Multi-modal sensor array data acquisition device
By designing a scalable multimodal sensor array data acquisition device, and using an electric telescopic rod and protective cover to protect the sensor, the problem of sensor damage in harsh environments is solved, and the flexible adjustment of the sensor and the accuracy and reliability of data acquisition are achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-11
- Publication Date
- 2026-04-14
Smart Images

Figure CN224121971U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of data acquisition device technology, and in particular to a multimodal sensor array data acquisition device. Background Technology
[0002] Accurate monitoring and collection of atmospheric data plays a crucial role in many fields such as environmental monitoring, weather forecasting, and industrial production. Traditional atmospheric data collection often relies on single-function sensors, such as those that can only monitor single indicators like temperature, humidity, or gas concentration. This means that in practical applications, multiple independent sensors need to be deployed to obtain various atmospheric data, which not only increases equipment costs and installation space but also reduces the synchronicity and accuracy of data collection.
[0003] In recent years, although some integrated multimodal sensor array data acquisition devices have emerged, their protective performance is significantly insufficient. These devices are highly susceptible to sensor damage when exposed to severe weather (such as heavy rain, sandstorms, and high temperatures), mechanical impacts, or electromagnetic interference, leading to data acquisition failure or decreased accuracy, severely impacting the normal operation and lifespan of the equipment. Furthermore, existing devices typically keep sensors in a fixed, exposed state during use, unable to be flexibly adjusted according to actual usage scenarios. This hinders both the improvement of monitoring data accuracy and the reduction of sensor wear caused by long-term exposure. Therefore, developing a multimodal sensor array data acquisition device capable of simultaneously monitoring and acquiring multiple atmospheric data sources, possessing good protective capabilities, and allowing for flexible sensor deployment during use to extend equipment lifespan has become an urgent technical challenge. Utility Model Content
[0004] The purpose of this invention is to address the shortcomings of existing technologies by proposing a multimodal sensor array data acquisition device.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A multimodal sensor array data acquisition device includes a mounting plate, on the upper side of which a structural cylinder is fixedly mounted. A multimodal sensor array data acquisition component and a data processing component are disposed inside the structural cylinder, and a protective component is disposed on the outer wall of the structural cylinder. The multimodal sensor array data acquisition component includes an electric telescopic rod, which is fixedly mounted on the bottom inner side of the structural cylinder. Several shaft seats are equidistantly mounted on the side wall of the output end of the electric telescopic rod, and a rotating rod is rotatably mounted on the side of each shaft seat. Several rotating grooves are equidistantly formed on the side wall of the structural cylinder, and a rotating plate is rotatably mounted inside each groove. The inner end of the rotating plate is rotatably connected to the rotating rod, and a multimodal sensor is fixedly mounted on the upper side of the outer end of the rotating plate.
[0007] Furthermore, the protective assembly includes a protective cover, and several sets of the protective covers are fixedly installed at equal intervals along the circumference of the outer wall of the structural cylinder. The protective cover is located directly above the rotating plate, and a rubber sleeve is fixedly adhered to the inner side wall of the protective cover.
[0008] Furthermore, a pressure sensor is fixedly installed on the inner wall of the protective cover, and a rubber abutment plate is fixedly installed on the outer end of the pressure sensor.
[0009] Furthermore, the multimodal sensor includes a temperature sensor, a humidity sensor, a barometric pressure sensor, a gas sensor, a light intensity sensor, and a wind speed and direction sensor.
[0010] Furthermore, the data processing component includes a structural circular groove, which is screwed onto the inner wall of the structural cylinder. A processor, a storage device, a backup power supply, and a telescopic rod are fixedly installed on the upper side of the structural circular groove. A top cover is fixedly installed on the upper end of the telescopic rod, and a spring is sleeved on the outer side of the telescopic rod. A metal contact head is fixedly installed on the upper side of the top cover.
[0011] Furthermore, a top plate assembly is provided on the upper side of the structural cylinder. The top plate assembly includes a sealing top plate, which is screwed onto the upper end of the structural cylinder. A waterproof cover is fixedly installed on the upper side of the sealing top plate, and a power information interface is fixedly installed on the inner side of the waterproof cover.
[0012] Furthermore, a metal recess is provided at the bottom of the sealing top plate, the metal recess being electrically connected to the power information interface, and the inner diameter of the metal recess being slightly larger than the outer diameter of the metal contact head.
[0013] Furthermore, a sealing corrugated plate is fixedly bonded between the inner wall of the rotating groove and the rotating plate.
[0014] Compared with related technologies, the multimodal sensor array data acquisition device proposed in this utility model has the following beneficial effects:
[0015] This utility model discloses a multimodal sensor array data acquisition device. Through the inclusion of a multimodal sensor array data acquisition component and a protective component, the multimodal sensor array data acquisition component contains various monitoring sensors capable of monitoring various atmospheric data, offering comprehensive functionality. Furthermore, when atmospheric data monitoring is required, an electric telescopic rod extends, and a rotating plate is pulled downwards and unfolded using a rotating rod. When monitoring is not required, the electric telescopic rod retracts, flipping the plate upwards, allowing the sensors mounted on the plate to retract into the protective cover. This protective cover protects the sensors and extends their lifespan. Additionally, a combination of a pressure sensor and a rubber abutment plate is installed inside the protective cover. When the sensor mounted on the plate contacts the rubber abutment plate, the pressure sensor detects a pressure signal. At this point, the processor controls the electric telescopic rod to stop retracting, preventing pressure damage to the sensors on the plate from the inside of the protective cover, further enhancing the protection of the equipment and strengthening its practicality. Attached Figure Description
[0016] Figure 1 This is a three-dimensional structural diagram of a multimodal sensor array data acquisition device proposed in this utility model;
[0017] Figure 2 This is a three-dimensional cross-sectional structural diagram of a multimodal sensor array data acquisition device proposed in this utility model;
[0018] Figure 3 This is a three-dimensional split-structure diagram of a multimodal sensor array data acquisition device proposed in this utility model;
[0019] Figure 4 This is a three-dimensional structural diagram of the protective components;
[0020] Figure 5 A three-dimensional structural diagram of a multimodal sensor array data acquisition component;
[0021] Figure 6 A three-dimensional structural diagram of the data processing component;
[0022] Figure 7 Schematic diagram of the three-dimensional structure of the roof panel assembly Figure 1 ;
[0023] Figure 8 Schematic diagram of the three-dimensional structure of the roof panel assembly Figure 2 .
[0024] In the diagram: 1. Mounting plate; 2. Structural cylinder; 3. Rotary groove; 4. Sealing corrugated plate; 5. Protective assembly; 51. Protective cover; 52. Rubber sleeve; 53. Pressure sensor; 54. Rubber abutment plate; 6. Multimodal sensor array data acquisition assembly; 61. Electric telescopic rod; 62. Shaft seat; 63. Rotating rod; 64. Rotating plate; 65. Multimodal sensor; 7. Data processing assembly; 71. Structural circular groove; 72. Processor; 73. Storage; 74. Backup power supply; 75. Telescopic rod; 76. Spring; 77. Top cover; 78. Metal contact head; 8. Top plate assembly; 81. Sealed top plate; 82. Waterproof cover; 83. Power information interface; 84. Metal recess. Detailed Implementation
[0025] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0026] Reference Figures 1-8 A multimodal sensor array data acquisition device includes a mounting plate 1, a structural cylinder 2 fixedly mounted on the upper side of the mounting plate 1, a multimodal sensor array data acquisition component 6 and a data processing component 7 disposed inside the structural cylinder 2, and a protective component 5 disposed on the outer wall of the structural cylinder 2; the multimodal sensor array data acquisition component 6 includes an electric telescopic rod 61, the electric telescopic rod 61 is fixedly mounted on the bottom inner side of the structural cylinder 2, a plurality of bearing seats 62 are fixedly mounted circumferentially on the side wall of the output end of the electric telescopic rod 61, a rotating rod 63 is rotatably mounted on the side of the bearing seat 62, a plurality of rotating grooves 3 are circumferentially opened on the side wall of the structural cylinder 2, a rotating plate 64 is rotatably mounted inside the rotating grooves 3, the inner end of the rotating plate 64 is rotatably connected to the rotating rod 63, and a multimodal sensor 65 is fixedly mounted on the upper side of the outer end of the rotating plate 64.
[0027] In this method, the protective component 5 includes a protective cover 51. Several sets of protective covers 51 are fixedly installed at equal intervals along the outer circumference of the outer wall of the structural cylinder 2. The protective cover 51 is located directly above the rotating plate 64. A rubber sleeve 52 is fixedly bonded to the inner side wall of the protective cover 51. A pressure sensor 53 is fixedly installed on the inner wall of the protective cover 51. A rubber abutment plate 54 is fixedly installed on the outer end of the pressure sensor 53.
[0028] With the above configuration, the combination of pressure sensor 53 and rubber abutment plate 54 installed inside the protective cover 51 will cause pressure signal to be detected on the pressure sensor 53 when the sensor installed on the rotating plate 64 comes into contact with the rubber abutment plate 54. At this time, the processor 72 controls the electric telescopic rod 61 to stop retracting, so as to avoid the inside of the protective cover 51 from causing pressure damage to the sensor on the rotating plate 64.
[0029] In this approach, the multimodal sensor 65 includes a temperature sensor, a humidity sensor, a barometric pressure sensor, a gas sensor, a light intensity sensor, and a wind speed and direction sensor.
[0030] With the above setup, the temperature sensor, humidity sensor, air pressure sensor, gas sensor, light intensity sensor, and wind speed and direction sensor are all existing atmospheric monitoring sensors and are common devices, so they will not be described in detail here.
[0031] In this method, the data processing component 7 includes a structural circular groove 71, which is screwed onto the inner wall of the structural cylinder 2. A processor 72, a storage device 73, a backup power supply 74, and a telescopic rod 75 are fixedly installed on the upper side of the structural circular groove 71. A top cover 77 is fixedly installed on the upper end of the telescopic rod 75. A spring 76 is sleeved on the outer side of the telescopic rod 75. A metal contact head 78 is fixedly installed on the upper side of the top cover 77.
[0032] With the above-mentioned setup, the backup power supply 74 provides power for temporary needs, the processor 72 controls the various electrical components of the device to work together, and the processor 72 processes and stores the numerical control data monitored by the multimodal sensor 65 in the storage 73. At the same time, under the action of the spring 76, the metal contact head 78 at the upper end of the telescopic rod 75 can be inserted into the metal recess 84 on the lower side of the sealing top plate 81, so as to connect the circuit of the entire device to the power information interface 83 on the upper side of the sealing top plate 81.
[0033] In this method, a top plate assembly 8 is provided on the upper side of the structural cylinder 2. The top plate assembly 8 includes a sealing top plate 81, which is screwed onto the upper end of the structural cylinder 2. A waterproof cover 82 is fixedly installed on the upper side of the sealing top plate 81, and a power information interface 83 is fixedly installed inside the waterproof cover 82. A metal recess 84 is provided at the bottom of the sealing top plate 81, and the metal recess 84 is electrically connected to the power information interface 83. The inner diameter of the metal recess 84 is slightly larger than the outer diameter of the metal contact head 78.
[0034] By setting it up in the above manner, this device is connected to the power information interface 83 via the connection cable of the monitoring station, and the data of this device can be transmitted to the monitoring station in a timely manner.
[0035] In this method, a sealing corrugated plate 4 is fixedly bonded between the inner wall of the rotating groove 3 and the rotating plate 64.
[0036] By setting up the corrugated sealing plate 4 as described above, the interior of the rotating groove 3 is kept sealed, preventing dust from entering the structural cylinder 2.
[0037] The working principle of the multimodal sensor array data acquisition device provided by this utility model is as follows:
[0038] I. Data Acquisition Startup
[0039] When atmospheric data needs to be monitored and collected, the processor 72 in the data processing component 7 issues a command to control the extension of the electric telescopic rod 61. The output end of the electric telescopic rod 61 moves upward, driving the bearing seat 62 to rise. Since a rotating rod 63 is rotatably mounted on the side of the bearing seat 62, and the rotating rod 63 is rotatably connected to the inner end of the rotating plate 64, and the rotating plate 64 rotates within the rotating groove 3, the rotating rod 63 pulls the rotating plate 64 downward and flips it open during the extension of the electric telescopic rod 61. As the rotating plate 64 unfolds, the multimodal sensor 65, which is fixedly mounted on the upper side of the outer end of the rotating plate 64, is gradually exposed to the atmospheric environment and begins to monitor and collect various data such as temperature, humidity, air pressure, gas concentration, light intensity, wind speed, and wind direction.
[0040] II. Data Processing and Transmission
[0041] The data collected by the multimodal sensor 65 is transmitted to the processor 72 in the data processing component 7. The processor 72 processes the collected data, performing operations such as filtering, calibration, and analysis, and stores the processed data in the storage device 73. Simultaneously, upon completion of the device installation, by connecting the monitoring station's connection cable to the power information interface 83 inside the waterproof cover 82, the telescopic rod 75 in the data processing component 7, under the restoring force of the spring 76, causes the metal contact head 78 at the upper end of the telescopic rod 75 to insert into the metal recess 84 on the lower side of the sealed top plate 81. This connects the entire device's circuitry to the power information interface 83, thereby transmitting the processed data to the monitoring station in a timely manner, completing the remote transmission and storage of data.
[0042] III. Data Acquisition Completion and Equipment Protection
[0043] When data acquisition is completed, or in case of severe weather or equipment downtime, the processor 72 controls the electric telescopic rod 61 to retract. The output end of the electric telescopic rod 61 moves downward, causing the shaft seat 62 to descend. The rotating rod 63 pushes the rotating plate 64 to flip upward, causing the multimodal sensor 65 mounted on the rotating plate 64 to gradually retract into the inner side of the protective cover 51. When the sensor mounted on the rotating plate 64 contacts the rubber abutment plate 54 on the inner wall of the protective cover 51, the pressure sensor 53 detects a pressure signal and transmits the signal to the processor 72. Upon receiving the signal, the processor 72 controls the electric telescopic rod 61 to stop retracting, preventing the inner side of the protective cover 51 from causing pressure damage to the sensor on the rotating plate 64. At this time, the rubber sleeve 52 tightly wraps around the sensor, providing good protection and improving the sensor's service life. Meanwhile, the sealing corrugated plate 4 maintains the sealing state of the rotating groove 3, protecting the internal components of the structural cylinder 2.
[0044] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. A multimodal sensor array data acquisition device, characterized in that, It includes a mounting plate (1), on which a structural cylinder (2) is fixedly mounted. A multimodal sensor array data acquisition component (6) and a data processing component (7) are provided inside the structural cylinder (2), and a protective component (5) is provided on the outer wall of the structural cylinder (2). The multimodal sensor array data acquisition component (6) includes an electric telescopic rod (61), which is fixedly installed at the bottom of the inner side of the structural cylinder (2). Several bearing seats (62) are fixedly installed at equal intervals around the side wall of the output end of the electric telescopic rod (61). A rotating rod (63) is rotatably installed on the side of the bearing seat (62). Several rotating grooves (3) are rotatably opened around the side wall of the structural cylinder (2). A rotating plate (64) is rotatably installed inside the rotating groove (3). The inner end of the rotating plate (64) is rotatably connected to the rotating rod (63). A multimodal sensor (65) is fixedly installed on the upper side of the outer end of the rotating plate (64).
2. The multimodal sensor array data acquisition device according to claim 1, characterized in that, The protective component (5) includes a protective cover (51), and several sets of the protective covers (51) are fixedly installed at equal intervals along the outer circumference of the structural cylinder (2). The protective cover (51) is located directly above the rotating plate (64), and a rubber sleeve (52) is fixedly adhered to the inner side wall of the protective cover (51).
3. The multimodal sensor array data acquisition device according to claim 2, characterized in that, A pressure sensor (53) is fixedly installed on the inner wall of the protective cover (51), and a rubber abutment plate (54) is fixedly installed on the outer end of the pressure sensor (53).
4. The multimodal sensor array data acquisition device according to claim 1, characterized in that, The multimodal sensor (65) includes a temperature sensor, a humidity sensor, a pressure sensor, a gas sensor, a light intensity sensor, and a wind speed and direction sensor.
5. The multimodal sensor array data acquisition device according to claim 1, characterized in that, The data processing component (7) includes a structural circular groove (71), which is screwed onto the inner wall of the structural cylinder (2). A processor (72), a storage device (73), a backup power supply (74), and a telescopic rod (75) are fixedly installed on the upper side of the structural circular groove (71). A top cover (77) is fixedly installed on the upper end of the telescopic rod (75). A spring (76) is sleeved on the outer side of the telescopic rod (75). A metal contact head (78) is fixedly installed on the upper side of the top cover (77).
6. The multimodal sensor array data acquisition device according to claim 1, characterized in that, A top plate assembly (8) is provided on the upper side of the structural cylinder (2). The top plate assembly (8) includes a sealing top plate (81). The sealing top plate (81) is screwed onto the upper end of the structural cylinder (2). A waterproof cover (82) is fixedly installed on the upper side of the sealing top plate (81). A power information interface (83) is fixedly installed inside the waterproof cover (82).
7. The multimodal sensor array data acquisition device according to claim 6, characterized in that, The bottom of the sealing top plate (81) is provided with a metal recess (84), which is electrically connected to the power information interface (83). The inner diameter of the metal recess (84) is slightly larger than the outer diameter of the metal contact head (78).
8. The multimodal sensor array data acquisition device according to claim 1, characterized in that, A sealing corrugated plate (4) is fixedly bonded between the inner wall of the rotating groove (3) and the rotating plate (64).