Reinforced cooler cylinder
By using the arc-shaped plate and baffle plate structure of the reinforced cooler cylinder, and utilizing UHPC material and threaded connections, the problem of easy damage to the cooler shell has been solved, achieving higher impact resistance and simplifying the installation process, thus improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHAOXING SILVER BALL PRESSURE VESSEL MFG
- Filing Date
- 2025-02-11
- Publication Date
- 2026-04-28
AI Technical Summary
The existing tool cooler housing has low strength and is easily damaged by impact, affecting the user experience.
The cooler shell is reinforced and protected by a combination of arc-shaped plates and baffles. UHPC material is used to increase strength, and threaded connections and spring mechanisms simplify the installation process.
It improves the cooler housing's resistance to damage, reduces installation difficulty, and enhances the user experience.
Smart Images

Figure CN224169372U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cooler technology, and in particular to a reinforced cooler cylinder. Background Technology
[0002] Tool cooling refers to a technology that reduces tool temperature during machining by using external cooling media or internal cooling structures, thereby improving tool life and machining quality. Tools generate a large amount of heat during high-speed cutting; if this heat is not dissipated in time, it can lead to accelerated tool wear, shortened tool life, decreased machining quality, and even accidents. Therefore, tool cooling is a crucial component of modern high-efficiency cutting technology. Currently, the most common tool cooling method involves spraying cutting fluid (such as water-soluble or oil-based cutting fluids) through nozzles onto the tool's cutting area to remove heat.
[0003] Chinese utility model patent CN222037783U discloses a tool cooler, comprising: a cooler shell and a cutting fluid inlet pipe. The cooler shell has distribution plates at both ends, and a spiral distribution pipe is provided between the distribution plates. One distribution plate has a cutting fluid inlet pipe on its outer side, and the other distribution plate has a cutting fluid outlet pipe on its outer side. This utility model uses a spiral water outlet groove on a central pipe to spray water onto the outer wall of the spiral distribution pipe. A second branch pipe tangentially delivers tap water into the spiral shell, allowing the water to flow spirally and fully contact the spiral distribution pipe. Through the heat conduction of the spiral distribution pipe, the tap water and the recovered cutting fluid in the spiral distribution pipe undergo sufficient heat exchange, facilitating rapid cooling of the recovered cutting fluid. This allows the recovered cutting fluid to be quickly reused for tool cooling, reducing the amount of cutting fluid stored while ensuring a real-time supply of cutting fluid.
[0004] Regarding the aforementioned technologies, the inventors believe the following drawbacks exist: The device rapidly cools the recovered cutting fluid via a spiral distributor pipe connected to the cooling water inlet pipe, and protects the spiral distributor pipe with a cooler casing connected to the cutting fluid outlet pipe. In actual use, the cooler casing, being essentially a cylindrical sheet metal, has low strength, and since coolers are mostly located in complex factory environments, passing workers are prone to bumping into the cooler casing during operation, causing dents in certain areas. This, in turn, leads to external impacts on the spiral distributor pipe, resulting in damage and a poor user experience. Utility Model Content
[0005] To solve the above problems, this utility model provides a reinforced cooler cylinder.
[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a reinforced cooler shell, including a cutting fluid outlet pipe, a cooler shell connected to the cutting fluid outlet pipe, a cutting fluid inlet pipe connected to the cooler shell, a first branch pipe installed on the side wall of the cooler shell, a second branch pipe installed on the side wall of the cooler shell, a cooling water inlet pipe installed on the first branch pipe and the second branch pipe, and a water outlet pipe installed on the cooler shell. Multiple arc-shaped plates are slidably arranged on the side wall of the cooler shell, and a fixing component for fixing the arc-shaped plates is provided on the cooler shell.
[0007] Furthermore, multiple sliding grooves are formed on the two opposite side walls of the multiple arc-shaped plates, and a baffle plate is installed in the sliding groove.
[0008] By adopting the above technical solution, when workers need to rapidly cool the recovered cutting fluid, they simply inject the recovered cutting fluid into the cutting fluid inlet pipe, allowing the cooling water in the cooling water inlet pipe to dissipate heat from the recovered cutting fluid. During this process, workers sequentially connect multiple arc-shaped plates to the cooler casing and connect the ends of multiple baffle plates to sliding grooves on two arc-shaped plates. This allows the multiple baffle plates and arc-shaped plates to work together to protect the cooler casing, reducing the probability of damage to the cooler casing when subjected to external forces and thus improving the user experience.
[0009] Furthermore, two opposing fixing grooves are formed on the inner wall of the arc-shaped plate, and a rotating groove is formed on the inner wall of each of the two fixing grooves. The fixing assembly includes a fixing block that is slidably disposed in the fixing groove and a rotating rod that is rotatably disposed on the side wall of the fixing block. The other end of the rotating rod extends to the outside of the arc-shaped plate and is slidably connected.
[0010] Furthermore, the two rotating rods are provided with external threads on their side walls, and the rotating groove is provided with internal threads that match the external threads on its inner wall.
[0011] By adopting the above technical solution, when workers need to connect the arc-shaped plate to the cooler shell, they can bypass the first branch pipe, the second branch pipe, and the outlet pipe through the notch in the arc-shaped plate, thus reducing the difficulty of installing the arc-shaped plate. At this point, workers only need to place the arc-shaped plate onto the cooler shell and press the rotating rod to make the external thread press against the inner wall of the rotating groove. Then, workers only need to rotate the rotating rod to connect the internal and external threads, thus stabilizing the rotating rod and causing the fixing block to press against the side wall of the cooler shell, thereby stabilizing the arc-shaped plate.
[0012] Furthermore, tension springs are fixed to the side walls of the two fixed blocks that are far apart from each other, and the other ends of the two tension springs are respectively fixed to the inner walls of the two fixed grooves that are far apart from each other.
[0013] By adopting the above technical solution, when the operator separates the internal thread from the external thread, the operator only needs to release the rotating rod to reset the fixed block under the action of the tension spring, thereby separating the fixed block from the side wall of the cooler shell, thus reducing the difficulty of operation for the operator.
[0014] Furthermore, a handle is fixed to the upper end of the rotating rod to reduce the difficulty for workers to rotate the rotating rod.
[0015] Furthermore, silicone blocks are provided on the sidewalls of the two fixing blocks that are close to each other to improve the fixing effect of the fixing blocks.
[0016] By adopting the above technical solution, the silicone block increases the upper limit of static friction between the fixing block and the side wall of the cooler housing, thereby improving the fixing effect of the fixing block on the cooler housing and thus improving the user experience of the staff.
[0017] Furthermore, the barrier plate is a barrier plate made of UHPC.
[0018] By adopting the above technical solutions, ultra-high performance concrete (UHPC) is the most innovative cement-based engineering material of the past thirty years, achieving a major leap in the performance of engineering materials. Barrier panels made of UHPC possess high strength, high durability, and are lightweight yet high-strength, thereby reducing the probability of deformation under external forces and consequently lowering the probability of damage to the cooler's outer shell when subjected to external forces.
[0019] Furthermore, both ends of the barrier plate are provided with rounded corners to reduce the difficulty for workers to install the barrier plate.
[0020] Furthermore, the barrier plate has multiple equally spaced rubber blocks on its side wall near the cooler housing.
[0021] By adopting the above technical solution, when the baffle is subjected to external force, the baffle deforms under the action of external force. The rubber block reduces the degree of deformation of the baffle, thereby further reducing the probability of the spiral liquid distribution pipe inside the cooler shell being impacted by external force, thus improving the user experience of the staff.
[0022] In summary, this utility model has the following beneficial effects:
[0023] 1. In this application, when workers need to rapidly cool the recovered cutting fluid, they need to inject the recovered cutting fluid into the cutting fluid inlet pipe, which allows the cooling water in the cooling water inlet pipe to dissipate heat from the recovered cutting fluid. During this process, workers need to sequentially connect multiple arc-shaped plates to the cooler shell and connect the two ends of multiple baffle plates to the sliding grooves on two arc-shaped plates respectively. This allows the multiple baffle plates and multiple arc-shaped plates to cooperate in protecting the cooler shell, thereby reducing the probability of damage to the cooler shell when subjected to external forces, and thus improving the user experience for workers.
[0024] 2. In this application, when workers need to connect the arc-shaped plate to the cooler shell, they can bypass the first branch pipe, the second branch pipe, and the outlet pipe through the notch in the arc-shaped plate, thus reducing the difficulty of installing the arc-shaped plate. At this time, workers only need to place the arc-shaped plate onto the cooler shell and press the rotating rod to make the external thread abut against the inner wall of the rotating groove. Then, workers only need to rotate the rotating rod to connect the internal and external threads, thus keeping the rotating rod stable and causing the fixing block to abut against the side wall of the cooler shell, thereby keeping the arc-shaped plate stable.
[0025] 3. In this application, when the operator separates the internal thread from the external thread, the operator only needs to release the rotating rod to reset the fixed block under the action of the tension spring, thereby separating the fixed block from the side wall of the cooler shell, thus reducing the difficulty of operation for the operator. Attached Figure Description
[0026] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present utility model;
[0027] Figure 2 This is a schematic diagram of the rotating groove and its connection structure according to an embodiment of the present invention;
[0028] Figure 3 This is a schematic diagram of the rubber block and its connection structure according to an embodiment of the present invention;
[0029] Figure 4 This is a schematic diagram of the fixing groove and its connection structure according to an embodiment of the present utility model;
[0030] Figure 5 This is a schematic diagram of the fixing component and its connection structure according to an embodiment of the present utility model.
[0031] In the diagram: 1. Cutting fluid outlet pipe; 11. Cooler housing; 2. Cutting fluid inlet pipe; 21. First branch pipe; 3. Second branch pipe; 31. Cooling water inlet pipe; 4. Outlet pipe; 41. Arc plate; 42. Fixed groove; 43. Rotating groove; 5. Fixed assembly; 51. Fixed block; 52. Rotating rod; 6. Sliding groove; 61. Baffle plate; 7. Tension spring; 8. Handle; 81. Silicone block; 9. Rubber block. Detailed Implementation
[0032] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.
[0033] like Figures 1-5 As shown in the figure, this application discloses a reinforced cooler shell, including a cutting fluid outlet pipe 1, a cooler shell 11, a cutting fluid inlet pipe 2, a first branch pipe 21, a second branch pipe 3, a cooling water inlet pipe 31, a water outlet pipe 4, an arc-shaped plate 41, a fixing assembly 5, a baffle plate 61, a tension spring 7, a handle 8, a silicone block 81, and a rubber block 9. The cooler shell 11 is connected to the cutting fluid outlet pipe 1. The cutting fluid inlet pipe 2 is a cylindrical structure and is connected to the cooler shell 11. The first branch pipe 21 is a cylindrical structure and is installed on the side wall of the cooler shell 11. The second branch pipe 3 is a cylindrical structure and is installed on the side wall of the cooler shell 11. The cooling water inlet pipe 31 is a cylindrical structure and is installed on both the first branch pipe 21 and the second branch pipe 3. The water outlet pipe 4 is a cylindrical structure and is installed on the cooler shell 11. The arc plate 41 is a plate-shaped structure with a circular arc cross-section. Multiple arc plates 41 are provided and are slidably arranged on the side wall of the cooler shell 11.
[0034] Multiple sliding grooves 6 are provided on the two opposite side walls of multiple arc-shaped plates 41. The barrier plate 61 is a plate-shaped structure and is installed in the sliding groove 6.
[0035] Two opposing fixing grooves 42 are formed on the inner wall of the arc-shaped plate 41, and a rotating groove 43 is formed on the inner wall of each fixing groove 42 (the arc-shaped plate 41 is formed by bonding two arc-shaped plates 41 together). The fixing assembly 5 is set on the cooler shell 11 and is used to fix the arc-shaped plate 41. The fixing assembly 5 includes a fixing block 51 and a rotating rod 52. The fixing block 51 is a rectangular block structure and is slidably set in the fixing groove 42. The rotating rod 52 is a round rod structure and is rotatably set on the side wall of the fixing block 51. The other end of the rotating rod 52 extends to the outside of the arc-shaped plate 41 and is slidably connected. External threads are provided on the side walls of the two rotating rods 52, and internal threads that match the external threads are formed on the inner wall of the rotating groove 43.
[0036] When workers need to connect the arc-shaped plate 41 to the cooler housing 11, they can bypass the first branch pipe 21, the second branch pipe 3, and the outlet pipe 4 through the notch in the arc-shaped plate 41, thus reducing the difficulty of installing the arc-shaped plate 41. At this time, workers only need to place the arc-shaped plate 41 onto the cooler housing 11 and press the rotating rod 52 to make the external thread abut against the inner wall of the rotating groove 43. Then, workers only need to rotate the rotating rod 52 to connect the internal and external threads, thus stabilizing the rotating rod 52 and causing the fixing block 51 to abut against the side wall of the cooler housing 11, thereby stabilizing the arc-shaped plate 41.
[0037] One end of each of the two tension springs 7 on the same arc plate 41 is fixed to the side walls of the two fixing blocks 51 that are far apart from each other, and the other end of each of the two tension springs 7 is fixed to the inner walls of the two fixing grooves 42 that are far apart from each other.
[0038] When the operator separates the internal thread from the external thread, the operator only needs to release the rotating rod 52 to reset the fixed block 51 under the action of the tension spring 7, thereby separating the fixed block 51 from the side wall of the cooler shell 11, thus reducing the difficulty of operation for the operator.
[0039] To improve the user experience, a handle 8 is fixed to the upper end of the rotating rod 52 to reduce the difficulty for the operator in rotating the rod 52. The silicone block 81 has a block-shaped structure, and two silicone blocks 81 on the same arc plate 41 are respectively set on the side walls of the two fixing blocks 51 that are close to each other, in order to improve the fixing effect of the fixing blocks 51.
[0040] The silicone block 81 increases the upper limit of static friction between the fixing block 51 and the side wall of the cooler housing 11, thereby improving the fixing effect of the fixing block 51 on the cooler housing 11 and thus improving the user experience of the staff.
[0041] To reduce the probability of damage to the cooler casing 11 when subjected to external forces, the baffle plate 61 is made of UHPC. Ultra-high performance concrete, or UHPC for short, is the most innovative cement-based engineering material of the past thirty years, achieving a major leap in the performance of engineering materials. The baffle plate 61 made of UHPC has high strength, high durability, and lightweight high strength characteristics, thereby reducing the probability of deformation of the baffle plate 61 when subjected to external forces, and thus reducing the probability of damage to the cooler casing 11 when subjected to external forces.
[0042] To reduce the difficulty for workers installing the baffle plate 61, both ends of the baffle plate 61 are rounded. The rubber block 9 is a circular block structure, and multiple rubber blocks 9 are provided and evenly distributed on the side wall of the baffle plate 61 near the cooler shell 11.
[0043] When the baffle plate 61 is subjected to an external force, the baffle plate 61 deforms under the action of the external force. The rubber block 9 reduces the degree of deformation of the baffle plate 61, thereby further reducing the probability of the spiral liquid distribution pipe inside the cooler shell 11 being impacted by external force, thus improving the user experience of the staff.
[0044] The working principle of the reinforced cooler cylinder in this embodiment is as follows: When the operator needs to rapidly cool the recovered cutting fluid, the operator needs to inject the recovered cutting fluid into the cutting fluid inlet pipe 2, so that the cooling water in the cooling water inlet pipe 31 can dissipate heat from the recovered cutting fluid. During this process, the operator needs to connect multiple arc-shaped plates 41 to the cooler shell 11 in sequence, and connect the two ends of multiple baffle plates 61 to the sliding grooves 6 on the two arc-shaped plates 41 respectively. This allows the multiple baffle plates 61 and multiple arc-shaped plates 41 to cooperate with each other to protect the cooler shell 11, thereby reducing the probability of damage to the cooler shell 11 when the cooler is subjected to external forces, and thus improving the operator's user experience.
[0045] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.
Claims
1. A reinforced cooler shell, comprising a cutting fluid outlet pipe (1), a cooler housing (11) connected to the cutting fluid outlet pipe (1), a cutting fluid inlet pipe (2) connected to the cooler housing (11), a first branch pipe (21) installed on the side wall of the cooler housing (11), a second branch pipe (3) installed on the side wall of the cooler housing (11), a cooling water inlet pipe (31) jointly installed on the first branch pipe (21) and the second branch pipe (3), and a water outlet pipe (4) installed on the cooler housing (11), characterized in that: Multiple arc-shaped plates (41) are slidably disposed on the side wall of the cooler housing (11), and a fixing component (5) for fixing the arc-shaped plates (41) is provided on the cooler housing (11).
2. The reinforced cooler shell according to claim 1, characterized in that: Multiple sliding grooves (6) are provided on the two opposite side walls of the multiple arc-shaped plates (41), and a baffle plate (61) is installed in the sliding groove (6).
3. The reinforced cooler shell according to claim 2, characterized in that: The inner wall of the arc plate (41) has two opposing fixing grooves (42), and the inner wall of each fixing groove (42) has a rotating groove (43). The fixing component (5) includes a fixing block (51) slidably disposed in the fixing groove (42) and a rotating rod (52) rotatably disposed on the side wall of the fixing block (51). The other end of the rotating rod (52) extends to the outside of the arc plate (41) and is slidably connected.
4. The reinforced cooler shell according to claim 3, characterized in that: The two rotating rods (52) have external threads on their sidewalls, and the rotating groove (43) has internal threads that match the external threads on its inner wall.
5. The reinforced cooler shell according to claim 4, characterized in that: Tension springs (7) are fixed on the side walls of the two fixed blocks (51) that are far apart from each other, and the other ends of the two tension springs (7) are respectively fixed on the inner walls of the two fixed grooves (42) that are far apart from each other.
6. The reinforced cooler shell according to claim 5, characterized in that: The upper end of the rotating rod (52) is fixed with a handle (8) to reduce the difficulty for workers to rotate the rotating rod (52).
7. The reinforced cooler shell according to claim 6, characterized in that: Both of the two fixing blocks (51) are provided with silicone blocks (81) on their sidewalls that are close to each other to improve the fixing effect of the fixing blocks (51).
8. The reinforced cooler shell according to claim 7, characterized in that: The barrier plate (61) is a barrier plate (61) made of UHPC.
9. The reinforced cooler shell according to claim 8, characterized in that: Both ends of the barrier plate (61) are provided with rounded corners to reduce the difficulty for workers to install the barrier plate (61).
10. The reinforced cooler shell according to claim 9, characterized in that: The barrier plate (61) has multiple equally spaced rubber blocks (9) on its side wall near the cooler housing (11).
Citation Information
Patent Citations
Cutter cooler
CN222037783U