Water nozzle frame for cooling new energy battery
By designing an annular groove and locking mechanism in the new energy battery cooling system, the protective sleeve can be quickly disassembled and installed. A heating mechanism is used to prevent the coolant from freezing, which solves the problems of inconvenient disassembly of the protective sleeve and coolant freezing, and improves the ease of operation and the service life of the water nozzle.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ANHUI JUNYI PRECISION MANUFACTURING CO LTD
- Filing Date
- 2025-05-27
- Publication Date
- 2026-05-19
AI Technical Summary
The protective covers of existing new energy battery cooling water nozzles are inconvenient to remove and install, and the coolant is prone to freezing in cold weather, which can damage the nozzles.
The water nozzle frame is designed with an annular groove, a locking mechanism, and a heating mechanism. The annular groove and locking mechanism enable quick removal and installation of the protective sleeve, while the heating mechanism prevents the coolant from freezing.
It improves the efficiency of replacing the protective cover, prevents the coolant from freezing, and extends the service life of the water nozzle.
Smart Images

Figure CN224264141U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water tap protection technology, specifically a water tap frame for cooling new energy batteries. Background Technology
[0002] To prevent high temperatures during use, new energy batteries need to be cooled. The water nozzle frame is a structural component surrounding the water nozzle in the new energy battery cooling system. Its main functions are to fix and support the water nozzle, ensure sealing, facilitate connection transition, and protect the water nozzle. It is one of the components of the battery cooling system.
[0003] Currently, cooling water nozzles are straight tubes welded and fixed to the frame. To prevent the nozzles from being damaged by pressure, a protective sleeve is usually installed on the side of the frame to protect the cooling water nozzles from dust and impact. Since the protective sleeve is usually fixed to the side of the frame with screws, when the protective sleeve is damaged, the staff needs to use tools to turn the screws one by one, which is inconvenient for the staff to disassemble and install, reducing the efficiency of replacing and maintaining the protective sleeve. To address this, we propose a cooling water nozzle frame for new energy batteries. Utility Model Content
[0004] In view of the shortcomings of the prior art mentioned in the background, the present invention provides a water nozzle frame for cooling new energy batteries.
[0005] This utility model overcomes the above technical problems by adopting the following technical solution:
[0006] A water nozzle frame for cooling a new energy battery includes: a side plate, two annular grooves on the front of the side plate, two water nozzles threadedly connected to the front of the side plate, two locking mechanisms on the top of the side plate extending into the interior of the two annular grooves, protective mechanisms inside the two annular grooves extending into the front of the side plate and respectively fitted onto the exterior of the two water nozzles, and a heating mechanism on the front of the side plate fitting against the two protective mechanisms.
[0007] As a further embodiment of this utility model: the locking mechanism includes a U-shaped frame, a plug rod, two guide rods, a connecting plate, a pull plate, and a spring. The U-shaped frame is connected to the top of the side plate. The plug rod is slidably connected between the top of the inner wall of the U-shaped frame and the top of the side plate, and both ends of the plug rod extend to the top of the U-shaped frame and the interior of one of the annular grooves, respectively. Both guide rods are slidably connected to the top of the inner wall of the U-shaped frame, and the top ends of both guide rods extend to the top of the U-shaped frame. The connecting plate is connected to the top ends of the two guide rods and the plug rod. The pull plate is connected to the top of the connecting plate. The spring is connected between the connecting plate and the U-shaped frame, and the spring is located outside the plug rod.
[0008] As a further improvement of this utility model, the bottom end of the insertion rod is in the shape of an inverted isosceles trapezoid.
[0009] As a further embodiment of this utility model: the protective mechanism includes a protective sleeve and a positioning hole. The protective sleeve is movably inserted into the interior of one of the annular grooves, and the inner surface of the protective sleeve is in contact with the outer surface of one of the annular grooves. The positioning hole is opened on the outer surface of the protective sleeve, and the bottom end of the insertion rod is movably inserted into the interior of the positioning hole.
[0010] As a further embodiment of this utility model: the heating mechanism includes an insulation box, a heater, two heat-conducting plates, two heating steel rings, and a sealing door. The insulation box is connected to the front of the side plate, the heater is disposed inside the insulation box, the two heat-conducting plates are respectively connected to both sides of the heater, and the two heat-conducting plates extend to both sides of the insulation box, the two heating steel rings are respectively connected to the two ends of the two heat-conducting plates, and the sealing door is hinged to the front of the insulation box.
[0011] As a further embodiment of this invention: the inner surface of one of the heating steel rings is fitted with the outer surface of the protective sleeve.
[0012] As a further improvement of this utility model, mounting bases are connected to both sides of the side plate.
[0013] By adopting the above structure, this utility model has the following advantages compared with the prior art:
[0014] 1. In this utility model, the two annular grooves, two locking mechanisms, and two protective mechanisms enable workers to quickly disassemble and install the two protective covers, thus facilitating the maintenance of the protective covers. The operation process only requires pulling, pulling, and turning to achieve installation and disassembly, thereby improving the efficiency and convenience of workers in replacing the two protective covers.
[0015] 2. In this utility model, the heating mechanism can heat the two water nozzles and melt the coolant inside them, preventing the coolant from freezing and thus avoiding the water nozzles from cracking due to the inability to spray coolant in cold weather, thereby extending the service life of the two water nozzles. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0017] Figure 2 This is a schematic diagram showing the location of the annular groove;
[0018] Figure 3 This is a schematic diagram of the locking mechanism of this utility model;
[0019] Figure 4 This is a cross-sectional planar structural diagram of the protective mechanism of this utility model;
[0020] Figure 5 This is a schematic diagram of the heating mechanism of this utility model.
[0021] In the diagram: 1. Side plate; 2. Annular groove; 3. Locking mechanism; 301. U-shaped frame; 302. Insert rod; 303. Guide rod; 304. Connecting plate; 305. Pull plate; 306. Spring; 4. Protective mechanism; 401. Protective sleeve; 402. Positioning hole; 5. Water tap; 6. Heating mechanism; 601. Insulation box; 602. Heater; 603. Heat-conducting plate; 604. Heating steel ring; 605. Sealing door; 7. Mounting base. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0023] Example 1:
[0024] Please see Figures 1-5 In this embodiment of the utility model, a water nozzle frame for cooling a new energy battery includes: a side plate 1, two annular grooves 2 are formed on the front of the side plate 1, two water nozzles 5 are threadedly connected to the front of the side plate 1, two locking mechanisms 3 are provided on the top of the side plate 1, and the two locking mechanisms 3 extend into the interior of the two annular grooves 2 respectively, a protective mechanism 4 is provided inside the two annular grooves 2, and the two protective mechanisms 4 extend into the front of the side plate 1 and are respectively sleeved on the outside of the two water nozzles 5, and a heating mechanism 6 is provided on the front of the side plate 1, and the heating mechanism 6 is in contact with the two protective mechanisms 4.
[0025] Specifically, by pulling the two locking mechanisms 3 upwards and sliding them on the top of the side plate 1, and removing them from the two annular grooves 2 and the two protective mechanisms 4, the locking of the two protective mechanisms 4 can be released. At this time, the two protective mechanisms 4 can be pulled out from inside the two annular grooves 2 to complete the disassembly of the protective mechanisms 4. After inserting the protective mechanisms 4 into the inside of the two annular grooves 2, rotating the two protective mechanisms 4 will squeeze the two locking mechanisms 3. When the two protective mechanisms 4 rotate a certain angle, the two protective mechanisms 4 will no longer squeeze the two locking mechanisms 3, and the two locking mechanisms 3 will reset to lock the two protective mechanisms 4, thus completing the installation of the two protective mechanisms 4. By activating the heating mechanism 6, heat can be transferred to the two protective mechanisms 4. Then, the two protective mechanisms 4 transfer heat to the two water nozzles 5 to heat the coolant inside the two water nozzles 5, thereby completing the melting of the coolant.
[0026] Example 2:
[0027] Please see Figures 2-4 In this embodiment of the present invention, a water tap frame for cooling a new energy battery includes a locking mechanism 3 comprising a U-shaped frame 301, a plug rod 302, two guide rods 303, a connecting plate 304, a pull plate 305, and a spring 306. The U-shaped frame 301 is connected to the top of the side plate 1. The plug rod 302 is slidably connected between the top of the inner wall of the U-shaped frame 301 and the top of the side plate 1, with both ends of the plug rod 302 extending to the top of the U-shaped frame 301 and the interior of one of the annular grooves 2, respectively. Both guide rods 303 are slidably connected to the top of the inner wall of the U-shaped frame 301, with the top ends of both guide rods 303 extending to the top of the U-shaped frame 301. The connecting plate 304... 04 is connected to the top of the two guide rods 303 and the insertion rod 302. The pull plate 305 is connected to the top of the connecting plate 304. The spring 306 is connected between the connecting plate 304 and the U-shaped frame 301, and the spring 306 is located outside the insertion rod 302. The bottom end of the insertion rod 302 is an inverted isosceles trapezoid. The protective mechanism 4 includes a protective sleeve 401 and a positioning hole 402. The protective sleeve 401 is movably inserted into the inside of one of the annular grooves 2, and the inner surface of the protective sleeve 401 is in contact with the outer surface of one of the annular grooves 2. The positioning hole 402 is opened on the outer surface of the protective sleeve 401, and the bottom end of the insertion rod 302 is movably inserted into the inside of the positioning hole 402.
[0028] Specifically, pulling the pull plate 305 upwards causes the insertion rod 302 and two guide rods 303 to slide on the U-shaped frame 301 via the connecting plate 304. At this time, the bottom end of the insertion rod 302 will retract from the inside of the positioning hole 402, releasing the lock on the protective sleeve 401. The protective sleeve 401 can then be pulled out from the inside of one of the annular grooves 2, completing the disassembly of one of the annular grooves 2. During installation, the positioning hole 402 at the top of the protective sleeve 401 should not be aligned with the bottom end of the insertion rod 302 before inserting it into the inside of one of the annular grooves 2. Then, the protective sleeve 401 should be rotated to make the protective sleeve 302 more flexible. The outer surface of the sleeve 401 presses against the bottom end of the insertion rod 302, causing the insertion rod 302 to rise and drive the connecting plate 304 to rise, thus stretching the spring 306. When the positioning hole 402 on the protective sleeve 401 rotates to the same position as the bottom end of the insertion rod 302, the protective sleeve 401 will no longer press against the insertion rod 302, and the spring 306 will reset, allowing the insertion rod 302 to descend and be inserted into the positioning hole 402, locking the position of the protective sleeve 401, thereby completing the installation of the protective sleeve 401 and enabling convenient replacement of the protective sleeve 401.
[0029] Example 3:
[0030] Please see Figures 1-5 In this embodiment of the utility model, a water tap frame for cooling a new energy battery includes a heating mechanism 6 comprising an insulation box 601, a heater 602, two heat-conducting plates 603, two heating steel rings 604, and a sealing door 605. The insulation box 601 is connected to the front of the side plate 1. The heater 602 is disposed inside the insulation box 601. The two heat-conducting plates 603 are respectively connected to both sides of the heater 602 and extend to both sides of the insulation box 601. The two heating steel rings 604 are respectively connected to both ends of the two heat-conducting plates 603. The sealing door 605 is hinged to the front of the insulation box 601. The inner surface of one of the heating steel rings 604 is in contact with the outer surface of the protective sleeve 401. Mounting seats 7 are connected to both sides of the side plate 1.
[0031] Specifically, the heater 602 is activated to transfer heat to the two heating steel rings 604 through the two heat conduction plates 603. The two heating steel rings 604 continuously heat the outer surface of the protective sleeve 401, so that the protective sleeve 401 transfers heat to the two water nozzles 5 to melt the coolant and prevent the coolant from freezing and becoming unusable in cold weather. With the help of the two mounting seats 7, the side plate 1 can be connected to other connecting parts with bolts.
[0032] The working principle of this utility model is as follows: When the protective sleeve 401 needs to be disassembled, the operator only needs to pull the pull plate 305 upwards. The pull plate 305 drives the insertion rod 302 and the two guide rods 303 to slide on the U-shaped frame 301 through the connecting plate 304. The bottom end of the insertion rod 302 will be withdrawn from the interior of the positioning hole 402, thereby releasing the lock on the protective sleeve 401. At the same time, the spring 306 will be stretched. At this time, the protective sleeve 401 can be pulled out from the interior of one of the annular grooves 2, thereby completing the disassembly of one of the annular grooves 2. The positioning hole 402 at the top of the replaced protective sleeve 401 is not aligned with the bottom end of the insertion rod 302, and it is inserted into the interior of one of the annular grooves 2. When one end of the protective sleeve 401 is in contact with the interior of one of the annular grooves 2, the protective sleeve 401 is rotated. The outer surface of the protective sleeve 401 will press the insertion rod 302. At the bottom of 02, the insertion rod 302 rises, simultaneously causing the connecting plate 304 to rise and stretch the spring 306. When the positioning hole 402 on the protective sleeve 401 rotates to the same position as the bottom of the insertion rod 302, the protective sleeve 401 will no longer squeeze the insertion rod 302. At this time, the spring 306 will reset, causing the insertion rod 302 to descend and be inserted into the positioning hole 402, locking the position of the protective sleeve 401, thus completing the installation of the protective sleeve 401. By activating the heater 602 inside the insulation box 601, the heater 602 emits heat, which is transferred to the two heating steel rings 604 through the two heat-conducting plates 603. The two heating steel rings 604 continuously heat the outer surface of the protective sleeve 401, which then transfers the heat to the two water nozzles 5, thereby melting the ice inside the two water nozzles 5.
[0033] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention.
Claims
1. A new energy battery cooling water nozzle frame, characterized in that, include: Side plate (1), the front of the side plate (1) has two annular grooves (2), the front of the side plate (1) is threaded with two water nozzles (5), the top of the side plate (1) is provided with two locking mechanisms (3), and the two locking mechanisms (3) extend into the interior of the two annular grooves (2) respectively. The interior of the two annular grooves (2) is provided with protective mechanisms (4), and the two protective mechanisms (4) extend into the front of the side plate (1) and are respectively fitted onto the exterior of the two water nozzles (5). The front of the side plate (1) is provided with a heating mechanism (6), and the heating mechanism (6) is in contact with the two protective mechanisms (4).
2. The water nozzle frame for cooling new energy batteries according to claim 1, characterized in that, The locking mechanism (3) includes a U-shaped frame (301), a plug rod (302), two guide rods (303), a connecting plate (304), a pull plate (305), and a spring (306). The U-shaped frame (301) is connected to the top of the side plate (1). The plug rod (302) is slidably connected between the top of the inner wall of the U-shaped frame (301) and the top of the side plate (1), and both ends of the plug rod (302) extend to the top of the U-shaped frame (301) and the interior of one of the annular grooves (2), respectively. The guide rods (303) are slidably connected to the top of the inner wall of the U-shaped frame (301), and the top ends of the two guide rods (303) extend to the top of the U-shaped frame (301). The connecting plate (304) is connected to the top ends of the two guide rods (303) and the insert rod (302). The pull plate (305) is connected to the top of the connecting plate (304). The spring (306) is connected between the connecting plate (304) and the U-shaped frame (301), and the spring (306) is located outside the insert rod (302).
3. The water nozzle frame of claim 2, wherein, The bottom end of the insertion rod (302) is an inverted isosceles trapezoid.
4. The water nozzle frame of claim 1, wherein, The protective mechanism (4) includes a protective sleeve (401) and a positioning hole (402). The protective sleeve (401) is movably inserted into the interior of one of the annular grooves (2), and the inner surface of the protective sleeve (401) is in contact with the outer surface of one of the annular grooves (2). The positioning hole (402) is opened on the outer surface of the protective sleeve (401), and the bottom end of the insertion rod (302) is movably inserted into the interior of the positioning hole (402).
5. The water nozzle frame of claim 1, wherein, The heating mechanism (6) includes an insulation box (601), a heater (602), two heat-conducting plates (603), two heating steel rings (604), and a sealing door (605). The insulation box (601) is connected to the front of the side plate (1). The heater (602) is located inside the insulation box (601). The two heat-conducting plates (603) are respectively connected to both sides of the heater (602) and extend to both sides of the insulation box (601). The two heating steel rings (604) are respectively connected to both ends of the two heat-conducting plates (603). The sealing door (605) is hinged to the front of the insulation box (601).
6. The water nozzle frame of claim 5, wherein, The inner surface of one of the heating steel rings (604) is in contact with the outer surface of the protective sleeve (401).
7. The water nozzle frame of claim 1, wherein, Mounting bases (7) are connected to both sides of the side plate (1).