invention and are not intended to limit the present invention. Wherein: Figure 1 A schematic diagram of a multi-scenario environmental monitoring device specifically designed for an outdoor container computing center is shown. Figure 2 A schematic diagram of a multi-scenario environmental monitoring device specifically designed for an outdoor container computing center is shown. Figure 3 A schematic diagram of a multi-scenario environmental monitoring device specifically designed for an outdoor container computing center is shown. Figure 4A partial structural schematic diagram of a multi-scenario environmental monitoring device specifically designed for an outdoor container computing center is shown. Figure 5 It shows Figure 4 Enlarged view of point A in the middle; Figure 6 A schematic diagram of the limit seat for a multi-scenario environmental monitoring device specifically designed for outdoor container computing centers is shown. Figure 7 A schematic diagram of the connection part of a multi-scenario environmental monitoring device specifically designed for an outdoor container computing center is shown. Figure 8 A schematic diagram of the connection block for a multi-scenario environmental monitoring device specifically designed for an outdoor container computing center is shown. Figure 9 A partial structural schematic diagram of a multi-scenario environmental monitoring device specifically designed for an outdoor container computing center is shown. Figure 10 A schematic diagram of the clamping components for a multi-scenario environmental monitoring device specifically designed for outdoor container computing centers is shown. Detailed Implementation

[0016] To enable those skilled in the art to better understand the present invention, the present invention will be further described in detail below with reference to specific embodiments and accompanying drawings.

[0017] The terminology used in this invention is that which is currently widely used in the art in consideration of the function of the invention; however, these terms may vary according to the intent of those skilled in the art, precedent, or new technology in the art. Furthermore, specific terms may be chosen by the applicant, and in such cases, their detailed meanings will be described in the detailed description of the invention. Therefore, the terms used in this specification should not be construed as simple names, but rather based on their meanings and the overall description of the invention.

[0018] Example 1 Reference Figures 1-3This embodiment provides a multi-scenario environmental monitoring device specifically designed for outdoor container computing centers. It includes a main body 1, comprising a base 11 and four mounting components 12, two of which are equipped with longitudinal hanger components 13; a connecting part 2, comprising connectors 21 mounted on the other two mounting components 12, the base 11, and the longitudinal hanger components 13, the connectors 21 being equipped with diagonal bracing hanger components 22; and a monitoring part 3, comprising a pipeline body 31 mounted on the base 11, the pipeline body 31 being equipped with a first environmental monitor 32, and a second environmental monitor 33 located within the pipeline body 31. The diagonal bracing hanger components 22 are angled via the connectors 21, and the longitudinal hanger components 13 and the diagonal bracing hanger components 22 are able to be unfolded or folded as a whole via the connectors 21. Unfolding facilitates installation, and folding facilitates transportation and storage. The monitoring part 3 performs real-time monitoring of the internal and external environments of the pipeline body 31. Specifically, the four mounting components 12 are symmetrically distributed in pairs. The diagonal brace hanger component 22 and the longitudinal hanger component 13 are unfolded through the connector 21. The diagonal brace hanger component 22 is adjusted to a suitable angle through the connector 21. Then, conventional mechanical anchors are used to reliably connect the mounting component 12 to the building structure, anchoring the mounting component 12 to the building structure and achieving overall installation, which is convenient for installation. When the diagonal brace hanger component 22 and the longitudinal hanger component 13 are folded through the connector 21 (such as...), Figure 3 The folding mechanism reduces the volume of the device, making it easier to transport and store the entire unit. This prevents scattered parts from being lost or damaged during transportation, and reduces the difficulty and cost of material management. Two of each of the first environmental monitoring instruments 32 and the second environmental monitoring instruments 33 are provided, and the two first environmental monitoring instruments 32 and the two second environmental monitoring instruments 33 are symmetrically arranged. The first environmental monitoring instruments 32 and the two environmental monitoring instruments 33 monitor the internal and external environment of the pipeline body 31 in real time, realize comprehensive control of the overall environment of the pipeline, meet the application needs of the outdoor container computing center in multiple scenarios, ensure the real-time and comprehensiveness of environmental data, and, more importantly, the two first environmental monitoring instruments 32 and the two second environmental monitoring instruments 33 operate synchronously: on the one hand, the mutual verification of multiple sets of data can significantly reduce monitoring errors and improve data accuracy; on the other hand, when one of the first environmental monitoring instruments 32 / second environmental monitoring instruments 33 fails, the other in the same group can immediately take over to continue monitoring, forming a redundant backup mechanism to avoid environmental monitoring interruption due to single point of failure, and ensure the continuity and stability of monitoring work; Example 2 Reference Figures 1-9 This embodiment differs from the first embodiment in that the mounting component 12 includes a fixing plate 121, the fixing plate 121 is provided with a mounting groove 122, and the fixing plate 121 is provided with a first anti-slip pad 123; Specifically, each fixing plate 121 is provided with four mounting slots 122. A first anti-slip pad 123 is fixedly connected to the fixing plate 121. The first anti-slip pad 123 plays an anti-slip role, increases the friction coefficient, prevents the fixing plate 121 from slipping, and significantly improves the anchoring reliability. Magnets a are fixedly connected to the opposite surfaces of two corresponding fixing plates 121, so that when the whole is folded (e.g., Figure 3 The two fixing plates 121 are magnetically connected by magnet a; The longitudinal hanger component 13 includes a first hanger rod 131 disposed on two of the fixed plates 121. The first hanger rod 131 is provided with a first sliding groove 132. The first sliding groove 132 is provided with a first slider 133. The first slider 133 is provided with a first screw 134. The first screw 134 is provided with a first handle 135. The first handle 135 is provided with a second hanger rod 136. The first hanger rod 131 is provided with a first threaded groove 137 adapted to the first screw 134. The second hanger rod 136 is provided with a support 138. The first screw 134 is threadedly connected to the first threaded groove 137. Specifically, the first lifting rod 131 is fixedly connected to the corresponding fixed plate 121, the first slider 133 is slidably connected to the first sliding groove 132, the first slider 133 is arranged in a "+" shape, the first slider 133 is rotatably connected to the first screw 134, the first handle 135 is fixedly connected to the first screw 134, the second lifting rod 136 is rotatably connected to the first handle 135, and the second lifting rod 136 is fixedly connected to the support 138. The first screw 134 can be rotated via the first handle 135, causing the first lifting rod 131 to rise and fall under the action of the first screw 134 and the first threaded groove 137, allowing for adjustment according to actual conditions. The support 138 restricts the rotation angle of the second lifting rod 136. When the second lifting rod 136 rotates upwards by 90°, the support 138 contacts the base 11 (e.g., ...). Figure 5 Under the action of support 138, the second lifting rod 136 can no longer rotate; The connector 21 includes two support plates 211 mounted on two other fixed plates 121 and a support 138. The upper left and upper right sides of the base 11 also have two support plates 211. A movable column 212 is provided between the two support plates 211. The side wall of the movable column 212 has a movable groove 213. A connecting groove 214 is provided within the movable groove 213. A connecting column 215 is provided within the movable groove 213. A connecting block 216 is provided on the outer surface of the connecting column 215. A spring 217 is provided on the connecting block 216. A connecting plate 218 is provided on the side wall of the connecting column 215. A limiting slot 219 is provided on the connecting plate 218. One of the support plates 211 has a limiting insert 210 on its side wall; the limiting insert 210 is plugged into the limiting slot 219. Specifically, the corresponding support plate 211 is fixedly connected to the fixed plate 121, the corresponding support plate 211 is fixedly connected to the support 138, the corresponding support plate 211 is fixedly connected to the base 11, the movable column 212 is rotatably connected to the support plate 211, the movable groove 213 passes through the movable column 212, the connecting column 215 is slidably connected to the movable groove 213, the connecting column 215 is fixedly connected to the connecting block 216, the connecting block 216 is slidably connected to the connecting groove 214, and the spring 217 is fixedly connected to the inner wall of the connecting block 216 and the connecting groove 214. The connecting plate 218 is fixedly connected to the connecting column 215. Multiple limiting slots 219 and multiple limiting blocks 210 are provided, and the multiple limiting slots 219 and multiple limiting blocks 210 are arranged in a ring array. When the limiting slot 219 is not inserted into the limiting block 210, the movable column 212 can rotate. When the limiting slot 219 is inserted into the limiting block 210, the movable column 212 cannot rotate. The corresponding movable column 212 passes through the corresponding second hanger 136 and is fixedly connected to the second hanger 136. The diagonal brace hanger component 22 includes adjusting seats 221 on four movable columns 212. Two of the adjusting seats 221 are provided with third hanger rods 222. The third hanger rods 222 are provided with second sliding grooves 223. The second sliding grooves 223 are provided with second sliders 224. The second sliders 224 are provided with second screws 225. The second screws 225 are provided with second handles 226. The third hanger rods 222 are provided with second threaded grooves 227 that are adapted to the second screws 225. The second screws 225 and the second threaded grooves 227 are threadedly connected. Specifically, the corresponding movable column 212 passes through the corresponding adjusting seat 221 and is fixedly connected to the adjusting seat 221. The corresponding adjusting seat 221 is fixedly connected to the corresponding third hanging rod 222. The second slider 224 is slidably connected to the second sliding groove 223. The second screw 225 is rotatably connected to the second slider 224. The second handle 226 is fixedly connected to the second screw 225. The second handle 226 is rotatably connected to the corresponding adjusting seat 221. Through the second handle 226, the second screw 225 can be rotated, so that the third hanging rod 222 rises and falls under the action of the second screw 225 and the second threaded groove 227, so as to make adjustments according to the actual situation. In use, first, the connecting column 215 drives the connecting plate 218 and the connecting block 216 to move backward under the action of the connecting groove 214 and the movable groove 213, so that the limiting insert 210 disengages from the limiting slot 219. At this time, the longitudinal hanger 13 is moved, causing the longitudinal hanger 13 to deflect upward at a 90° angle through the movable column 212. At this time, the support 138 contacts the base 11 (e.g., Figure 5 Then, move the diagonal brace hanger 22 to adjust it to a suitable angle away from the movable column 212 via the movable column 212, so that the whole thing can be unfolded. During installation, bring the base 11 into contact with the pipeline body 31, then rotate the first handle 135 to rotate the first screw 134. This causes the first hanger 131 to move the corresponding fixing plate 121 upward under the action of the first screw 134, the first threaded groove 137, the first slider 133, and the first sliding groove 132 (adjust as needed). This brings the corresponding fixing plate 121 into contact with the building structure. Then, rotate the second handle 226 to rotate the second screw 225. This causes the second hanger 136 to move the corresponding fixing plate 121 upward under the action of the second screw 225, the second threaded groove 227, the second slider 224, and the second sliding groove 223 (adjust as needed). After adjustment, the corresponding fixing plate 121 is brought into contact with the building structure. After unfolding and adjustment, the connecting column 215 drives the connecting block 216 and the connecting plate 218 to reset under the action of the spring 217, so that the limiting plug 210 is inserted into the limiting slot 219 and the fixing plate 121 is reliably connected to the building structure with conventional mechanical anchors, so that the fixing plate 121 is anchored to the building structure, realizing the overall installation. It is only necessary to unfold the whole and adjust the length and angle as needed before installation. There is no need to tighten the bolts of multiple scattered parts one by one on site with the help of tools, which saves time and effort, improves safety and efficiency, and greatly speeds up the overall construction progress. Example 3 Reference Figures 2-7 This embodiment differs from the first embodiment in that it also includes a limiting member 23 disposed on the side wall of the connecting column 215. The limiting member 23 includes a push handle 231 disposed on the side wall of the connecting column 215, a limiting plate 232 disposed on the outer surface of the push handle 231, a limiting block 233 disposed on the limiting plate 232, and a limiting seat 234 disposed on the side wall of another support plate 211; wherein, the limiting block 233 and the limiting seat 234 are inserted and connected. Specifically, the push handle 231 is rotatably connected to the connecting column 215, the limiting plate 232 is fixedly connected to the push handle 231, the limiting block 233 is fixedly connected to the limiting plate 232, and the limiting seat 234 is arranged in an "M" shape; In use, in conjunction with Embodiment 2, before the connecting post 215 moves backward, the push handle 231 must be rotated to cause the limiting plate 232 to deflect the limiting block 233 away from the limiting seat 234. Then, a force is applied to the push handle 231 to cause it to move the limiting plate 232 backward. Simultaneously, as the limiting insert 210 disengages from the limiting slot 219, the push handle 231 is rotated in the opposite direction to cause the limiting plate 232 to deflect the limiting block 233 and insert it into the limiting seat 234. At this time, under the limiting action of the limiting block 233 and the limiting seat 234, the limiting insert 210 is never inserted into the limiting slot 219. This facilitates the unfolding and adjustment of the longitudinal hanger 13 and the transverse hanger, eliminating the need to repeatedly move the connecting column 215 backward during the unfolding and adjustment process, thus improving the unfolding and installation efficiency. After unfolding and adjustment, the push handle 231 is rotated, causing the limiting plate 232 to drive the limiting block 233 to rotate and disengage from the limiting seat 234. At this time, the connecting column 215 drives the connecting block 216 to reset the push handle 231 under the action of the spring 217. Then, the push handle 231 is rotated again, causing the limiting block 233 to insert into the limiting seat 234, thereby limiting the connecting column 215, preventing displacement, and improving the stability and reliability of the connection after the overall unfolding and angle adjustment. Example 4 Reference Figures 2-9 This embodiment differs from the first embodiment in that it also includes a limiting member 24 disposed on the side wall of the connecting plate 218. The limiting member 24 includes a connecting seat 241 disposed on the side wall of the connecting plate 218, and a limiting block 242 disposed on the side wall of the connecting seat 241. The outer surfaces of the first throttle 135 and the second throttle 226 are both provided with limiting grooves 243; wherein, the limiting block 242 and the limiting groove 243 are inserted into each other. Specifically, the connecting seat 241 is fixedly connected to the connecting plate 218, the limiting block 242 is fixedly connected to the connecting seat 241, and multiple limiting slots 243 are provided, and the multiple limiting slots 243 are distributed in a ring array. In use, in conjunction with Embodiment 2, when the connecting plate 218 moves backward, the connecting seat 241 moves backward along with the connecting plate 218, causing the limiting block 242 to move backward, so that the limiting block 233 disengages from the limiting groove 243. At this time, the restriction on the first throttle 135 and the second throttle 226 is released, and the first screw 134 and the second screw 225 can be rotated by rotating the first throttle 135 / second throttle 226 to achieve the height adjustment of the first lifting rod 131 / second lifting rod 136. When the connecting plate 218 moves the connecting seat 241 forward, the limiting block 233 gradually inserts into the corresponding limiting groove 243. When the limiting insert 210 is inserted into the limiting slot 219, the limiting block 242 is inserted into the limiting groove 243 to achieve the restriction on the first throttle 135 / second throttle 226, preventing the first throttle 135 / second throttle 226 from being deflected by vibration and affecting the overall seismic resistance effect. Example 5 Reference Figures 1-10 , this embodiment is different from the first embodiment in that a first anti-seismic pad 111 is provided on the base 11, and a through groove 112 is provided on the first anti-seismic pad 111; Specifically, the first anti-seismic pad 111 is fixedly connected to the base 11. There are multiple through grooves 112, and the multiple through grooves 112 are equidistantly distributed. Through the multiple through grooves 112, the friction coefficient of the contact surface between the first anti-seismic pad 111 and the pipeline main body 31 is significantly increased, achieving the dual effects of anti-slip and vibration damping; It further includes a clamping member 14 provided on the base 11. The clamping member 14 includes a sliding seat 141 provided on the base 11. A clamping plate 142 is provided on the side wall of the sliding seat 141, and a second anti-seismic pad 143 is provided on the side wall of the clamping plate 142; Specifically, there are two clamping members 14, and the two clamping members 14 are symmetrically arranged. The sliding seat 141 is slidably connected to the base 11. The sliding seat 141 is fixedly connected to the clamping plate 142. The clamping plate 142 is arranged in a "C" shape. The sliding seat 141 is fixedly connected to the clamping plate 142. The second anti-seismic pad 143 is fixedly connected to the clamping plate 142. There are two second anti-seismic pads 143, and the two second anti-seismic pads 143 are symmetrically arranged. When the whole is installed with the building structure through the mounting member 12 and conventional mechanical anchors, the two clamping members 14 are toggled, so that the two clamping plates 142 approach the pipeline main body 31 through the sliding seat 141, making the second anti-seismic pad 143 contact the pipeline main body 31, realizing the clamping of the pipeline main body 31; It further includes a fixing member 15 provided on the clamping plate 142. The fixing member 15 includes a threaded rod 151 provided on the clamping plate 142. A third turning handle 152 is provided on the side wall of the threaded rod 151. A second anti-slip pad 153 is fixedly connected to the side wall of the third turning handle 152. A third thread groove 154 adapted to the threaded rod 151 is provided on the side wall of the sliding seat 141, and a fixing groove 155 is provided on the base 11; Specifically, the threaded rod 151 penetrates through the clamping plate 142 and is threadedly connected to the clamping plate 142. The threaded rod 151 is fixedly connected to the third turning handle 152. The third turning handle 152 is fixedly connected to the second anti-slip pad 153. The second anti-slip pad 153 is arranged in a ring shape. The threaded rod 151 is located inside the second anti-slip pad 153. The threaded rod 151 is threadedly connected to the third thread groove 154. There are multiple fixing grooves 155, and the multiple fixing grooves 155 are equidistantly distributed. Through the second anti-slip pad 153, it can be placed; In use, in conjunction with Embodiment 2, after the entire device is installed, the pipeline body 31 contacts the first anti-vibration pad 111. Under the action of the first anti-vibration pad 111, it plays a protective role for the pipeline body 31. At the same time, the multiple through grooves 112 play a non-slip role. Then, the third handle 152 is turned, which drives the threaded rod 151 to rotate, so that the threaded rod 151 disengages from the third threaded groove 154 and the fixing groove 155. At this time, the clamping plate 142 is moved, so that the two clamping plates 142 move closer to the pipeline body 31 through the slide 141, so that the second anti-vibration pad 143 contacts the pipeline body. When the body 31 contacts, the third handle 152 is rotated to rotate the threaded rod 151. The threaded rod 151 passes through the fixed groove 155 and is threadedly connected to the third threaded groove 154, so that the clamping plate 142 and the slide 141 are fixed in position. The two clamping plates 142 clamp the pipeline body 31. At the same time, under the action of the second anti-vibration pad 143, the pipeline body 31 is further protected. The first anti-vibration pad 111, the second anti-vibration pad 143 and the two clamping plates 142 form a flexible support, which significantly weakens the vibration transmission and fully protects the pipeline body 31. Finally, it should be noted that the methods and devices described in detail above are merely embodiments, and those skilled in the art can modify these embodiments in different ways as long as they do not depart from the scope of the present invention.

Claims

1. A multi-scenario environmental monitoring device specifically designed for outdoor container computing centers, characterized in that: include, The main body (1) includes a base (11) and four mounting members (12), wherein two of the mounting members (12) are provided with longitudinal hanger members (13); The connecting part (2) includes a connector (21) provided on the other two mounting parts (12), the base (11) and the longitudinal hanger (13), and the connector (21) is provided with a diagonal brace hanger (22). The monitoring unit (3) includes a pipeline body (31) mounted on a base (11), a first environmental monitoring instrument (32) mounted on the pipeline body (31), and a second environmental monitoring instrument (33) mounted inside the pipeline body (31). The angle of the inclined brace hanger (22) is adjusted by the connector (21), and the longitudinal hanger (13) and the inclined brace hanger (22) are unfolded or folded as a whole by the connector (21). The unfolding facilitates installation, and the folding facilitates transportation and storage. The monitoring unit (3) monitors the internal and external environment of the pipeline body (31) in real time.

2. The multi-scenario environmental monitoring equipment for outdoor container computing centers according to claim 1, characterized in that: The base (11) is provided with a first anti-vibration pad (111), and the first anti-vibration pad (111) is provided with a through groove (112).

3. The multi-scenario environmental monitoring equipment for outdoor container computing centers according to claim 2, characterized in that: The mounting component (12) includes a fixing plate (121), the fixing plate (121) is provided with a mounting groove (122), and the fixing plate (121) is provided with a first anti-slip pad (123).

4. The multi-scenario environmental monitoring equipment for outdoor container computing centers according to claim 3, characterized in that: The longitudinal hanger component (13) includes a first hanger rod (131) disposed on two of the fixed plates (121), the first hanger rod (131) having a first sliding groove (132) disposed in the first sliding groove (132) having a first slider (133) disposed in the first sliding groove (132) having a first screw (134) disposed on the first slider (133) having a first throttle (135) disposed on the first screw (134) having a second hanger rod (136) disposed on the first throttle (135), the first hanger rod (131) having a first threaded groove (137) adapted to the first screw (134) having a support (138) disposed on the second hanger rod (136); The first screw (134) is threadedly connected to the first threaded groove (137).

5. The multi-scenario environmental monitoring equipment for outdoor container computing centers according to claim 4, characterized in that: The connector (21) includes two support plates (211) on two other fixed plates (121) and a support (138). The upper left and upper right sides of the base (11) are also provided with two support plates (211). A movable column (212) is provided between the two support plates (211). The side wall of the movable column (212) is provided with a movable groove (213). A connecting groove (214) is provided in the movable groove (213). A connecting column (215) is provided in the movable groove (213). A connecting block (216) is provided on the outer surface of the connecting column (215). A spring (217) is provided on the connecting block (216). A connecting plate (218) is provided on the side wall of the connecting column (215). A limiting slot (219) is provided on the connecting plate (218). A limiting insert (210) is provided on the side wall of one of the support plates (211). The limiting plug (210) is plugged into the limiting slot (219).

6. The multi-scenario environmental monitoring equipment for outdoor container computing centers according to claim 5, characterized in that: It also includes a limiting member (23) provided on the side wall of the connecting column (215), the limiting member (23) includes a push handle (231) provided on the side wall of the connecting column (215), the outer surface of the push handle (231) is provided with a limiting plate (232), the limiting plate (232) is provided with a limiting block (233), and the other side wall of the support plate (211) is provided with a limiting seat (234). The limiting block (233) is plugged into the limiting seat (234).

7. The multi-scenario environmental monitoring equipment for outdoor container computing centers according to claim 6, characterized in that: The inclined support bracket (22) includes an adjustment seat (221) on four movable columns (212), two of the adjustment seats (221) are provided with a third hanger (222), the third hanger (222) is provided with a second slide groove (223), the second slide groove (223) is provided with a second slider (224), the second slider (224) is provided with a second screw (225), the second screw (225) is provided with a second throttle (226), and the third hanger (222) is provided with a second threaded groove (227) that is adapted to the second screw (225). The second screw (225) is threadedly connected to the second threaded groove (227).

8. The multi-scenario environmental monitoring equipment for outdoor container computing centers according to claim 7, characterized in that: It also includes a limiting member (24) provided on the side wall of the connecting plate (218), the limiting member (24) includes a connecting seat (241) provided on the side wall of the connecting plate (218), the side wall of the connecting seat (241) is provided with a limiting block (242), and the outer surfaces of the first throttle (135) and the second throttle (226) are both provided with limiting grooves (243). The limiting block (242) is plugged into the limiting groove (243).

9. The multi-scenario environmental monitoring equipment for outdoor container computing centers according to claim 8, characterized in that: It also includes a clamping member (14) provided on the base (11), the clamping member (14) includes a slide (141) provided on the base (11), the slide (141) has a clamping plate (142) on its side wall, and the clamping plate (142) has a second anti-vibration pad (143) on its side wall.

10. The multi-scenario environmental monitoring equipment for outdoor container computing centers according to claim 9, characterized in that: It also includes a fixing member (15) provided on the clamping plate (142), the fixing member (15) includes a threaded rod (151) provided on the clamping plate (142), the side wall of the threaded rod (151) is provided with a third throttle (152), the side wall of the third throttle (152) is fixedly connected with a second anti-slip pad (153), the side wall of the slide (141) is provided with a third threaded groove (154) adapted to the threaded rod (151), and the base (11) is provided with a fixing groove (155).