Cloud platform monitoring system
By introducing humidity control equipment into the cloud platform monitoring system and utilizing servo motors and multi-layer filter media technology, the problem of humidity control in the cloud platform has been solved, enabling precise control of the working environment humidity and ensuring the stable operation of the cloud platform.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- 曾榆淞
- Filing Date
- 2023-09-27
- Publication Date
- 2026-04-17
AI Technical Summary
The existing cloud platform monitoring system cannot regulate the humidity of the working environment, resulting in excessive static electricity that affects the normal operation of the cloud platform.
A cloud platform monitoring system was designed, which includes a humidity control device. The system controls the evaporation rate of water by using a baffle driven by a servo motor, and combines multi-layer filter media and spray nozzles to achieve humidity control of the working environment of the cloud platform.
Effectively control the humidity of the cloud platform's working environment, prevent excessive static electricity, and ensure the stable operation of the cloud platform.
Smart Images

Figure CN121879455A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of cloud platforms, and more specifically to a cloud platform monitoring system. Background Technology
[0002] A cloud platform monitoring system is a software system used to monitor and manage cloud computing platforms. It can monitor the status of various resources and services on the cloud platform in real time, including servers, networks, storage, virtual machines, and containers, to ensure their normal operation and high availability. The system can provide real-time performance metrics, error reports, and alerts to help administrators promptly identify and resolve problems, ensuring the stability and reliability of the cloud platform. Simultaneously, the cloud platform monitoring system can also provide data analysis and reporting functions to help administrators understand the usage and trends of the cloud platform for optimization and decision-making. Cloud platforms require appropriate operating humidity; if the working environment is too dry, it will generate a lot of static electricity, affecting the operation of the cloud platform. Existing cloud platform monitoring systems do not have humidity control functionality. Summary of the Invention
[0003] To overcome the shortcomings of the existing technology, the present invention provides a cloud platform monitoring system, which has the advantage of being equipped with a humidity adjustment device, making it convenient to adjust the working humidity of the cloud platform after monitoring.
[0004] A cloud platform monitoring system includes a server, network equipment, sensor equipment, data storage equipment, display equipment, and humidity control equipment.
[0005] The cloud platform monitoring system needs to run on a server, and the server needs to be reliable to support large-scale monitoring data processing and analysis.
[0006] The network devices provide network connectivity and transmit monitoring data; the network devices include switches and routers.
[0007] The sensor devices are temperature and humidity sensors, used to detect the operating temperature and humidity of the cloud platform.
[0008] The storage device is a hard disk array, providing high-speed data read and write capabilities and large-capacity storage space.
[0009] The cloud platform monitoring system uses display devices to show monitoring data and reports for administrators and maintenance personnel to view and analyze; the display devices are computer monitors and projectors. Attached Figure Description
[0010] The present invention will now be described in further detail with reference to the accompanying drawings and specific implementation methods.
[0011] Figure 1 This is a schematic diagram of a cloud platform monitoring system;
[0012] Figure 2 Schematic diagram of humidity control equipment Figure 1 ;
[0013] Figure 3 Schematic diagram of humidity control equipment Figure 2 ;
[0014] Figure 4 Schematic diagram of humidity control equipment Figure 3 ;
[0015] Figure 5 Schematic diagram of humidity control equipment Figure 4 ;
[0016] Figure 6 Schematic diagram of the inclined plate and uprights Figure 1 ;
[0017] Figure 7 Schematic diagram of the inclined plate and uprights Figure 2 ;
[0018] Figure 8 Schematic diagram of the pointed plate structure Figure 1 ;
[0019] Figure 9 Schematic diagram of the pointed plate structure Figure 2 ;
[0020] Figure 10 Schematic diagram of the partition structure Figure 1 ;
[0021] Figure 11 Schematic diagram of the partition structure Figure 2 ;
[0022] Figure 12 This is a schematic diagram of the bottom box.
[0023] In the figure: inclined plate 101; telescopic rod 102; convex shaft 103; side plate 104; perforated plate 105; retaining edge 106; cover plate 107;
[0024] 201 upright pole; 202 connecting rod; 203 nozzle;
[0025] Pointed plate 301; Biochemical cotton 302; Compression spring 303; Horizontal hole 304; L-shaped rod 305; Side plate 2 306;
[0026] Partition 401; Extension plate 402; Inclined part 403; Fastening screw 404; Drain hole 405;
[0027] Base box 501; servo motor 502; through hole 503; baffle 504; water pump 505. Detailed Implementation
[0028] A cloud platform monitoring system includes a server, network equipment, sensor equipment, data storage equipment, display equipment, and humidity control equipment.
[0029] The cloud platform monitoring system needs to run on a server, and the server needs to be reliable to support large-scale monitoring data processing and analysis.
[0030] The network devices provide network connectivity and transmit monitoring data; the network devices include switches and routers.
[0031] The sensor devices are temperature and humidity sensors, used to detect the operating temperature and humidity of the cloud platform.
[0032] The storage device is a hard disk array, providing high-speed data read and write capabilities and large-capacity storage space.
[0033] The cloud platform monitoring system uses display devices to show monitoring data and reports for administrators and maintenance personnel to view and analyze; the display devices are computer monitors and projectors.
[0034] like Figure 12 As shown, this example demonstrates how to control the humidity of the cloud platform's working environment.
[0035] The humidity control device includes a base box 501, with two baffles 504 hinged to the upper middle part of the base box 501. Each baffle 504 has multiple through holes 503. Both baffles 504 are driven to rotate by a servo motor. Water can be placed inside the base box 501. When adjusting humidity, if the two baffles 504 are driven to rotate vertically, the upper side of the base box 501 is not blocked, facilitating rapid evaporation of the water inside and its release into the cloud platform's working environment. If slower evaporation is desired, the two baffles 504 are driven to rotate horizontally, blocking the upper side of the base box 501 and allowing for slower release of water vapor, thus controlling the humidity of the cloud platform's working environment. The multiple through holes 503 on the baffles 504 prevent excessive resistance when rotating in water.
[0036] like Figure 6-7 As shown, this example can achieve the effect of avoiding excessive water and dust inside the bottom box 501.
[0037] A vertical rod 201 is screwed to the left side of the base box 501. A ramp 101 is connected to the middle of the vertical rod 201 via a connecting rod 202. A perforated plate 105 is welded to the lower end of the ramp 101, and another ramp 101 is welded to the other side of the perforated plate 105. The two ramps 101 are symmetrically arranged. Filter media such as volcanic rock can be placed between the two ramps 101, and water from the base box 501 can be poured in from above the ramps 101 to filter the water and prevent excessive dust accumulation in the water.
[0038] like Figure 6-11 As shown, this example demonstrates how multiple layers of filter media can be used to filter water within the bottom box 501.
[0039] Since the humidity control device also includes a partition 401, extension plates 402 are slidably connected to both the left and right sides of the partition 401. An inclined part 403 is welded to the outer side of each extension plate 402. Multiple fastening screws 404 are threaded onto the partition 401. The fastening screws 404 press against the corresponding extension plate 402. The two inclined parts 403 are respectively attached to the inner side of the two inclined plates 101. Multiple drainage holes 405 are provided on both the partition 401 and the extension plate 402. A retaining ridge 106 is provided on both the front and rear sides of each inclined plate 101. A cover plate 107 is connected between the front and rear sides of the two inclined plates 101 by screws. The extension plates 402 on both sides of the partition 401 can be slidable, thereby adjusting the total length of the partition 401 and the two extension plates 402. The spacing between the two inclined plates 101 at different heights is different, thereby setting the partition 401 at different heights between the two inclined plates 101. Multiple partitions 401 are set between the two inclined plates 101, thereby dividing the space between the two inclined plates 101 into multiple layers. Different types of filter media can be placed in each layer, thereby filtering the water in the bottom box 501 through the multiple layers of filter media, and fully filtering the water in the bottom box 501. The two cover plates 107 can block the front and rear sides of the multiple layers of filter media. Each inclined plate 101 is provided with baffles 106 on the front and rear sides, thereby blocking the inclined part 403 on the extension plate 402 and preventing the inclined part 403 from moving back and forth at will.
[0040] like Figure 6-12 As shown, this example demonstrates how water can be effectively filtered by multiple layers of filter media.
[0041] Because the upper part of the upright 201 is connected to the nozzle 203 by screws, and the nozzle 203 is located above the two inclined plates 101, a water pump 505 is installed in the base box 501. The water pump 505 is connected to the nozzle 203 through a hose. The water pump 505 can introduce water from the base box 501 into the nozzle 203, and then the water is sprayed out from the nozzle 203 over a large area, so that the water can be fully filtered by the multi-layer filter media. The large-area spray of water from the nozzle 203 also facilitates the rapid dissipation of water vapor.
[0042] Side plates 104 are welded to both ends of the inclined plate 101. The pointed plate 301 is higher in the middle and lower on both sides. The front and rear sides of the pointed plate 301 are respectively hinged to the front and rear ends of the perforated plate 105. Side plates 206 are welded to both ends of the pointed plate 301. A biochemical cotton 302 is provided between the corresponding side plates 104 and 206. A compression spring 303 is provided between the corresponding side plates 104 and 206. An L-shaped rod 305 is welded to the lower side of the pointed plate 301. A horizontal hole 304 is provided on the L-shaped rod 305. A telescopic rod 102 is connected to one of the inclined plates 101 by screws. The movable end of the telescopic rod 102 is connected to a convex shaft 103 by screws. The convex shaft 103 is inserted into the horizontal hole 304.
[0043] like Figure 6-12 As shown, this example can achieve the effect of preventing water from accumulating inside the bio-cotton 302 and making it difficult for water to escape.
[0044] Water filtered by multiple layers of filter media flows to the pointed plate 301 and is split into left and right streams by the pointed plate 301. The water is filtered again by two biochemical cotton 302 on both sides of the pointed plate 301 and then flows back to the bottom box 501. When the telescopic rod 102 extends or retracts, it can drive the convex shaft 103 to rise and fall. When the convex shaft 103 rises and falls, it moves the L-shaped rod 305 up and down, thereby driving the pointed plate 301 to swing left and right on the perforated plate 105, thereby alternately squeezing the biochemical cotton 302 on both sides to prevent water from accumulating in the biochemical cotton 302 and making it difficult to come out. The two compression springs 303 can easily drive the pointed plate 301 back to its original position by elastic force.
Claims
1. A cloud platform monitoring system, characterized by: This includes servers, network equipment, sensor equipment, data storage equipment, display equipment, and humidity control equipment.
2. The cloud platform monitoring system according to claim 1, characterized in that: The cloud platform monitoring system needs to run on a server, and the server needs to be reliable to support large-scale monitoring data processing and analysis.
3. The cloud platform monitoring system according to claim 1, characterized in that: The network devices provide network connectivity and transmit monitoring data; the network devices include switches and routers.
4. The cloud platform monitoring system according to claim 1, characterized in that: The sensor devices are temperature and humidity sensors, used to detect the operating temperature and humidity of the cloud platform.
5. A cloud platform monitoring system according to claim 1, characterized in that: The storage device is a hard disk array, providing high-speed data read and write capabilities and large-capacity storage space.
6. The cloud platform monitoring system according to claim 1, characterized in that: The cloud platform monitoring system uses display devices to show monitoring data and reports for administrators and maintenance personnel to view and analyze; the display devices are computer monitors and projectors.
7. A cloud platform monitoring system according to claim 1, characterized in that: The humidity control device includes a base box (501), and two baffles (504) are hinged to the upper middle part of the base box (501). Both baffles (504) are provided with multiple through holes (503), and both baffles (504) are driven to rotate by a servo motor.
8. A cloud platform monitoring system according to claim 7, characterized in that: A vertical rod (201) is fixed on the left side of the bottom box (501). An inclined plate (101) is connected to the middle of the vertical rod (201) via a connecting rod (202). A perforated plate (105) is fixed to the lower end of the inclined plate (101). Another inclined plate (101) is fixed to the other side of the perforated plate (105). The two inclined plates (101) are arranged symmetrically on the left and right.
9. A cloud platform monitoring system according to claim 8, characterized in that: The humidity control device also includes a partition (401), with extension plates (402) slidably connected to both the left and right sides of the partition (401). An inclined part (403) is fixed to the outer side of each extension plate (402). Multiple fastening screws (404) are threaded onto the partition (401), and the fastening screws (404) press against the corresponding extension plate (402). The two inclined parts (403) are respectively attached to the inner side of the two inclined plates (101). Multiple drainage holes (405) are provided on both the partition (401) and the extension plate (402). A retaining edge (106) is provided on both the front and rear sides of each inclined plate (101). A cover plate (107) is connected between the front and rear sides of the two inclined plates (101) by screws.
10. A cloud platform monitoring system according to claim 9, characterized in that: A nozzle (203) is fixed on the upper part of the pole (201). The nozzle (203) is located above the two inclined plates (101). A water pump (505) is installed in the bottom box (501). The water pump (505) is connected to the nozzle (203) through a hose.