Container accessory machining device
Through the water inlet and condensation mechanism of the container accessories processing device, the problem of waste of water resources in the quenching device is solved, and efficient recycling and automated operation of water vapor are achieved.
Patent Information
- Application Number
- CN202510539361.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-27
- Publication Date
- 2025-08-01
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When the existing quenching device is working, high-temperature workpieces will cause a large amount of cooling water to evaporate, forming water vapor without an effective recycling mechanism, resulting in waste of water resources.
A container accessories processing device is designed, including a water inlet mechanism and a condensing mechanism, which realizes automatic transport of accessories through the rotating shaft and support arm, and uses a condensing mechanism to recover water vapor during cooling to prevent the formation of water vapor.
It realizes efficient recycling of water vapor, avoids waste of water resources, improves water utilization, and reduces the labor intensity of staff.
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Figure CN120400469A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of container fitting processing, and specifically, to a container fitting processing device. Background Art
[0002] During the production and processing of container fittings (such as corner fittings or steel materials), it is necessary to quench the container fittings to improve their hardness and strength.
[0003] After retrieval, the Chinese patent application number is "CN202320182426.8", which discloses a quenching device for container corner fittings, including a quenching tank filled with cold water. At the top opening of the quenching tank, two symmetrically arranged support plates are fixed. A... is rotatably connected to the two support plates. While being driven by the motor and cooperating with the action of multiple components, the scraper can reciprocate on the surface of the filter screen, effectively avoiding the blockage of the filter screen. Moreover, by starting the solenoid valve, the cold water used for a long time is drained, and by starting the motor, loosening multiple screws, and detaching the sealing plate connected to the mounting plate from the corresponding sewage outlet, it is possible to conveniently clean the impurities intercepted on the filter screen.
[0004] The inventor found the following problems in the prior art during the implementation of the present invention:
[0005] When the existing quenching device is working, the high-temperature workpiece will cause a large amount of cooling water to evaporate, forming a large amount of water vapor, but there is no mechanism for recovering the water vapor, resulting in a large waste of water resources.
[0006] Therefore, it is an urgent problem to be solved by the present invention to provide a container fitting processing device that can automatically transfer the fittings through the water inlet mechanism during use so that the fittings can freely enter and exit the water tank, and during the process of being immersed in the water tank, the water vapor generated by the fittings during the cooling process can be recovered through the condensation mechanism, avoiding the waste of water resources and improving the recovery rate. Summary of the Invention
[0007] Aiming at the above technical problems, the object of the present invention is to overcome the problem that when the existing quenching device is working, the high-temperature workpiece will cause a large amount of cooling water to evaporate, forming a large amount of water vapor, but there is no mechanism for recovering the water vapor, resulting in a large waste of water resources. Thus, a container fitting processing device is provided that can automatically transfer the fittings through the water inlet mechanism during use so that the fittings can freely enter and exit the water tank, and during the process of being immersed in the water tank, the water vapor generated by the fittings during the cooling process can be recovered through the condensation mechanism, avoiding the waste of water resources and improving the recovery rate.
[0008] To achieve the above object, the present invention provides a container fitting processing device, including: a water tank, a water inlet mechanism capable of putting the heated fittings into the water tank for cooling, and a condensation mechanism for condensing the water vapor generated by the fittings during cooling so that the water vapor turns from a gaseous state to liquid water upon cooling and then is recycled;
[0009] The water inlet mechanism includes: a rotating shaft, a support arm, a gas collecting hood, and a fixture for clamping the fittings; wherein,
[0010] The rotating shaft is vertically and rotatably arranged beside the water tank, and a support arm that can move up and down along its shaft and rotate accordingly is arranged on the rotating shaft. A gas collecting hood with an open bottom is arranged below the support arm. A fixture for clamping the fittings is arranged inside the gas collecting hood. A condensation mechanism is arranged on the support arm, and the condensation mechanism is connected to the inside of the gas collecting hood through an air inlet pipe to recover the hot air generated by the fittings after they enter the water into the condensation mechanism.
[0011] Preferably, the condensation mechanism includes: a first condensation box and a first fan; wherein,
[0012] The first condensation box is vertically fixed at the upper end of the support arm, and an air inlet pipe and a liquid discharge pipe are respectively connected and fixed at its top and bottom ends. The other end of the air inlet pipe is connected and fixed to the gas collecting hood, and a first fan capable of sucking the hot air collected in the gas collecting hood into the first condensation box is arranged on the air inlet pipe. Inside the first condensation box between the air inlet end of the air inlet pipe and the liquid discharge end of the liquid discharge pipe, a number of condensation plates are uniformly and obliquely fixed along its height direction, and a number of through holes are uniformly and vertically penetrated through each condensation plate.
[0013] Preferably, the condensation mechanism further includes: a second condensation box and a second fan; wherein,
[0014] The second condensation box having the same structure as the first condensation box is vertically fixed beside the first condensation box. A connecting pipe is connected and fixed to the side wall of the first condensation box between the lowermost condensation plate and the liquid discharge pipe, and the other end of the connecting pipe is connected and fixed to the top of the second condensation box. A second fan for sucking the hot air in the first condensation box into its interior from the top of the second condensation box is arranged on the connecting pipe.
[0015] Preferably, a number of semiconductor refrigerators capable of refrigerating the interiors of the first condensation box and the second condensation box are respectively and uniformly fixed on the outer walls on both sides of the first condensation box and the second condensation box, and the refrigerating ends of each semiconductor refrigerator abut against the first condensation box or the second condensation box.
[0016] Preferably, the fixture includes: a pair of clamping plates; wherein,
[0017] An assembly rod is horizontally and fixedly arranged inside the air collecting hood. Two clamping arms are arranged on the assembly rod at intervals and movably. At the bottom ends of the two clamping arms, two clamping plates which are used in cooperation are horizontally and fixedly arranged respectively. On both sides of the air collecting hood, two electric telescopic rods corresponding to the two clamping plates are horizontally and fixedly penetrated respectively, and the telescopic ends of the two electric telescopic rods are fixedly arranged on the two clamping plates respectively.
[0018] Preferably, a base with a hollow structure inside is horizontally and fixedly arranged beside the water tank. The rotating shaft is vertically and rotatably arranged through the base. Inside the base, a driving motor for driving the rotating shaft to rotate is vertically and fixedly arranged. The output shaft of the driving motor is coaxially connected with the bottom end of the rotating shaft through a coupling. The top end of the rotating shaft is horizontally and fixedly provided with a support plate. On the support plate, a lifting driving mechanism capable of driving the support arm to lift along the shaft body of the rotating shaft is fixedly arranged.
[0019] Preferably, the lifting driving mechanism includes: a support rod, a lifting motor and a pulling rope; wherein,
[0020] The lifting motor is horizontally and fixedly arranged on the support plate, and a winding wheel is coaxially and fixedly arranged on its output shaft. A pulling rope is fixedly arranged on the winding wheel. The free end of the pulling rope is fixedly arranged on the support arm. On the support plates on both sides of the rotating shaft, two support rods capable of abutting against the upper end of the base are vertically and fixedly arranged respectively. Through holes for the rotating shaft and the support rods to pass through are vertically penetrated on the support arm respectively.
[0021] Preferably, a ball is rotatably arranged at the bottom end of each support rod.
[0022] According to the above technical solution, the beneficial effects of the container fitting processing device provided by the present invention during use are as follows:
[0023] (1) During use, after the support arm is lowered along the rotating shaft to a proper position, the heated fitting is clamped inside the air collecting hood by a fixture. The support arm is driven to drive the fitting to rise along the shaft body of the rotating shaft to a height higher than the height of the water tank. Then, the rotating shaft is driven to rotate so that the support arm drives the fitting to rotate horizontally to the upper part of the water tank. The support arm is driven to descend along the shaft body of the rotating shaft again until the open end of the air collecting hood contacts or enters the water surface in the water tank. At the same time, all the fittings inside the air collecting hood are immersed in the water in the water tank. When the heated fitting is immersed in the water, the water around it quickly vaporizes to form water vapor and is collected inside the air collecting hood by the air collecting hood. At this time, the condensing mechanism is started so that the vaporized water vapor enters the condensing mechanism through the air inlet pipe, and the vaporized water vapor is cooled to form liquid water ice and is collected inside it, thereby avoiding the waste of water.
[0024] (2) After the fitting is cooled, drive the support arm to rise along the shaft of the rotating shaft until the fitting is above the water tank, then rotate the rotating shaft in the reverse direction so that the support arm drives the fitting back to its initial position, and drive the support arm to descend along the shaft of the rotating shaft to a proper position for discharging the cooled fitting.
[0025] (3) By arranging the fixture in the air collecting hood, the present invention prevents the water around the fitting from rapidly vaporizing and forming water vapor when the heated fitting is immersed in water, thereby improving the recovery rate of water vapor.
[0026] (4) Through the water inlet mechanism, the present invention can realize the function of automatically operating the fitting, saving time and effort and avoiding a large workload for the staff.
[0027] In summary, through the water inlet mechanism, the present invention can realize the automatic transfer of the fitting so that the fitting can freely enter and exit the water tank, and during the process of being immersed in the water tank, the condensation mechanism is used to recover the water vapor generated during the cooling process of the fitting, avoiding the waste of water resources and improving the recovery rate.
[0028] Other features and advantages of the present invention will be described in detail in the subsequent specific implementation part; and the parts not involved in the present invention are the same as the prior art or can be implemented by using the prior art. Brief Description of the Drawings
[0029] The drawings are used to provide a further understanding of the present invention, and constitute a part of the specification. Together with the following specific implementation, they are used to explain the present invention, but do not constitute a limitation to the present invention. In the drawings:
[0030] Figure 1 is a schematic structural diagram of a container fitting processing device provided in a preferred embodiment of the present invention;
[0031] Figure 2 is a structural sectional view of a container fitting processing device provided in a preferred embodiment of the present invention;
[0032] Figure 3 is a schematic diagram of the working state of a container fitting processing device provided in a preferred embodiment of the present invention at a certain moment;
[0033] Figure 4 is a schematic structural diagram of the condensation mechanism of a container fitting processing device provided in a preferred embodiment of the present invention.
[0034] Description of the Reference Numerals in the Drawings
[0035] 1. Water tank; 2. Base; 3. Rotating shaft; 4. Support arm; 5. Air collecting hood; 6. Assembly rod; 7. Clamping plate; 8. Condensing mechanism; 801. First condensing box; 802. Second condensing box; 803. First fan; 804. Second fan; 9. Intake pipe; 10. Drain pipe; 11. Support plate; 12. Support rod; 13. Lifting motor; 14. Pulling rope; 15. Electric telescopic rod; 16. Semiconductor refrigerator; 17. Condensing plate. Detailed implementation manner
[0036] The following will describe in detail the specific implementation manners of the present invention with reference to the accompanying drawings. It should be understood that the specific implementation manners described herein are only for explaining and understanding the present invention, and are not used to limit the present invention.
[0037] As Figures 1-4 shown, a container fitting processing device provided by the present invention includes: a water tank 1, a water inlet mechanism capable of putting the heated fitting into the water tank 1 for cooling, and a condensing mechanism 8 for condensing the water vapor generated by the fitting during cooling so that the water vapor changes from a gaseous state to liquid water when cooled and then is recovered.
[0038] The water inlet mechanism includes: a rotating shaft 3, a support arm 4, an air collecting hood 5, and a fixture for clamping the fitting; wherein,
[0039] The rotating shaft 3 is vertically and rotatably arranged beside the water tank 1, and a support arm 4 that can be lifted along its shaft body and rotates along with the lifting is arranged on the rotating shaft 3. An air collecting hood 5 with an open bottom is arranged below the support arm 4. A fixture for clamping the fitting is arranged inside the air collecting hood 5. A condensing mechanism 8 is arranged on the support arm 4, and the condensing mechanism 8 is communicated with the inside of the air collecting hood 5 through an intake pipe 9 to recover the hot air generated by the fitting after entering the water into the condensing mechanism 8.
[0040] In the above solution, during use, lower the support arm 4 along the rotating shaft 3 to a suitable position, and then clamp the heated fitting in the air collecting hood 5 with a fixture. Drive the support arm 4 to drive the fitting to rise along the shaft body of the rotating shaft 3 to a height higher than the height of the water tank 1. Subsequently, drive the rotating shaft 3 to rotate so that the support arm 4 drives the fitting to rotate horizontally to above the water tank 1. Then, drive the support arm 4 to descend along the shaft body of the rotating shaft 3 until the opening of the air collecting hood 5 contacts or enters the water surface in the water tank 1. At the same time, all the fittings in the air collecting hood 5 are immersed in the water in the water tank 1. When the heated fitting is immersed in the water, the water around it quickly vaporizes to form water vapor and is collected inside the air collecting hood 5. At this time, start the condensation mechanism 8 so that the vaporized water vapor enters the condensation mechanism 8 through the air inlet pipe 9, and the vaporized water vapor is cooled to form liquid water ice and is collected inside it, thus avoiding waste of water.
[0041] When the cooling of the fitting is completed, drive the support arm 4 to rise along the shaft body of the rotating shaft 3 until the fitting is above the water tank 2, and rotate the rotating shaft 3 in the reverse direction so that the support arm 4 drives the fitting back to its initial position, as Figure 3 shown, and drive the support arm 4 to descend along the shaft body of the rotating shaft 3 to a suitable position for discharging the cooled fitting.
[0042] In addition, by arranging the fixture inside the air collecting hood 5, it is possible to prevent the water around the heated fitting from quickly vaporizing to form water vapor and escaping when the fitting is immersed in the water, thereby improving the recovery rate of the water vapor.
[0043] Through the water discharging mechanism, the function of automatically operating the fitting can be realized, saving time and effort and avoiding bringing a large workload to the staff.
[0044] In summary, through the water discharging mechanism of the present invention, it is possible to automatically transfer the fitting so that the fitting can freely enter and exit the water tank 1, and during the process of being immersed in the water tank 1, the condensation mechanism 8 is used to recover the water vapor generated during the cooling process of the fitting, avoiding waste of water resources and improving the recovery rate.
[0045] In a preferred embodiment of the present invention, the condensation mechanism 8 includes: a first condensation box 801 and a first blower 803; wherein,
[0046] The first condensation box 801 is vertically fixed at the upper end of the support arm 4, and an intake pipe 9 and a drain pipe 10 are respectively connected and fixed at its top and bottom ends. The other end of the intake pipe 9 is connected and fixed to the air collecting hood 5, and a first fan 803 capable of sucking the hot air collected in the air collecting hood 5 into the first condensation box 801 is provided on the intake pipe 9. Inside the first condensation box 801 between the intake end of the intake pipe 9 and the drain end of the drain pipe 10, a plurality of condensation plates 17 are evenly and obliquely fixed along its height direction, and a plurality of through holes are evenly vertically penetrated through each condensation plate 17.
[0047] In the above solution, a switching valve is provided on the drain pipe 10.
[0048] During use, start the first fan 803 to suck the gas generated by submerging the fittings in water into the first condensation box 801 from the top through the intake pipe 9. The water vapor passes through the plurality of condensation plates 17 from top to bottom in sequence. When the high-temperature water vapor encounters each condensation plate 17, it will condense into water droplets, and the condensed water droplets drip onto the bottom of the first condensation box 801 through the through holes on the condensation plate 17 for collection.
[0049] When the condensation mechanism 8 rotates to the upper side of the water tank 1 along with the support arm 4, the switching valve on the drain pipe 10 can be opened, and the liquid water accumulated in the first condensation box 801 can be discharged into the water tank 1 through the drain pipe 10 for reuse.
[0050] In a preferred embodiment of the present invention, the condensation mechanism 8 further includes: a second condensation box 802 and a second fan 804; wherein,
[0051] The second condensation box 802 having the same structure as the first condensation box 801 is vertically and fixedly arranged beside the first condensation box 801. A connecting pipe is connected and fixed to the side wall of the first condensation box 801 between the lowermost condensation plate 17 and the drain pipe 10, and the other end of the connecting pipe is connected and fixed to the top of the second condensation box 802. A second fan 804 for sucking the hot air in the first condensation box 801 into the second condensation box 802 from the top is fixedly arranged on the connecting pipe.
[0052] In the above solution, the second blower 804 is started to allow the uncondensed water vapor, i.e., the remaining water vapor, in the first condensation box 801 to enter the second condensation box 802 from the top through the connecting pipe. The water vapor entering the second condensation box 802 passes through each condensation plate 17 inside it from top to bottom in sequence to condense the remaining water vapor, and the condensed water is stored inside it. Similarly, when the condensation mechanism 8 rotates above the water tank 1 along with the support arm 4, the switch valve on the drain pipe 10 can be opened, and the liquid water accumulated in the second condensation box 802 can be discharged into the water tank 1 through the drain pipe 10 for reuse.
[0053] Through the multi-stage condensation of the condensation mechanism 8, the water vapor can be fully condensed, improving the condensation effect, fully condensing the vaporized water vapor into water and recovering it into the water tank 1 for repeated use.
[0054] In a preferred embodiment of the present invention, a plurality of thermoelectric coolers 16 capable of cooling the interiors of both are uniformly and fixedly arranged on the outer walls on both sides of the first condensation box 801 and the second condensation box 802, and the cooling ends of each thermoelectric cooler 16 abut against the first condensation box 801 or the second condensation box 802.
[0055] In the above solution, the cooling ends of the thermoelectric coolers 16 can cool the first cold box 801 and the second condensation box 802, so that the temperatures inside both are relatively low, so that the high-temperature water vapor entering their interiors can be cooled to condense into liquid water for collection.
[0056] The thermoelectric cooler 16 is a known technical means, and its specific structure and operating principle will not be described in detail here. The thermoelectric cooler has the characteristics of no noise, no vibration, no need for refrigerant, small volume, light weight, etc., and is reliable in operation, simple to operate, and easy to adjust the cooling capacity. However, its coefficient of performance is relatively small and the power consumption is relatively large, so it is mainly used in occasions with small cooling requirements and small occupied space, such as the cooling of some components in electronic equipment and radio communication equipment; some are also used in household refrigerators.
[0057] In a preferred embodiment of the present invention, the fixture includes: a pair of clamping plates 7; wherein,
[0058] An assembly rod 6 is horizontally and fixedly arranged inside the air collecting hood 5. Two clamping arms are arranged on the assembly rod 6 at intervals and movably. The bottom ends of the two clamping arms are respectively horizontally and fixedly provided with two clamping plates 7 that cooperate with each other. Two electric telescopic rods 15 corresponding to the two clamping plates 7 are respectively horizontally and fixedly penetrated through both sides of the air collecting hood 5, and their telescopic ends are respectively fixed on the two clamping plates 7.
[0059] In the above solution, the electric telescopic rod 15 can be a servo electric cylinder. A servo electric cylinder is a modular product with an integrated design of a servo motor and a lead screw, and its speed is 0.1 - 2 m / s. Due to closed-loop servo control, the control accuracy is relatively high. It has the characteristics of low cost and flexible configuration, and is the best alternative to hydraulic cylinders and pneumatic cylinders. The servo electric cylinder can operate without failure in harsh environments, and its protection level can reach IP66. It can work for a long time and achieve high strength, high speed, high-precision positioning, with smooth movement and low noise.
[0060] In a preferred embodiment of the present invention, a base 2 with a hollow structure inside is horizontally and fixedly arranged beside the water tank 1. The rotating shaft 3 is vertically and rotatably arranged through the base 2, and a driving motor for driving the rotating shaft 3 to rotate is vertically and fixedly arranged inside the base 2. The output shaft of this driving motor is coaxially connected to the bottom end of the rotating shaft 3 through a coupling. The top end of the rotating shaft 3 is horizontally and fixedly provided with a support plate 11, and a lifting driving mechanism capable of driving the support arm 4 to lift along the shaft body of the rotating shaft 3 is fixedly arranged on the support plate 11.
[0061] In the above solution, during use, by starting the driving motor, the rotating shaft 3 and the support arm 4 can be driven to rotate together. The driving motor can be a reduction motor.
[0062] In a preferred embodiment of the present invention, the lifting driving mechanism includes: a support rod 12, a lifting motor 13, and a pulling rope 14; wherein,
[0063] The lifting motor 13 is horizontally and fixedly arranged on the support plate 11, and a winding wheel is coaxially and fixedly arranged on its output shaft. The pulling rope 14 is fixedly arranged on the winding wheel. The free end of the pulling rope 14 is fixed on the support arm 4. Two support rods 12 capable of abutting against the upper end of the base 2 are respectively vertically and fixedly arranged on the support plate 11 on both sides of the rotating shaft 3. Through holes for the rotating shaft 3 and the support rods 12 to pass through are respectively vertically formed through the support arm 4.
[0064] In the above solution, during use, by starting the lifting motor 13 to drive the winding wheel on its output shaft to rotate, the pulling rope 14 is wound. While winding, the pulling rope 14 pulls the support arm 4 to rise along the shaft body of the rotating shaft 3. When the support arm 4 needs to descend, start the lifting motor 13 to drive the winding wheel to rotate in the reverse direction to unwind the pulling rope 14. During the unwinding process, the support arm 4 descends along the shaft body of the rotating shaft 3 under the action of its own gravity.
[0065] In addition, the two support rods 12 support the support plate 11 to improve the support strength of the support plate 11. After the support arm 4 is lifted or lowered along the shaft body of the rotating shaft 3 by the lifting drive mechanism, under the limiting action of the two support rods 12, the rotating shaft 3 can be rotated to drive the support arm 4 to rotate accordingly. Thus, the dual functions of rotation and lifting of the support arm 4 can be achieved.
[0066] In a preferred embodiment of the present invention, balls are rotatably provided at the bottom ends of each of the support rods 12.
[0067] In the above solution, the balls are used to convert the sliding friction between the bottom end of the support rod 12 and the base 2 into rolling friction during the rotation of the support rod 12 with the rotating shaft 3, so as to reduce the friction between the two and thus extend the service life of the two.
[0068] In summary, the container fitting processing device provided by the present invention overcomes the problem in the prior art that during the operation of the quenching device, a large amount of cooling water is evaporated by the high-temperature workpieces, forming a large amount of water vapor, and there is no mechanism for recovering the water vapor, resulting in a large waste of water resources.
[0069] The preferred embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the specific details in the above embodiments. Within the scope of the technical concept of the present invention, various simple modifications can be made to the technical solutions of the present invention, and these simple modifications all fall within the protection scope of the present invention.
[0070] In addition, it should be noted that, in the case of no contradiction, the various specific technical features described in the above specific embodiments can be combined in any suitable manner. To avoid unnecessary repetition, the present invention will not separately describe various possible combination methods.
[0071] In addition, any combination can be made between various different embodiments of the present invention as long as it does not violate the idea of the present invention, and it should also be regarded as the content disclosed by the present invention.
Claims
1. A container fitting processing device, characterized in that, include: A water tank (1), a water inlet mechanism capable of placing heated accessories into the water tank (1) for cooling, and a condensing mechanism (8) for condensing water vapor generated by the cooling accessories so that the water vapor is converted from gaseous state to liquid water upon cooling and then recovered; The water entry mechanism comprises: a rotating shaft (3), a support arm (4), an air collecting cover (5) and a clamp for clamping the accessories; wherein, The rotating shaft (3) is vertically and rotatably arranged beside the water tank (1), and a support arm (4) is provided on the rotating shaft (3) which can be raised and lowered along its axis and rotates thereafter. An air collecting hood (5) with an opening facing downward is provided below the support arm (4), and a clamp for clamping the accessories is provided inside the air collecting hood (5). A condensing mechanism (8) is provided on the support arm (4), and the condensing mechanism (8) is connected to the interior of the air collecting hood (5) through an air inlet pipe (9) so as to recover the hot air generated by the accessories after entering the water into the condensing mechanism (8).
2. The container fitting processing device according to claim 1, wherein The condensing mechanism (8) comprises: a No. 1 condensing box (801) and a No. 1 fan (803); wherein, The No. 1 condensation box (801) is vertically fixed to the upper end of the support arm (4), and the top and bottom ends thereof are connected and fixedly provided with an air inlet pipe (9) and a liquid discharge pipe (10), respectively, and the other end of the air inlet pipe (9) is connected and fixed to the air collecting hood (5), and the air inlet pipe (9) is provided with a No. 1 fan (803) capable of sucking the hot air collected in the air collecting hood (5) into the No. 1 condensation box (801), and the interior of the No. 1 condensation box (801) located between the air inlet end of the air inlet pipe (9) and the liquid discharge end of the liquid discharge pipe (10) is uniformly and obliquely fixedly provided with a plurality of condensation plates (17) along its height direction, and each of the condensation plates (17) is uniformly and vertically penetrated with a plurality of through holes.
3. The container fitting processing device according to claim 2, characterized in that, The condensing mechanism (8) further includes: a second condensing box (802) and a second fan (804); wherein, The second condensation box (802) having the same structure as the first condensation box (801) is vertically fixedly arranged beside the first condensation box (801), and a connecting pipe is fixedly arranged on the side wall of the first condensation box (801) between the lowest condensation plate (17) and the drain pipe (10), and the other end of the connecting pipe is fixedly arranged on the top of the second condensation box (802), and the connecting pipe is fixedly arranged with a second fan (804) that draws the hot air in the first condensation box (801) into the interior of the second condensation box (802) from the top.
4. The container fitting processing device according to claim 3, characterized in that, A plurality of semiconductor refrigerators (16) capable of cooling the interiors of the first condensing box (801) and the second condensing box (802) are evenly and fixedly arranged on both side outer walls thereof, and the cooling end of each semiconductor refrigerator (16) abuts against the first condensing box (801) or the second condensing box (802).
5. The container fitting processing device according to claim 1, characterized in that, The clamp comprises: a pair of clamping plates (7); wherein, An assembly rod (6) is horizontally and fixedly arranged inside the air collecting hood (5). Two clamping arms are arranged on the assembly rod (6) at intervals and movably. At the bottom ends of the two clamping arms, two clamping plates (7) which are used in cooperation are horizontally and fixedly arranged respectively. On both sides of the air collecting hood (5), two electric telescopic rods (15) corresponding to the two clamping plates (7) are horizontally and fixedly penetrated respectively, and the telescopic ends of the two electric telescopic rods are fixedly arranged on the two clamping plates (7) respectively.
6. The container fitting processing device according to claim 1, characterized in that A base (2) with a hollow structure inside is horizontally and fixedly arranged beside the water tank (1). The rotating shaft (3) is vertically arranged and rotatably penetrated through the base (2). A driving motor for driving the rotating shaft (3) to rotate is vertically and fixedly arranged inside the base (2). The output shaft of the driving motor is coaxially connected with the bottom end of the rotating shaft (3) through a coupling. The top end of the rotating shaft (3) is horizontally and fixedly provided with a support plate (11). An elevating driving mechanism capable of driving the support arm (4) to lift along the shaft body of the rotating shaft (3) is fixedly arranged on the support plate (11).
7. The container fitting processing device according to claim 6, wherein, The elevating driving mechanism includes: a support rod (12), an elevating motor (13) and a pulling rope (14); wherein, The elevating motor (13) is horizontally and fixedly arranged on the support plate (11). A winding wheel is coaxially fixedly arranged on the output shaft of the elevating motor (13). A pulling rope (14) is fixedly arranged on the winding wheel. The free end of the pulling rope (14) is fixedly arranged on the support arm (4). On the support plate (11) on both sides of the rotating shaft (3), two support rods (12) capable of abutting against the upper end of the base (2) are vertically and fixedly arranged respectively. Through holes for the rotating shaft (3) and the support rods (12) to pass through are vertically penetrated and formed on the support arm (4).
8. The container fitting processing device according to claim 7, characterized in that, A ball is rotatably arranged at the bottom end of each support rod (12).
Citation Information
Patent Citations
A quenching device for container corner fittings
CN218811907U