Rotary monitoring room
By combining rotating pillars and transmission gears, the problem of fine-tuning the rotating monitoring room is solved, and the monitoring accuracy and equipment protection effect are improved.
Patent Information
- Application Number
- CN202422227465.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-11
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-09-11
AI Technical Summary
In the prior art, the driving mechanism of the rotating monitoring room has high power and high speed, which is not conducive to fine-tuning and is prone to damage the wave-transmitting membrane during blasting operations.
The monitoring cabin is supported by a rotating strut, and the combined transmission ratio of the drive gear, transmission gear and internal gear ring is used to improve transmission efficiency and reduce the rotation speed to achieve fine adjustment.
It realizes the fine angle adjustment of the monitoring room, protects the equipment, extends its service life, and ensures the continuous and efficient monitoring.
Smart Images

Figure CN223358820U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of sidewave radar monitoring, in particular to a rotating monitoring room. Background Art
[0002] When selecting slope radar monitoring points in the field, locations directly opposite the slope are typically chosen to ensure comprehensive and accurate coverage of the entire slope area. However, the precise selection of monitoring points is often based on experience or visual inspection, lacking precise quantitative guidance. During trial testing after the monitoring room is installed, due to differences in human vision, the viewing direction of the monitoring room owner after installation often deviates from the slope direction.
[0003] This deviation will cause the angle between the monitoring radar and the slope to be less than ideal, such as a small incident angle, thus affecting the monitoring effect.
[0004] To address this issue, existing technologies have employed a rotating device installed or designed at the bottom of the monitoring chamber. This allows for fine-tuning of the monitoring direction during radar installation and commissioning, ensuring that the monitoring chamber's wave-transmitting window faces the slope being monitored, ultimately achieving optimal monitoring results. Furthermore, this device can be used to adjust the monitoring chamber's rotational direction during blasting operations, preventing rock splashes from damaging the wave-transmitting membrane or other auxiliary mechanisms.
[0005] However, in actual applications, since the monitoring room needs to have a certain strength and internal load, its own mass is large and the rotational resistance is large. In order to meet the corresponding rotation requirements, its driving mechanism often requires a large power. The high-power driving mechanism has a high speed, which is not conducive to the fine-tuning of the monitoring room. Utility Model Content
[0006] The purpose of the utility model is to provide a rotating monitoring room to solve the problem in the prior art that it is not conducive to fine-tuning the detection room.
[0007] In order to solve the above technical problems, the present invention specifically provides a rotating monitoring room, comprising a base and a rotating support, wherein a monitoring cabin is mounted on the base via the rotating support;
[0008] In which, the rotating pillar includes a column installed on the base, the column and the monitoring cabin are connected by a bearing to support the monitoring cabin, and a driving gear is sleeved on the outer surface of the column, and the driving gear is driven by a driving mechanism installed in the base or the column. An inner ring gear concentric with the column is fixedly installed at the bottom of the monitoring cabin, and the driving gear and the inner ring gear are connected by a transmission gear to transmit power to drive the monitoring cabin to rotate to adjust the direction of the monitoring cabin.
[0009] Furthermore, the transmission ratios of the driving gear and the transmission gear as well as the transmission gear and the inner ring gear are all greater than.
[0010] Furthermore, a wave-transmitting window for radar monitoring is provided on the front of the monitoring cabin, and an auxiliary mechanism is provided on the side of the monitoring cabin.
[0011] Furthermore, the cabin material of the monitoring cabin is composed of an iron sheet layer, a rock plate layer, and an iron sheet layer from the inside to the outside.
[0012] Furthermore, the monitoring cabin is provided with an internal power supply system, a control system, a monitoring system and a network system, and the control system is electrically connected to the internal power supply system, the monitoring system, the network system and the driving mechanism for regulation.
[0013] Compared with the prior art, the present invention has the following beneficial effects:
[0014] The utility model improves the setting structure of the monitoring room and supports the monitoring room through a rotating pillar to reduce its resistance during rotation. At the same time, on the basis of the rotating pillar, the transmission ratio is improved through the combination relationship of the driving gear, the transmission gear and the inner ring gear, thereby converting the high speed of the driving mechanism into high torque. The high torque can reduce the speed while driving the monitoring room to rotate, so as to facilitate the fine adjustment of the monitoring room. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] To more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for the embodiments or the description of the prior art. Obviously, the drawings described below are merely illustrative, and those skilled in the art can, without inventive effort, derive other implementation drawings based on the provided drawings.
[0016] Figure 1 This is a schematic diagram of the overall structure of the rotating monitoring room in the embodiment of the present utility model;
[0017] Figure 2 This is a schematic cross-sectional view of a rotating support in an embodiment of the present utility model;
[0018] Figure 3 This is a flow chart of the internal control of the monitoring cabin in an embodiment of the present utility model.
[0019] The numbers in the figure represent the following:
[0020] 1. Base; 2. Rotating support; 3. Monitoring cabin; 4. Monitoring cabin door; 5. Wave-transmitting window; 6. Air conditioner outdoor unit;
[0021] 20. Drive gear; 21. Transmission gear; 22. Internal gear ring;
[0022] 30. Power supply system; 31. Control system; 32. Drive motor; 33. Monitoring system; 34. Network system. DETAILED DESCRIPTION
[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0024] The utility model specifically provides a rotating monitoring room, such as Figure 1 As shown, it includes a base 1 and a rotating support 2, and a monitoring cabin 3 is installed on the base 1 through the rotating support 2. The front of the monitoring cabin 3 is provided with a wave-transmitting window 5 for radar monitoring, and the side of the monitoring cabin 3 is provided with an auxiliary mechanism, which includes but is not limited to a monitoring cabin door 4 for entering and exiting the monitoring cabin 3 and an air-conditioning outdoor unit 6. The indoor unit is arranged inside the monitoring cabin 3 and is used to regulate the temperature inside the monitoring cabin 3 to ensure stable operation of the equipment.
[0025] The monitoring cabin 3 is set to a rectangle, with a length, width and height of 4.3m×3m×2.8m. The wave-transmitting window is 2.7m×0.5m long and high, and is designed to be 1m above the cabin. The length and height of the door are 1.2m×2.1m.
[0026] In the monitoring cabin 3, in addition to the radar equipment used for monitoring, such as Figure 3 As shown, it also includes an internal power supply system 30, a control system 31, a monitoring system 33 and a network system 34. The control system 31 is electrically connected to the internal power supply system 30, the monitoring system 33 and the network system 34 for regulation. Among them, the monitoring system 33 is used to monitor environmental parameters in real time, and the obtained data is processed and transmitted through the control system 31 and the network system 34.
[0027] The device has the advantages of being easy to use, flexible to move, and adjustable in direction, and is suitable for many monitoring scenarios.
[0028] In addition, for the monitoring cabin 3 itself, in order to have a certain strength and thermal insulation and earthquake resistance effects, the cabin material of the monitoring cabin 3 is composed of an iron layer, a rock plate layer, and an iron layer from the inside to the outside.
[0029] Because the monitoring cabin has structural layers and numerous loads, it has a heavy weight. Conventional methods of driving rotation either lack sufficient power or require a complex deceleration mechanism to reduce speed, which is inadequate for field operations. To address this issue, the present invention uses a rotating support column 2 for support and a corresponding drive to drive rotation, enabling fine-grained adjustment of the monitoring cabin.
[0030] In the present invention, the base 1 is located between the concrete foundation and the rotating pillar 2, and is used to provide stability for the entire building. The upper part of the base 1 is a rotating pillar 2 structure for supporting the entire monitoring cabin. The rotating pillar 2 includes a column mounted on the base, and the column is connected to the monitoring cabin 3 through a bearing to support the monitoring cabin 3, that is, the monitoring cabin 3 is supported by the column, but can rotate around the column under the action of external force.
[0031] like Figure 2 As shown, a driving gear 20 is sleeved on the outer surface of the column, and the driving gear 20 is driven by a driving mechanism 32 installed in the base 1 or the column. An inner gear ring 22 concentric with the column is fixedly installed at the bottom of the monitoring cabin 3, and the driving gear 20 and the inner gear ring 22 are connected by a transmission gear 21 to transmit power to drive the monitoring cabin 3 to rotate to adjust the orientation of the monitoring cabin 3.
[0032] The transmission ratios of the drive gear 20 and the transmission gear 21, as well as the transmission gear 21 and the inner ring gear 22, are all greater than 1. This transmission combination can increase the output torque, enabling greater power output, while also reducing the speed of the drive mechanism 32. This eliminates the need for a complex reduction mechanism and facilitates precise fine-tuning to achieve adjustment of the angle of the monitoring cabin 3.
[0033] When using the above-mentioned device to rotate the monitoring room, the monitoring room is first moved to a suitable position, and the rotating pillar 2 is driven to rotate by the driving motor 32 and the transmission assembly to adjust the monitoring direction to calibrate the deviation between the main line of sight direction of the monitoring cabin 3 and the direction of the slope to achieve the best monitoring effect.
[0034] Moreover, due to the large transmission ratio, this high-speed input and low-speed output method, on the one hand, increases the torque, so that the drive motor 32 can easily drive the heavier monitoring cabin 3 to rotate, and on the other hand, reduces the output speed, which can achieve fine-tuning of the angle of the monitoring cabin 3, making the adjustment more accurate and efficient.
[0035] During the adjustment process, because the deviation between the main line of sight direction of the monitoring cabin 3 and the direction of the slope is itself a small deviation, the use of high-speed input and low-speed output can reduce the requirements for the input accuracy of the drive motor 32, and can also reduce the lower limit of the speed of the monitoring cabin 3 in practice, thereby improving the fine-tuning accuracy.
[0036] Furthermore, during blasting operations, the swivel support can be used to adjust the monitoring room's orientation to prevent flying rocks from damaging the radar membrane. By timely adjusting the room's orientation, the monitoring equipment can be effectively protected, extending its service life while ensuring continuous monitoring operations.
[0037] Furthermore, the driving motor 32 is configured as a servo motor to improve the fine-tuning accuracy of the monitoring cabin 3 .
[0038] Furthermore, the internal power supply system 30 is specifically an uninterruptible UPS power supply, which continuously provides power support for the monitoring room. The control system 31 is used to coordinate and control the drive motor 32, the monitoring system 33 and the network system 34. Through the intelligent control of the control system 31, the monitoring cabin can achieve precise movement and rotation, ensuring that the monitoring equipment can accurately obtain data.
[0039] It should be noted that the drive motor 32, the monitoring system 33, and the network system 34 can operate independently or simultaneously under the control of the control system 31. In the present invention, the electrical control relationship among the control system 31, the drive motor 32, the monitoring system 33, and the network system 34 is not specifically limited.
[0040] The above embodiments are merely exemplary embodiments of the present application and are not intended to limit the scope of the present application. The scope of protection of the present application is defined by the claims. Those skilled in the art may make various modifications or equivalent substitutions to the present application within the essence and scope of protection of the present application, and such modifications or equivalent substitutions shall also be deemed to fall within the scope of protection of the present application.
Claims
1. A rotating monitoring room, characterized in that: It comprises a base (1) and a rotating support (2), wherein a monitoring cabin (3) is mounted on the base (1) via the rotating support (2); The rotating pillar (2) includes a column mounted on the base, the column and the monitoring cabin (3) are connected via a bearing to support the monitoring cabin (3), and a driving gear (20) is sleeved on the outer surface of the column, the driving gear (20) is driven by a driving mechanism (32) mounted on the base (1) or the column, an inner gear ring (22) concentric with the column is fixedly mounted on the bottom of the monitoring cabin (3), and the driving gear (20) and the inner gear ring (22) are connected via a transmission gear (21) to transmit power to drive the monitoring cabin (3) to rotate and adjust the orientation of the monitoring cabin (3).
2. A rotating monitoring room according to claim 1, characterized in that: The transmission ratios of the driving gear (20) and the transmission gear (21), and the transmission gear (21) and the inner gear ring (22) are all greater than 1.
3. The rotating monitoring room according to claim 1, characterized in that: A wave-transmitting window (5) for radar monitoring is provided on the front of the monitoring cabin (3), and an auxiliary mechanism is provided on the side of the monitoring cabin (3).
4. The rotating monitoring room according to claim 1, characterized in that: The cabin material of the monitoring cabin (3) is composed of an iron sheet layer, a rock plate layer, and an iron sheet layer from the inside to the outside.
5. The rotating monitoring room according to claim 1, characterized in that: The monitoring cabin (3) is provided with an internal power supply system (30), a control system (31), a monitoring system (33) and a network system (34); the control system (31) is electrically connected to the internal power supply system (30), the monitoring system (33), the network system (34) and the driving mechanism (32) for regulation.