Ground source heat pump monitoring data remote acquisition device

By introducing a displacement mounting frame and an automatic lighting system into the remote data acquisition device for monitoring ground-source heat pumps, the safety hazards and nighttime lighting problems caused by the depth of the internal space of the device were resolved, and convenient data monitoring and nighttime inspections were achieved.

CN223488510UActive Publication Date: 2025-10-28ANHUI GEOLOGY & MINERAL NEW ENERGY DEV CO LTD
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Patent Information

Application Number
CN202422352865.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-26
Publication Date
2025-10-28
Estimated Expiration
2034-09-26

AI Technical Summary

Technical Problem

The internal space of the ground source heat pump data remote collection device is relatively deep, making it difficult for tall workers to enter, posing a safety hazard. The lack of night lighting also brings inconvenience to the workers.

Method used

A device including a displacement mounting frame, a surface lighting tube and a lighting controller was designed. The automatic extension of the displacement mounting frame and lighting control were achieved through a guide block and a transmission gear system, preventing workers from entering deep inside the device and automatically providing lighting at night.

Benefits of technology

It enables data monitoring without the need for staff to enter the device, improving safety, and provides convenient lighting conditions at night, thereby improving work efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a ground source heat pump monitoring data remote acquisition device, and relates to the technical field of ground source heat pump monitoring data remote acquisition, the ground source heat pump monitoring data remote acquisition device comprises a device housing, the inner side of the device housing is movably connected with a displacement mounting rack, and two sides of the bottom surface of the displacement mounting rack are provided with displacement grooves on the inner wall of the device housing. According to the ground source heat pump monitoring data remote acquisition device, when two device sliding covers slide towards the outer side, the device sliding covers enable a displacement mounting frame to displace towards the outer side, so that a worker can conveniently monitor a data receiving mechanism, and the situation that the interior of a device shell is relatively deep, and the worker needs to stretch the body into the device to observe is prevented; and when the displacement mounting frame moves to the end of one end of the displacement groove, the bottom end of the displacement mounting frame is in contact with the lighting controller, so that the lighting controller turns on the lighting lamp tube, and a worker can conveniently check and monitor data of the device at night.
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Description

Technical Field

[0001] This utility model relates to the field of remote acquisition technology of ground source heat pump monitoring data, specifically a remote acquisition device for ground source heat pump monitoring data. Background Art

[0002] Geothermal wells refer to the methods and devices used to generate electricity from geothermal energy or hot spring water with a temperature greater than 30°C at a depth of about 3,500 meters. Geothermal energy is divided into three categories: high temperature, medium temperature, and low temperature. Geothermal energy exists in the form of steam above 150°C; medium temperature geothermal energy exists in the form of a mixture of water and steam between 90°C and 150°C; and low temperature geothermal energy exists in the form of warm water, warm hot water, or hot water between 25°C and 90°C.

[0003] For example, patent number CN202123175390.0 discloses a moisture-proof geothermal well monitoring data remote acquisition device, including an acquisition box. A support frame is bolted to the bottom of the acquisition box. Air inlet pipes are connected to both the left and right sides of the bottom of the acquisition box. An exhaust fan is installed inside the air inlet pipe. Exhaust boxes are bolted to both the left and right sides of the bottom of the inner wall of the acquisition box, and the top of the air inlet pipe is connected to the exhaust box. A heating wire is installed inside the exhaust box. An installation plate is bolted to the top of the inner wall of the acquisition box. Installation boxes are embedded in both the left and right sides of the installation plate, and a fan is installed inside the installation box. A temperature and humidity sensor is installed at the bottom of the installation plate. An exhaust pipe is connected to the top of the installation box. A drying box is bolted to both the left and right sides of the top of the inner wall of the acquisition box, and the top of the exhaust pipe is connected to the drying box. A desiccant is placed inside the drying box. Through holes are opened on both the left and right sides of the top of the acquisition box. A sealing structure is provided on the top of the acquisition box. This invention, through the setting of a temperature and humidity sensor, can monitor the humidity inside the collection box in real time, so as to carry out timely moisture-proof treatment. With the setting of heating wire, exhaust fan, fan and desiccant, it can automatically dehumidify the inside of the device, effectively improve the dehumidification effect inside the device, keep the inside of the device dry, extend the service life of the device, provide convenience for maintenance personnel, and solve the problem that most existing collection devices do not have moisture-proof function.

[0004] Most of the ground source heat pump data remote acquisition devices in this patent have deep internal spaces, requiring staff to physically enter the device to conduct data surveys and records. Tall staff members find it inconvenient to enter the device, and the device contains many electronic components, which could easily lead to accidental contact and pose a safety hazard. Furthermore, the data remote acquisition device lacks internal lighting, requiring staff to carry lighting tools for nighttime observations, which is quite inconvenient. Utility Model Content

[0005] To address the shortcomings of existing technologies, this utility model provides a remote data acquisition device for ground source heat pump monitoring. It solves the problems of the fact that most remote data acquisition devices for ground source heat pumps have deep internal spaces, requiring staff to physically enter the device to conduct data surveys and recordings. Tall staff members find it inconvenient to enter the device, and the device contains many electronic components, which can easily lead to accidental contact and pose certain safety hazards. In addition, the data acquisition device lacks an internal lighting mechanism, requiring staff to carry lighting tools for nighttime observations, which is inconvenient.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a remote data acquisition device for ground source heat pump monitoring, comprising a device housing, a displacement mounting frame movably connected to the inner side of the device housing, displacement grooves on both sides of the bottom surface of the displacement mounting frame located on the inner wall of the device housing, the bottom end of the displacement mounting frame extending to the inner side of the displacement grooves, a data receiving mechanism on the front end face of the displacement mounting frame, illumination lamps on both sides of the data receiving mechanism located on the inner wall of the displacement mounting frame, and a device sliding cover movably connected to both sides of the front of the displacement mounting frame located at the front end of the device housing.

[0007] Preferably, the inner wall of the sliding cover of the device is provided with guide block A and guide block B at the upper and lower ends respectively. One end of guide block A and guide block B is provided with a guide groove on the front end face of the outer shell of the device, and guide block A and guide block B are inserted into the inner side of the guide groove.

[0008] Preferably, a transmission gear is provided below the guide block A on the inner side of one of the guide grooves, and a rack is provided above the transmission gear at the bottom end of the guide block A, and the transmission gear and the rack mesh with each other.

[0009] Preferably, a transmission rod is provided at the bottom end of the transmission gear located inside the guide groove. The bottom end of the transmission rod extends through the outer shell of the device to the inner side of the displacement groove. A lead screw is provided below the transmission rod on the inner wall of the displacement groove. The lead screw extends through the bottom end of the displacement mounting frame to the other end of the inner wall of the displacement groove. The lead screw meshes with the displacement mounting frame.

[0010] Preferably, bevel gears are provided at both ends of the transmission rod, as well as on the surfaces of the transmission gear and the lead screw opposite to the transmission rod. The transmission rod is connected to the transmission gear and the lead screw respectively through the bevel gears.

[0011] Preferably, the rear end of the illumination lamp tube is provided with a lamp groove inside the displacement mounting frame, a battery is provided at the bottom of the lamp groove below the illumination lamp tube, and a lighting controller is provided at the top of the displacement groove inside the front of the bottom surface of the displacement mounting frame. The lighting controller is electrically connected to the illumination lamp tube.

[0012] Preferably, the device has two sliding covers, and each of the two sliding covers has a sealing strip on its opposite surface. Beneficial effects

[0013] This utility model provides a remote data acquisition device for ground source heat pump monitoring. Compared with the prior art, it has the following advantages: When the two device sliding covers slide outward, the device sliding covers drive the transmission gear to rotate through the guide block A. The transmission gear drives the lead screw inside the displacement groove to rotate simultaneously through the transmission rod. As the lead screw rotates, the displacement mounting frame moves outward, making it easier for staff to monitor the data receiving mechanism. This prevents the device from having to insert its body into the deep interior of the device for observation. When the displacement mounting frame moves to the end of one end of the displacement groove, the bottom end of the displacement mounting frame contacts the lighting controller, causing the lighting controller to turn on the illumination lamp, making it easier for staff to check and monitor the device data at night. Attached Figure Description

[0014] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model;

[0015] Figure 2 This is a schematic diagram of the transmission rod of this utility model;

[0016] Figure 3 This is a schematic diagram of the transmission gear of this utility model.

[0017] In the diagram: 1. Device housing; 101. Guide groove; 102. Displacement groove; 2. Device sliding cover; 201. Guide block A; 202. Guide block B; 3. Displacement mounting bracket; 4. Data receiving mechanism; 5. Illumination lamp tube; 6. Lead screw; 7. Transmission rod; 8. Lighting controller; 9. Rack; 10. Transmission gear; 11. Bevel gear. DETAILED DESCRIPTION

[0018] 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.

[0019] Please see Figure 1-3This utility model provides a technical solution: a remote data acquisition device for monitoring ground source heat pumps, including a device housing 1. A displacement mounting frame 3 is movably connected to the inner side of the device housing 1. Displacement grooves 102 are provided on both sides of the bottom surface of the displacement mounting frame 3 on the inner wall of the device housing 1. The bottom end of the displacement mounting frame 3 extends to the inner side of the displacement grooves 102. A data receiving mechanism 4 is provided on the front end of the displacement mounting frame 3. Illumination lamps 5 are provided on both sides of the data receiving mechanism 4 on the inner wall of the displacement mounting frame 3. A lamp groove is provided at the rear end of the illumination lamps 5 on the inner side of the displacement mounting frame 3. A battery is provided at the bottom end of the lamp groove on the inner wall of the lamp groove. A lighting controller 8 is provided at the top of the inner wall of the displacement groove 102 at the front of the bottom surface of the displacement mounting frame 3. The lighting controller 8 is electrically connected to the illumination lamps 5. When the displacement mounting frame 3 is moved to the end of one end of the displacement groove 102, the bottom end of the displacement mounting frame 3 contacts the lighting controller 8, thereby causing the lighting controller 8 to turn on the illumination lamps 5, which facilitates the staff to check and monitor the data of the device at night.

[0020] The two sides in front of the displacement mounting bracket 3 are movably connected to the front end of the device housing 1. There are two device sliding covers 2, and the opposite surfaces of the two device sliding covers 2 are provided with sealing strips, thereby improving the sealing performance of the device when the two device sliding covers 2 are closed.

[0021] Guide blocks A201 and B202 are respectively provided at the upper and lower ends of the inner wall of the sliding cover 2. One end of guide blocks A201 and B202 is located on the front end face of the outer shell 1 of the device and has a guide groove 101. Guide blocks A201 and B202 are inserted into the inner side of the guide groove 101. A transmission gear 10 is provided below guide block A201 and inside one of the guide grooves 101. A rack 9 is provided above the transmission gear 10 and at the bottom end of guide block A201. The transmission gear 10 and the rack 9 mesh with each other. A transmission rod 7 is provided at the bottom end of the transmission gear 10 and inside the guide groove 101. The bottom end of the transmission rod 7 extends through the outer shell 1 of the device to the inner side of the displacement groove 102. A lead screw 6 is provided below the transmission rod 7 and inside the displacement groove 102. The lead screw 6 passes through the displacement mounting plate. The bottom end of the frame 3 extends to the other end of the inner wall of the displacement groove 102. The lead screw 6 meshes with the displacement mounting frame 3. The upper and lower ends of the transmission rod 7, as well as the transmission gear 10 and the opposite surfaces of the lead screw 6 and the transmission rod 7, are provided with bevel gears 11. The transmission rod 7 is connected to the transmission gear 10 and the lead screw 6 through the bevel gears 11 respectively. When the two device sliding covers 2 slide outward, the device sliding covers 2 drive the transmission gear 10 to rotate through the guide block A201. The transmission gear 10 drives the lead screw 6 inside the displacement groove 102 to rotate at the same time through the transmission rod 7. Thus, during the rotation of the lead screw 6, the displacement mounting frame 3 is displaced outward, which makes it easier for the staff to monitor the data receiving mechanism 4 and prevents the inside of the device housing 1 from being too deep, requiring the staff to put their body into the device to observe.

[0022] During operation, when the two device sliding covers 2 are slid outward, the device sliding covers 2 drive the transmission gear 10 to rotate via the guide block A201. The transmission gear 10 drives the lead screw 6 inside the displacement groove 102 to rotate simultaneously via the transmission rod 7. As the lead screw 6 rotates, the displacement mounting bracket 3 moves outward, making it easier for staff to monitor the data receiving mechanism 4. This prevents staff from having to insert their bodies into the device to observe it if the device housing 1 is too deep inside. When the displacement mounting bracket 3 moves to the end of one end of the displacement groove 102, the bottom end of the displacement mounting bracket 3 contacts the lighting controller 8, causing the lighting controller 8 to turn on the illumination lamp tube 5, making it easier for staff to check and monitor the device data at night.

[0023] Meanwhile, the contents not described in detail in this specification belong to the prior art known to those skilled in the art.

Claims

1. A remote data acquisition device for monitoring ground source heat pumps, comprising a device housing (1), characterized in that: The inner side of the device housing (1) is movably connected to a displacement mounting bracket (3). The two sides of the bottom surface of the displacement mounting bracket (3) are provided with displacement grooves (102) on the inner wall of the device housing (1). The bottom end of the displacement mounting bracket (3) extends to the inner side of the displacement grooves (102). The front end of the displacement mounting bracket (3) is provided with a data receiving mechanism (4). The two sides of the data receiving mechanism (4) are provided with illumination lamps (5) on the inner wall of the displacement mounting bracket (3). The two sides in front of the displacement mounting bracket (3) are movably connected with device sliding covers (2) on the front end of the device housing (1). There are two device sliding covers (2), and the opposite surfaces of the two device sliding covers (2) are provided with sealing strips.

2. The remote data acquisition device for ground source heat pump monitoring according to claim 1, characterized in that: The inner wall of the sliding cover (2) of the device is provided with guide block A (201) and guide block B (202) at the upper and lower ends respectively. One end of guide block A (201) and guide block B (202) is located on the front end face of the outer shell (1) of the device and is provided with guide groove (101). Guide block A (201) and guide block B (202) are inserted into the inner side of guide groove (101).

3. The remote data acquisition device for ground source heat pump monitoring according to claim 2, characterized in that: A transmission gear (10) is provided below the guide block A (201) and inside one of the guide grooves (101). A rack (9) is provided above the transmission gear (10) and at the bottom end of the guide block A (201). The transmission gear (10) and the rack (9) mesh with each other.

4. The remote data acquisition device for ground source heat pump monitoring according to claim 3, characterized in that: The bottom end of the transmission gear (10) is located inside the guide groove (101) and a transmission rod (7) is provided. The bottom end of the transmission rod (7) extends through the outer shell (1) of the device to the inner side of the displacement groove (102). Below the transmission rod (7), a lead screw (6) is provided on the inner wall of the displacement groove (102). The lead screw (6) extends through the bottom end of the displacement mounting bracket (3) to the other end of the inner wall of the displacement groove (102). The lead screw (6) meshes with the displacement mounting bracket (3).

5. The remote data acquisition device for ground source heat pump monitoring according to claim 4, characterized in that: The upper and lower ends of the transmission rod (7) and the opposite surfaces of the transmission gear (10) and the lead screw (6) are all provided with bevel gears (11). The transmission rod (7) is connected to the transmission gear (10) and the lead screw (6) respectively through the bevel gears (11).

6. The remote data acquisition device for ground source heat pump monitoring according to claim 1, characterized in that: The rear end of the illumination tube (5) is provided with a lamp groove inside the displacement mounting bracket (3). A storage battery is provided at the bottom of the inner wall of the lamp groove below the illumination tube (5). A lighting controller (8) is provided at the top of the inner wall of the displacement groove (102) at the front of the bottom surface of the displacement mounting bracket (3). The lighting controller (8) is electrically connected to the illumination tube (5).

Citation Information

Patent Citations

  • Moistureproof geothermal well monitoring data remote acquisition device

    CN216357997U