Circulating geothermal heat energy replacement energy storage device
The design of the positioning frame and the insert block solves the positioning problem of the circulating geothermal energy exchange storage device on the slope and the limitation of the working area, realizing the stable fixation of the device and the expansion of the area, and improving the applicability of multi-person operation.
Patent Information
- Application Number
- CN202423124677.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-18
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2034-12-18
AI Technical Summary
Existing circulating geothermal energy exchange and storage devices cannot be effectively positioned by the bottom rollers when located on a large slope, and the working area is limited, affecting the applicability to multiple operators.
The first knob controls the lifting and lowering movement of the positioning frame, which is fixed to the ground. The second knob and the first lead screw allow the insert to pass through and connect to the outside of the flip cover, expanding the working area.
It enables effective positioning on slopes and expands the working area, making it easier for multiple people to operate and improving the applicability of the device.
Smart Images

Figure CN223826864U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of geothermal system technology, and in particular to a circulating geothermal energy replacement storage device. Background Technology
[0002] The existing technology patent number CN219607804U describes a circulating geothermal thermal energy replacement and storage device, including a base. An energy storage tank is located on the upper right side of the base. A battery mounting slot is fixedly connected to the upper left front part of the base. Two rotating seats are connected to the lower left and lower right sides of the base via bearings. Connecting plates are fixedly connected to the lower ends of the four rotating seats. An adjustment groove is formed inside the base, and a connecting mechanism is installed within the adjustment groove. A shock-absorbing mechanism is fixedly connected to the lower ends of the four connecting plates at the lower ends of the connecting mechanism. A moving mechanism is located at the lower end of the shock-absorbing mechanism located in the right middle part. Two support plates are fixedly connected to the lower ends of the four shock-absorbing mechanisms located on the left side, and the lower parts of the opposing surfaces of the two support plates are movably connected to a roller via bearings. Electric push rods are fixedly connected to the lower right front and lower right rear parts of the base. Pressure plates are fixedly connected to the lower ends of the two electric push rods. The lower end is fixedly connected with anti-slip pads. Through the setting of a connecting mechanism and a moving mechanism, starting the motor causes the rotating column to drive the second roller to rotate, thus enabling the device to move via the second and first rollers. When the device needs to be moved in a different direction, the handle is moved, causing the first rotating column to rotate, which in turn causes the transmission wheel and conveyor belt to drive the second rotating column to rotate. This causes the fixed plate to drive the moving mechanism to rotate horizontally to a suitable angle, allowing the device to turn and move. This eliminates the need for manual assistance in changing the device's rotation direction, reducing labor costs and improving practicality. However, when the circulating geothermal energy exchange storage device is located on a large slope, the rollers at the bottom of the device cannot effectively position it. Furthermore, the working area of the circulating geothermal energy exchange storage device is limited during operation, affecting multiple people performing tasks such as recording, thus limiting its applicability.
[0003] Therefore, addressing the issues of existing circulating geothermal energy exchange and storage devices being unable to effectively position themselves on steep slopes due to the rollers at the bottom, and the limited working area hindering multiple people from recording operations, thus lacking applicability, a new circulating geothermal energy exchange and storage device can be designed. This device uses a first knob to raise and lower the positioning frame, securing the trolley base to the ground. When the connecting cover is flipped out from the outside of the circulating geothermal mechanism, rotating a second knob, via a first screw, extends one end of each of the two inserts through a through-hole to the outside of the connecting cover, thus fixing the cover's position and facilitating expansion of the working area. Utility Model Content
[0004] To overcome the problems of existing circulating geothermal energy replacement storage devices, such as the inability of the rollers at the bottom of the device to effectively position the device when it is located on a large slope, and the limited working area of the device during operation, which affects multiple people to perform recording and other operations, and the lack of applicability.
[0005] The technical solution of this utility model is as follows: a circulating geothermal energy exchange and storage device, including a trolley base, a parts box at the front end of the trolley base, a first knob on the top surface of both sides of the trolley base, a positioning frame on both sides of the outer end face of the first knob, the rear end of the positioning frame extending to the inner side of the trolley base, a circulating geothermal mechanism on the top surface of the rear end of the trolley base, a second knob at the center of the top of the circulating geothermal mechanism, a connecting flip cover on both sides of the second knob on the outer end face of the circulating geothermal mechanism, and an insert at the bottom of the second knob on the inner side of the circulating geothermal mechanism, one end of the insert penetrating the circulating geothermal mechanism and the connecting flip cover extending to the outer side of the connecting flip cover.
[0006] Preferably, the positioning frame is raised and lowered by the first knob, so that the trolley base can be fixed on the ground by the positioning frame. When the connecting cover is flipped out from the outside of the circulating geothermal mechanism, the second knob is rotated. The second knob, through the first screw, causes one end of the two inserts to extend through the through hole to the outside of the connecting cover, thereby fixing the position of the connecting cover and making it easier for the staff to expand the work area.
[0007] Preferably, a second transmission rod is provided below the first knob on the inner side of the trolley base. The two ends of the second transmission rod are provided with second lead screws at the top of the positioning frame. The bottom end of the second lead screw extends through the positioning frame to the bottom end of the inner wall of the trolley base. The second lead screw meshes with the positioning frame. A bolt hole is provided on the top surface of one end of the positioning frame. Bolts and a drilling mechanism are provided on the inner side of the parts box.
[0008] Preferably, the bottom of the first knob is provided with a third transmission rod, the bottom of the third transmission rod extends to the top of the center position of the second transmission rod, and both ends of the second transmission rod and the intersection of the third transmission rod and the second lead screw with the second transmission rod are provided with bevel gears. The second transmission rod is connected to the third transmission rod and the second lead screw through the bevel gears.
[0009] Preferably, a first lead screw is provided below the second knob on the inner side of the circulating geothermal mechanism. The two ends of the first lead screw extend through the insert block to the inner side of the circulating geothermal mechanism. A first transmission rod is provided at the bottom of the second knob. The bottom end of the first transmission rod extends to the top of the center position of the first lead screw. A bevel gear is provided at the intersection of the first transmission rod and the first lead screw. The first transmission rod and the first lead screw are connected by bevel gear transmission.
[0010] Preferably, the first lead screw is a double-threaded lead screw, and the threads at both ends of the first lead screw are symmetrical about the first lead screw as the center. The first lead screw meshes with the two insert blocks.
[0011] Preferably, one end of the insert has a through hole on the inner side of the connecting flip cover, and the other end of the insert extends through the through hole to the outer side of the connecting flip cover.
[0012] Preferably, both ends of the connecting flap are provided with a rotating shaft, one end of which extends to the inside of the circulating geothermal mechanism, and the connecting flap is rotatably connected to the circulating geothermal mechanism through the rotating shaft.
[0013] The beneficial effects of this utility model are:
[0014] The positioning frame is raised and lowered by the first knob. One end of the positioning frame has a bolt hole on its top surface. The inside of the parts box has bolts and a drilling mechanism. The positioning frame fixes the trolley base to the ground. When the connecting cover is flipped out from the outside of the circulating geothermal mechanism, the second knob is rotated. The second knob, through the first screw, causes one end of the two inserts to extend through the through hole to the outside of the connecting cover, thereby fixing the position of the connecting cover and facilitating the expansion of the work area by the staff. Attached Figure Description
[0015] Figure 1 The diagram shown is a schematic representation of the overall structure of this utility model.
[0016] Figure 2 The diagram shown is a structural schematic of the connecting flip cover of this utility model;
[0017] Figure 3 The diagram shown is a structural schematic of the second knob of this utility model;
[0018] Figure 4 The diagram shown is a structural schematic of the first knob of this utility model.
[0019] Explanation of reference numerals in the attached drawings: 1. Trolley base; 2. First knob; 3. Positioning frame; 4. Circulating geothermal mechanism; 5. Connecting flip cover; 6. Second knob; 7. Insert block; 8. Parts box; 9. First lead screw; 10. First transmission rod; 11. Second transmission rod; 12. Third transmission rod; 13. Second lead screw. Detailed Implementation
[0020] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0021] Please see Figures 1-4 This utility model provides a technical solution: a circulating geothermal energy exchange and storage device, including a trolley base 1, a parts box 8 at the front end of the trolley base 1, a first knob 2 on the top surface of both sides of the trolley base 1, a positioning frame 3 on both sides of the outer end face of the first knob 2, the rear end of the positioning frame 3 extending to the inner side of the trolley base 1, a second transmission rod 11 below the first knob 2 on the inner side of the trolley base 1, a second lead screw 13 at both ends of the second transmission rod 11 at the top of the positioning frame 3, the bottom end of the second lead screw 13 penetrating the positioning frame 3 and extending to the bottom end of the inner wall of the trolley base 1, the second lead screw 13 meshing with the positioning frame 3, a bolt hole on the top surface of one end of the positioning frame 3, a bolt and a drilling mechanism on the inner side of the parts box 8, and a third transmission rod 13 at the bottom end of the first knob 2. The bottom end of the moving rod 12 extends to the top of the center position of the second transmission rod 11. Both ends of the second transmission rod 11 and the intersection of the third transmission rod 12 and the second lead screw 13 with the second transmission rod 11 are provided with bevel gears. The second transmission rod 11 is connected to the third transmission rod 12 and the second lead screw 13 through the bevel gears. When the device stops at a suitable position, the first knob 2 is rotated. The first knob 2 causes the second lead screw 13 to rotate through the third transmission rod 12 and the second transmission rod 11. The second lead screw 13 meshes with the positioning frame 3, which facilitates the lifting and lowering movement of the positioning frame 3 by the first knob 2. The top surface of one end of the positioning frame 3 is provided with bolt holes. The inside of the parts box 8 is provided with bolts and a drilling mechanism, so that the positioning frame 3 is fixed to the ground by bolts and drilling mechanism.
[0022] Please see Figures 2-4In this embodiment, a circulating geothermal mechanism 4 is provided on the top surface of the rear end of the trolley base 1. A second knob 6 is provided at the center of the top of the circulating geothermal mechanism 4. Connecting flaps 5 are provided on both sides of the second knob 6 on the outer end face of the circulating geothermal mechanism 4. An insert 7 is provided at the bottom of the second knob 6 on the inner side of the circulating geothermal mechanism 4. One end of the insert 7 extends through the circulating geothermal mechanism 4 and the connecting flap 5 to the outer side of the connecting flap 5. A first lead screw 9 is provided below the second knob 6 on the inner side of the circulating geothermal mechanism 4. Both ends of the first lead screw 9 extend through the insert 7 to the inner side of the circulating geothermal mechanism 4. A first transmission rod 10 is provided at the bottom of the second knob 6. The bottom end of the first transmission rod 10 extends to the top of the center position of the first lead screw 9. The first transmission rod 10 and the first lead screw 9 are connected. A bevel gear is provided at the intersection of the first transmission rod 10 and the first lead screw 9. The first lead screw 9 is a double-threaded lead screw. The threads at both ends of the first lead screw 9 are symmetrical about the first lead screw 9. The first lead screw 9 meshes with the two inserts 7. One end of the insert 7 is located inside the connecting cover 5 and has a through hole. One end of the insert 7 extends through the through hole to the outside of the connecting cover 5. When the connecting cover 5 is flipped out from the outside of the circulating geothermal mechanism 4, the second knob 6 is rotated. The second knob 6 drives the first lead screw 9 through the first transmission rod 10. Since the first lead screw 9 meshes with the two inserts 7, the first lead screw 9 allows one end of the two inserts 7 to extend through the through hole to the outside of the connecting cover 5, which facilitates fixing the position of the connecting cover 5.
[0023] Please see Figures 2-3 In this embodiment, both ends of the connecting flip cover 5 are provided with rotating shafts. One end of the rotating shaft extends to the inner side of the circulating geothermal mechanism 4. The connecting flip cover 5 is rotatably connected to the circulating geothermal mechanism 4 through the rotating shaft, which facilitates the connection between the connecting flip cover 5 and the circulating geothermal mechanism 4.
[0024] When the device is in operation, after it stops at a suitable position, rotating the first knob 2 causes the second lead screw 13 to rotate via the third transmission rod 12 and the second transmission rod 11. The second lead screw 13 engages with the positioning frame 3, which allows the positioning frame 3 to move up and down via the first knob 2. The top surface of one end of the positioning frame 3 has bolt holes, and the inner side of the parts box 8 has bolts and a drilling mechanism. The positioning frame 3 fixes the trolley base 1 to the ground. When the connecting cover 5 is flipped out from the outside of the circulating geothermal mechanism 4, rotating the second knob 6 causes the first lead screw 9 to drive via the first transmission rod 10. Since the first lead screw 9 engages with the two inserts 7, one end of the two inserts 7 extends through the through hole to the outside of the connecting cover 5, thus fixing the position of the connecting cover 5. This makes it easier for the staff to expand the work area. Then, the power is turned on, the device is started, and the circulating geothermal mechanism 4 draws cold ground water and then absorbs underground heat energy for heating.
[0025] Through the above steps, the positioning frame 3 is raised and lowered by the first knob 2, thereby fixing the trolley base 1 to the ground. When the connecting cover 5 is flipped out from the outside of the circulating geothermal mechanism 4, the second knob 6 is rotated. The second knob 6, through the first screw 9, causes one end of the two inserts 7 to extend through the through hole to the outside of the connecting cover 5, thereby fixing the position of the connecting cover 5. This facilitates the expansion of the working area by the staff and solves the problems of existing circulating geothermal energy exchange storage devices, where the rollers at the bottom of the device cannot effectively position the circulating geothermal energy exchange storage device when it is located on a large slope, and the limited working area of the circulating geothermal energy exchange storage device during operation, which affects multiple people to perform recording and other operations, resulting in insufficient applicability.
Claims
1. A circulating geothermal energy exchange storage device, comprising a trolley base (1); characterized in that: The front end of the trolley base (1) is provided with a parts box (8). The top surfaces of both sides of the trolley base (1) are provided with a first knob (2). One end of the first knob (2) is located on both sides of the outer end face of the trolley base (1) and a positioning frame (3) is provided. The rear end of the positioning frame (3) extends to the inner side of the trolley base (1). The top surface of the rear end of the trolley base (1) is provided with a circulating geothermal mechanism (4). The center of the top of the circulating geothermal mechanism (4) is provided with a second knob (6). Both sides of the second knob (6) are located on the outer end face of the circulating geothermal mechanism (4) and a connecting cover (5) is provided. The bottom end of the second knob (6) is located on the inner side of the circulating geothermal mechanism (4) and a plug (7) is provided. One end of the plug (7) extends through the circulating geothermal mechanism (4) and the connecting cover (5) to the outer side of the connecting cover (5).
2. The circulating geothermal thermal energy replacement energy storage device according to claim 1, characterized in that: Below the first knob (2), a second transmission rod (11) is located on the inner side of the trolley base (1). The two ends of the second transmission rod (11) are located at the top of the positioning frame (3) and a second lead screw (13) is provided. The bottom end of the second lead screw (13) extends through the positioning frame (3) to the bottom end of the inner wall of the trolley base (1). The second lead screw (13) meshes with the positioning frame (3). A bolt hole is provided on the top surface of one end of the positioning frame (3). Bolts and a drilling mechanism are provided on the inner side of the parts box (8).
3. The circulating geothermal thermal energy replacement energy storage device according to claim 1, characterized in that: The bottom end of the first knob (2) is provided with a third transmission rod (12). The bottom end of the third transmission rod (12) extends to the top of the center position of the second transmission rod (11). Both ends of the second transmission rod (11) and the intersection of the third transmission rod (12) and the second lead screw (13) with the second transmission rod (11) are provided with bevel gears. The second transmission rod (11) is connected to the third transmission rod (12) and the second lead screw (13) through the bevel gears.
4. The circulating geothermal thermal energy replacement energy storage device according to claim 1, characterized in that: Below the second knob (6), inside the circulating geothermal mechanism (4), there is a first lead screw (9). The two ends of the first lead screw (9) extend through the insert (7) to the inside of the circulating geothermal mechanism (4). The bottom end of the second knob (6) is provided with a first transmission rod (10). The bottom end of the first transmission rod (10) extends to the top of the center position of the first lead screw (9). A bevel gear is provided at the intersection of the first transmission rod (10) and the first lead screw (9). The first transmission rod (10) and the first lead screw (9) are connected by bevel gear transmission.
5. A circulating geothermal thermal energy replacement storage device according to claim 4, characterized in that: The first lead screw (9) is a double-ended threaded lead screw. The threads at both ends of the first lead screw (9) are symmetrical about the first lead screw (9) as the center. The first lead screw (9) meshes with the two inserts (7).
6. The circulating geothermal thermal energy replacement energy storage device according to claim 1, characterized in that: One end of the insert (7) is located inside the connecting flip cover (5) and has a through hole. The other end of the insert (7) extends through the through hole to the outside of the connecting flip cover (5).
7. The circulating geothermal thermal energy replacement energy storage device according to claim 1, characterized in that: Both ends of the connecting flip cover (5) are provided with rotating shafts. One end of the rotating shaft extends to the inside of the circulating geothermal mechanism (4). The connecting flip cover (5) is rotatably connected to the circulating geothermal mechanism (4) through the rotating shaft.
Citation Information
Patent Citations
Circulating geothermal heat energy replacement energy storage device
CN219607804U