Efficient washing and drying equipment for cloth
Through the combination of extrusion and cooling and cooling mechanisms, the problems of high energy consumption and uneven temperature of fabric drying are solved, and an efficient and safe fabric drying process is achieved, which improves the operating efficiency and fabric quality of the equipment.
Patent Information
- Application Number
- CN202510835954.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-20
- Publication Date
- 2025-09-02
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing fabric drying process has high energy consumption and low efficiency. The large internal moisture content of the fabric leads to a long drying time. The hot air drying method has safety hazards and fabric quality problems caused by uneven temperature, such as scalds and wrinkles.
The extrusion mechanism and cooling cooling mechanism are adopted to achieve efficient drying and temperature control through the guidance mechanism, the washing mechanism cleaning, the drying mechanism drying and the cooling cooling mechanism cooling mechanism.
It improves drying efficiency, reduces energy consumption, avoids fabric scalds and wrinkles, and improves the service life and operation safety of the equipment.
Smart Images

Figure CN120576564A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cloth washing and drying, and in particular to a high-efficiency cloth washing and drying device. Background Art
[0002] Fabric washing and drying equipment is a type of textile processing equipment that combines washing and drying functions. It is primarily used to clean fabrics and remove stains and impurities. It then evaporates the moisture from the fabric using hot air or other drying methods, allowing it to dry quickly. This equipment typically includes a washing tank, drying oven, hot air system, and control system. It efficiently and continuously completes the fabric washing and drying process and is widely used in the textile, printing and dyeing, and garment processing industries to improve production efficiency, ensure fabric quality, and reduce energy consumption.
[0003] In existing fabric processing processes, fabrics typically enter the drying stage directly after being rinsed by a rinsing mechanism. However, due to the high moisture content of the fabric, direct drying is not only time-consuming but also consumes a large amount of electricity, resulting in low energy efficiency. Furthermore, in traditional processes, fabrics are generally dried using hot air blowers after washing. However, this process presents several technical challenges. First, the surface temperature of the freshly dried fabric is high, often exceeding the safe contact temperature for human body, posing a risk of burns to workers and endangering their personal safety. Second, hot air drying can easily lead to uneven surface temperature distribution. When the hot-drying fabric is directly rolled or stacked, the stress differences between different temperature zones can cause surface wrinkles and deformation, seriously affecting the fabric's flatness, appearance, and subsequent processing performance. Therefore, optimizing the fabric drying process to improve energy efficiency while effectively controlling the fabric surface temperature to avoid fabric quality issues caused by uneven temperature has become a pressing technical challenge in the current fabric processing field. Summary of the Invention
[0004] One object of the present invention is to provide an efficient cloth washing and drying device. The present invention aims to solve the problems of the existing cloth drying process mentioned in the above background, such as high energy consumption and low efficiency, long drying time and serious power waste caused by the large water content inside the cloth, and safety hazards and cloth quality problems caused by the hot air drying method. For example, high surface temperature can easily cause burns, and uneven temperature causes wrinkles and deformation, which affects the flatness and processing performance of the cloth.
[0005] A cloth high-efficiency washing and drying device according to an embodiment of the present invention comprises:
[0006] The guide mechanism is installed inside the outer box and is used to guide the fabric when it is transported inside the outer box;
[0007] The washing mechanism is installed inside the outer box and is used to perform reciprocating swinging high-efficiency cleaning on the fabric;
[0008] The drying mechanism is installed inside the outer box to efficiently dry the washed fabrics;
[0009] The cooling mechanism is installed in the lower part of the outer box, collects the cleaned water and sends it into the water tank, and cools the surface of the fabric through the heat-conducting film. The cooling mechanism includes a water supply pipe, a water tank and a heat-conducting film. The heat-conducting film is fixedly installed on one side of the water tank, and one end of the water supply pipe is fixedly connected to the upper part of one side of the water tank.
[0010] The extrusion mechanism is installed on the upper inner part of the outer box, and the water flow inside the water supply pipe of the cooling mechanism provides power to enable the extrusion roller to squeeze water out of the cloth, so that the subsequent drying of the drying mechanism is more efficient; the extrusion mechanism includes an extrusion roller and blades, the blades are fixedly connected to the side surface of the rotating shaft, the rotating shaft passes through and is rotatably connected to both sides of the water supply pipe, both ends of the rotating shaft are fixedly connected to a second bevel gear, the upper inner parts of both sides of the outer box are fixedly connected to extrusion columns, an extrusion lifting groove is provided inside the extrusion column, an extrusion screw is rotatably connected inside the extrusion lifting groove, the side surface of the extrusion screw is threadedly connected to a sliding block, and the extrusion roller is rotatably connected to one side of the sliding block.
[0011] Preferably, a transparent glass is fixedly connected to one side surface of the outer box, and a control panel for controlling the device is fixedly connected to a corner of one side surface of the outer box.
[0012] Preferably, the guide mechanism includes a first guide roller, a second guide roller, a third guide roller, a fourth guide roller, a fifth guide roller and a winding roller. The first guide roller, the second guide roller, the third guide roller, the fourth guide roller, the fifth guide roller and the winding roller are all rotatably connected to the inner wall of the outer box. The third guide roller is transmission-connected to the output end of the drive motor, and the drive motor is fixedly connected to the upper outer surface of the outer box through a motor seat.
[0013] Preferably, the output end of the driving motor is transmission-connected with a first gear, one end of the guide roller is fixedly connected with a second gear, and the first gear and the second gear are connected to each other via a first transmission belt.
[0014] Preferably, the washing mechanism includes a strip pipe, a first turntable, a second turntable and a third turntable. The strip pipes are provided in two groups. The two groups of strip pipes are rotatably connected to the inner upper part of the outer box through the second turntable and the third turntable respectively. One side surface of the two groups of strip pipes is fixedly connected with a nozzle, and clean water flows into the interior of the two groups of strip pipes.
[0015] Preferably, the side surfaces of the second turntable are respectively fixedly connected with the second meshing teeth and the third meshing teeth, the second turntable and the third turntable are meshed with each other through the third meshing teeth and the fourth meshing teeth, the fourth meshing teeth are fixedly connected to the side surface of the third turntable, the first turntable is fixedly connected to one end of the third guide roller, the side surface of the first turntable is fixedly connected with the first meshing teeth, the first turntable and the second turntable are meshed with each other through the first meshing teeth and the second meshing teeth, the inner wall surface of the outer box is rotatably connected with a rotating rod, and a spring structure is installed between the rotating rod and the surface of the second turntable.
[0016] Preferably, the drying mechanism includes a drying device and a drying column, the drying column is fixedly connected to the inner upper part of the outer box, two groups of drying columns are provided, the inner sides of the two groups of drying columns are provided with a drying lifting groove, the upper surface of the drying column is fixedly connected to a driving motor, the output end of the driving motor is transmission-connected to a drying screw, the drying device is threadedly connected to the side surface of the drying screw, two groups of drying screws are provided, the upper ends of the two groups of drying screws are respectively fixedly connected with driving teeth and driven teeth, and the driving teeth and driven teeth are connected to each other by a second transmission belt.
[0017] Preferably, the end of the water supply pipe away from the water tank is fixedly connected to the lower end of the water inlet hopper, the water inlet hopper is fixedly connected to the lower end of the guide plate, and the guide plate is fixedly connected to the inner wall surface of the outer box.
[0018] Preferably, the lower end of the extrusion screw is fixedly connected to a first bevel gear, and the extrusion screw and the rotating shaft are meshed with each other via first meshing teeth and second meshing teeth.
[0019] Preferably, there are two groups of water tanks, which are respectively arranged on both sides of the surface of the fabric. The two groups of water tanks are connected to each other through connecting pipes. The inner lower part of the water tank is fixedly connected to a drain pipe. The inner lower part of the water tank is provided with a metal sheet, and the upper part of the metal sheet is connected to a floating block through a connecting rope. A water leakage port is opened through the surface of the metal sheet.
[0020] The beneficial effects of the present invention are:
[0021] The present invention is provided with an extrusion mechanism and a cooling mechanism. After the cloth enters the inner part of the outer box through the guide mechanism, the cloth surface is firstly rinsed with clean water by the nozzle of the washing mechanism. The rinsed water enters the water supply pipe through the guide plate and the water inlet bucket of the cooling mechanism, and flows into the water tank through the water supply pipe. The surface of the cloth with a higher surface temperature after being dried by hot air is cooled by the heat-conducting film on one side of the water tank. At the same time, the water flows through the water supply pipe to drive the blades to rotate, and the blades drive the rotating shaft and the second bevel gear to rotate. The second bevel gear and the first bevel gear are engaged with each other to drive the extrusion screw to rotate. The two sets of extrusion rollers connected by threads on the upper part of the side surface of the extrusion screw rotate synchronously with the extrusion screw. It moves toward the fabric, squeezing a large amount of water out of the washed fabric through the squeezing of the squeezing screw, thereby improving the drying efficiency of the subsequent drying equipment. When the two sets of squeezing rollers squeeze to the limit, the squeezing screw, rotating shaft and blades stop rotating. The blades are fixed in the water supply pipe, and the speed of the water flow is slowed down by the obstruction of the blades. When the water flows into the water tank through the water supply pipe, the impact on the heat-conducting film and the fabric is reduced, thereby extending the service life of the device and preventing wrinkles on the fabric surface. The squeezing mechanism efficiently removes water and the cooling mechanism protects the fabric, thereby improving the drying efficiency. At the same time, the blades control the water flow speed to reduce internal impact, extend the service life of the equipment, and achieve high efficiency, energy saving and durability.
[0022] The present invention provides a metal sheet and a floating block. When water flows into the water tank and contacts the surfaces of both sides of the fabric through the heat-conducting film to cool down, when the water in the water tank is about to be filled, the floating block floats up and drives the metal sheet upward through the connecting rope. After the metal sheet is no longer blocking the water, the water flows out through the drain pipe. After the water level returns to a suitable position, the metal sheet is re-attached to the lower surface of the water tank to seal the drain pipe opening, ensuring that the water level in the water tank is always at a suitable height, automatically adjusting the water level to prevent overflow, ensuring the water level in the water tank is appropriate, improving the safety and stability of equipment operation, and simplifying the water level control process, reducing manual intervention, realizing intelligent management, and improving overall operational efficiency.
[0023] The present invention is provided with a washing mechanism and a guide mechanism, wherein a driving motor of the guide mechanism drives the first gear and the third guide roller to rotate, the first gear drives the second gear to rotate through the first transmission belt, thereby driving the winding roller to rotate, and the cloth after washing, drying, cooling and cooling treatment is wound up by the rotating winding roller, and at the same time, the first turntable drives the second turntable to rotate through the first meshing teeth and the second meshing teeth, and the second turntable drives the third turntable to rotate synchronously through the third meshing teeth and the fourth meshing teeth when the second turntable rotates. When the second turntable and the third turntable rotate, the strip pipe is driven to rotate synchronously. When the first meshing teeth and the second meshing teeth are engaged, the strip pipe is driven to rotate synchronously. When the teeth are engaged, the first turntable drives the second turntable to rotate in one direction, the spring structure is stretched, and when the first meshing teeth move away from the second meshing teeth, the second turntable is rotated in the other direction by the reset effect of the spring structure. In this way, the first turntable is able to swing back and forth in different directions. At the same time, since the second turntable and the third turntable are engaged with each other, the reciprocating swing of the second turntable drives the reciprocating swing of the third turntable, so that the nozzles on the side surfaces of the two sets of strip pipes can wash the two sides of the cloth synchronously, realizing efficient and uniform winding of the cloth and synchronous washing of both sides, which significantly improves the washing efficiency and effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings:
[0025] Figure 1 This is a structural schematic diagram of a high-efficiency cloth washing and drying device proposed by the present invention;
[0026] Figure 2 The invention proposes a high-efficiency cloth washing and drying device Figure 1 Enlarged view of point A in the middle;
[0027] Figure 3 This is a schematic diagram of the internal structure of the outer box of a high-efficiency cloth washing and drying device proposed by the present invention;
[0028] Figure 4 This is a schematic structural diagram of a washing mechanism in a high-efficiency cloth washing and drying device proposed by the present invention;
[0029] Figure 5 The invention proposes a high-efficiency cloth washing and drying device Figure 4 Enlarged view of point A in the middle;
[0030] Figure 6 This is a structural schematic diagram of a drying mechanism in a high-efficiency cloth washing and drying device proposed by the present invention;
[0031] Figure 7This is a structural schematic diagram of the cooling mechanism and the squeezing mechanism in a high-efficiency cloth washing and drying device proposed by the present invention;
[0032] Figure 8 The invention proposes a high-efficiency cloth washing and drying device Figure 7 Enlarged view of point B in the middle;
[0033] Figure 9 The invention proposes a high-efficiency cloth washing and drying device Figure 7 Enlarged view of point C in the middle;
[0034] Figure 10 This is a structural schematic diagram of the water tank in a high-efficiency cloth washing and drying device proposed by the present invention;
[0035] In the figure: 1. Outer box; 2. Control panel; 3. Guide mechanism; 301. First guide roller; 302. Second guide roller; 303. Third guide roller; 304. Fourth guide roller; 305. Fifth guide roller; 306. Winding roller; 307. Motor base; 308. Driving motor; 309. First gear; 310. Second gear; 311. First transmission belt; 4. Washing mechanism; 401. Strip pipe; 402. Spray nozzle; 403. First turntable; 404. Second turntable; 405. Third turntable; 406. First meshing tooth; 407. Second meshing tooth; 408. Third meshing tooth; 409. Fourth meshing tooth; 410. Spring structure; 411. Rotating rod; 5. Drying mechanism; 501. Drying vertical Column; 502, drying lifting trough; 503, driving motor; 504, driving gear; 505, driven gear; 506, second transmission belt; 507, drying screw; 508, drying equipment; 6, cooling mechanism; 601, guide plate; 602, water inlet hopper; 603, water supply pipe; 604, water tank; 605, thermal conductive film; 606, connecting pipe; 607, drainage pipe; 608, metal sheet; 609, water leakage port; 610, connecting rope; 611, floating block; 7, extrusion mechanism; 701, extrusion column; 702, extrusion lifting trough; 703, extrusion screw; 704, sliding block; 705, extrusion roller; 706, first bevel gear; 707, second bevel gear; 708, rotating shaft; 709, blade. DETAILED DESCRIPTION
[0036] The present invention will now be described in further detail with reference to the accompanying drawings, which are simplified schematic diagrams that illustrate the basic structure of the present invention in a schematic manner.
[0037] refer to Figure 1-10 , a cloth high-efficiency washing and drying device 508, including the following embodiments:
[0038] Example 1:
[0039] A high-efficiency cloth washing and drying device 508 includes a guide mechanism 3 installed inside an outer box 1 for guiding the cloth as it is conveyed inside the outer box 1; a transparent glass is fixedly connected to one side surface of the outer box 1 for directly observing the entire process of washing, drying and cooling the cloth inside the outer box 1; a control panel 2 for controlling the device is fixedly connected to a corner of one side surface of the outer box 1; the guide mechanism 3 includes a first guide roller 301, a second guide roller 302, a third guide roller 303, a fourth guide roller 304, a fifth guide roller 305 and a winding roller 306, and the first guide roller 301, the second guide roller 302, the third guide roller 303, the fourth guide roller 304, the fifth guide roller 305 and the winding roller 306 are all rotatably connected to the outer box 1 The inner wall of the outer box 1 is used to limit the transmission trajectory of the cloth inside the outer box 1 through five guide rollers. The third guide roller 303 is transmission-connected to the output end of the drive motor 308. The drive motor 308 is fixedly connected to the upper outer surface of the outer box 1 through the motor seat 307. The output end of the drive motor 308 is transmission-connected to the first gear 309. One end of the guide roller is fixedly connected to the second gear 310. The first gear 309 and the second gear 310 are connected to each other through a first transmission belt 311. The drive motor 308 drives the third guide roller 303 to rotate. At the same time, through the transmission between the first gear 309 and the second gear 310, the winding roller 306 is driven to rotate, and the cloth is moved and transmitted inside the outer box 1 through the tension of the winding roller 306.
[0040] Example 2:
[0041] The washing mechanism 4 is installed inside the outer box 1 and is used for reciprocating swinging high-efficiency cleaning of the cloth; the washing mechanism 4 includes a strip pipe 401, a first turntable 403, a second turntable 404 and a third turntable 405. The strip pipe 401 is provided with two groups, and the two groups of strip pipes 401 are respectively connected to the inner upper part of the outer box 1 through the second turntable 404 and the third turntable 405. The two groups of strip pipes 401 are respectively arranged on the left and right sides of the cloth, and the purpose of flushing the cloth surface is achieved by the reciprocating swing of the nozzles on the surface of the two groups of strip pipes 401. One side surface of the two groups of strip pipes 401 is fixedly connected with a nozzle. The two groups Clean water flows into the interior of the strip pipe 401. The side surfaces of the second turntable 404 are fixedly connected with the second meshing teeth 407 and the third meshing teeth 408 respectively. The second turntable 404 and the third turntable 405 are meshed with each other through the third meshing teeth 408 and the fourth meshing teeth 409. The fourth meshing teeth 409 are fixedly connected to the side surface of the third turntable 405. The first turntable 403 is fixedly connected to one end of the third guide roller 303. The side surface of the first turntable 403 is fixedly connected with the first meshing teeth 406. The first turntable 403 and the second turntable 404 are meshed with each other through the first meshing teeth 406 and the second meshing teeth 407. The inner wall surface of the box 1 is rotatably connected to a rotating rod 411, and a spring structure 410 is installed between the rotating rod 411 and the surface of the second rotating disk 404. The first rotating disk 403 drives the second rotating disk 404 to rotate through the first meshing teeth 406 and the second meshing teeth 407. While the second rotating disk 404 rotates, it drives the third rotating disk 405 to rotate synchronously through the third meshing teeth 408 and the fourth meshing teeth 409. When the second rotating disk 404 and the third rotating disk 405 rotate, they drive the strip pipeline 401 to rotate synchronously. When the first meshing teeth 406 and the second meshing teeth 407 are engaged, the first rotating disk 403 drives the second rotating disk 404 to rotate in one direction. , the spring structure 410 is stretched, and when the first meshing tooth 406 moves away from the second meshing tooth 407, the second turntable 404 is rotated in the other direction through the reset effect of the spring structure 410, and the first turntable 403 is reciprocated in different directions. At the same time, since the second turntable 404 and the third turntable 405 are engaged with each other, the reciprocating swing of the second turntable 404 drives the reciprocating swing of the third turntable 405, so that the nozzles on the side surfaces of the two groups of strip pipes 401 synchronously rinse the surfaces of both sides of the cloth, realizing efficient and uniform winding of the cloth and synchronous rinsing of both sides, which significantly improves the washing efficiency and effect.
[0042] Example 3:
[0043] The drying mechanism 5 is installed inside the outer box 1 to efficiently dry the washed fabrics; the drying mechanism 5 includes a drying device 508 and a drying column 501, the drying column 501 is fixedly connected to the inner upper part of the outer box 1, and two groups of drying columns 501 are provided. The inner sides of the two groups of drying columns 501 are provided with a drying lifting groove 502, and the upper surface of the drying column 501 is fixedly connected to the driving motor 503, and the output end of the driving motor 503 is transmission-connected to the drying screw 507, and the drying device 508 is threadedly connected to the side surface of the drying screw 507. The drying screw 507 is provided with two groups, and the upper surfaces of the two groups of drying screws 507 are fixedly connected to the drying screw 507. The ends are respectively fixedly connected with a driving tooth 504 and a driven tooth 505, and the driving tooth 504 and the driven tooth 505 are connected to each other by a second transmission belt 506. The driving motor 503 drives the drying screw 507 to rotate, so that the drying device 508 can move up and down on the surface of the cloth, thereby facilitating the control of the distance between the drying device 508 and the cloth to adapt to the different drying times and distances required for cloths of different sizes and materials. The second transmission belt 506 connects the driving tooth 504 and the driven tooth 505 to make the two sets of drying screws 507 rotate synchronously, so that the drying device 508 can ensure its stability while rising and falling and sliding.
[0044] Example 4:
[0045] The cooling mechanism 6 is installed in the lower part of the outer box 1, collects the cleaned water and sends it to the water tank 604, and cools the surface of the cloth through the heat-conducting film 605. The cooling mechanism 6 includes a water supply pipe 603, a water tank 604 and a heat-conducting film 605. The heat-conducting film 605 is fixedly installed on one side of the water tank 604, and one end of the water supply pipe 603 is fixedly connected to the upper part of one side of the water tank 604. The squeezing mechanism 7 is installed in the upper part of the outer box 1. The water flow in the water supply pipe 603 of the cooling mechanism 6 provides power to the squeezing roller 705 to squeeze water out of the cloth, making the subsequent drying of the drying mechanism 5 more efficient.The squeezing mechanism 7 includes a squeezing roller 705 and a blade 709. The blade 709 is fixedly connected to the side surface of the rotating shaft 708. The rotating shaft 708 runs through and is rotatably connected to both sides of the water supply pipe 603. Both ends of the rotating shaft 708 are fixedly connected to a second bevel gear 707. The upper part of both sides of the inner part of the outer box 1 is fixedly connected to an squeezing column 701. An squeezing lifting groove 702 is provided inside the squeezing column 701. The interior of the squeezing lifting groove 702 is rotatably connected to an squeezing screw 703. The side surface of the squeezing screw 703 is threadedly connected to a sliding block 704. The squeezing roller 705 is rotatably connected to one side of the sliding block 704. The end of the water supply pipe 603 away from the water tank 604 is fixedly connected to the lower end of the water inlet bucket 602. The water inlet bucket 602 is fixedly connected to the guide At the lower end of the plate 601, the guide plate 601 is fixedly connected to the inner wall surface of the outer box 1, and the lower end of the extrusion screw 703 is fixedly connected to the first bevel gear 706. The extrusion screw 703 and the rotating shaft 708 are meshed with each other through the first meshing teeth 406 and the second meshing teeth 407. The water tank 604 is provided with two groups, and the two groups of water tanks 604 are respectively arranged on both sides of the surface of the cloth. The two groups of water tanks 604 are connected to each other through a connecting pipe 606. The inner lower part of the water tank 604 is fixedly connected with a drain pipe 607, and the inner lower part of the water tank 604 is provided with a metal sheet 608. The upper part of the metal sheet 608 is connected to a floating block 611 through a connecting rope 610. A water leakage port 609 is opened on the surface of the metal sheet 608. The cloth enters the outer box through the guide mechanism 3. After the inside of the box 1, the washing mechanism 4 first sprays clean water to rinse the surface of the cloth. The rinsed water enters the water supply pipe 603 through the guide plate 601 and the water inlet bucket 602 of the cooling mechanism 6, and flows into the water tank 604 through the water supply pipe 603. The heat-conducting film 605 on one side of the water tank 604 cools the surface of the cloth with a high surface temperature after hot air drying. At the same time, when the water flows through the water supply pipe 603, it drives the blade 709 to rotate, and the blade 709 drives the rotating shaft 708 and the second bevel gear 707 to rotate. The second bevel gear 707 and the first bevel gear 706 engage with each other to drive the extrusion screw 703 to rotate. The two sets of extrusion rollers 7 connected by threads on the upper side of the extrusion screw 703 are screwed together. 05 moves synchronously with the rotation of the squeezing screw 703 toward the direction of the cloth, and a large amount of water in the washed cloth is squeezed out by the squeezing screw 703, thereby making the subsequent drying efficiency of the drying device 508 higher. When the two sets of squeezing rollers 705 squeeze to the limit, the squeezing screw 703, the rotating shaft 708 and the blade 709 no longer rotate. The blade 709 is fixed in the water supply pipe 603. The speed of the water flow is slowed down by the obstruction of the blade 709. When the water flows into the water tank 604 through the water supply pipe 603, the impact on the heat-conducting film 605 and the cloth can be reduced, thereby extending the service life of the device while preventing wrinkles on the surface of the cloth. The squeezing mechanism 7 efficiently removes water and the cooling mechanism 6 protects the cloth, thereby improving the drying efficiency.At the same time, blades 709 control the water flow rate to mitigate internal impact, extend the service life of the equipment, and achieve high efficiency, energy saving, and durability. When water enters water tank 604 and contacts the surfaces of the fabric on both sides through thermal conductive film 605 to cool it down, when the water in water tank 604 is about to fill, float block 611 floats up and drives metal sheet 608 upward through connecting rope 610. After metal sheet 608 is no longer blocking the water, the water flows out through drain pipe 607. After the water level returns to the appropriate position, metal sheet 608 reattaches to the lower surface of water tank 604, sealing the outlet of drain pipe 607. This ensures that the water level in water tank 604 is always at the appropriate height, automatically adjusts the water level to prevent overflow, ensures that the water level in water tank 604 is appropriate, and improves the safety and stability of equipment operation. At the same time, it simplifies the water level control process, reduces manual intervention, realizes intelligent management, and improves overall operational efficiency.
[0046] During use, the fabric enters the device through an opening on one side of the outer box 1 and is then guided by a guide mechanism 3, which includes first to fifth guide rollers 305 and a take-up roller 306. These rollers are rotatably connected to the inner wall of the outer box 1, guiding the fabric along a predetermined trajectory. A drive motor 308 is fixed to the upper outer surface of the outer box 1 via a motor base 307. Its output end is connected to a first gear 309. One end of the guide roller is fixedly connected to a second gear 310. The first gear 309 and the second gear 310 are connected by a first transmission belt 311. The drive motor 308 drives the third guide roller 303 to rotate, and simultaneously drives the take-up roller 306 through a gear transmission. The tension of the take-up roller 306 causes the fabric to continuously move within the outer box 1. The washing mechanism 4 is started, and two groups of strip pipes 401 are respectively arranged on the left and right sides of the cloth, and are rotatably connected to the upper inner part of the outer box 1 through the second turntable 404 and the third turntable 405. Clean water is introduced into the strip pipes 401, and the nozzle performs reciprocating swinging flushing on the surface of the cloth. The first turntable 403 is fixedly connected to one end of the third guide roller 303, and is linked with the second turntable 404 and the third turntable 405 through meshing teeth to achieve bilateral synchronous flushing. The spring structure 410 is stretched when the turntable swings, and then resets, helping the turntable to swing in the opposite direction.Then, the cleaned water enters the water supply pipe 603 through the guide plate 601 and the water inlet bucket 602 and flows into the water tank 604 to wait for the cloth to be cooled. At the same time, when the water flows through the water supply pipe 603, it drives the blade 709 to rotate, and then drives the rotating shaft 708 and the second bevel gear 707 to rotate. The second bevel gear 707 drives the first bevel gear 706 and the extrusion screw 703 to rotate. The extrusion screw 703 drives the extrusion roller 705 to move toward the cloth to squeeze out the moisture in the cloth. The hot air drying mechanism 5 starts to work. The drying device 508 inside the drying column 501 can drive the drying screw 507 to rotate by the driving motor 503, so that the drying device 508 can be lifted and slid, so that the distance between the drying device 508 and the cloth can be adjusted at any time according to the different materials and sizes of the cloth. The surface temperature of the cloth is higher after the hot air drying. The cloth with higher temperature then enters the space between the two sets of water tanks 604. At this time, the cleaned cold water enters the water tank 604 through the water supply pipe 603. The cold water passes through the water supply pipe 603. The heat-conducting film 605 on one side of the water tank 604 cools down the cloth with a high surface temperature after being dried by hot air. At the same time, when the squeezing roller 705 of the squeezing mechanism 7 squeezes the cloth to the middle to the limit, the blade 709 in the water supply pipe 603 cannot continue to rotate. At this time, the blade 709 is fixed in the water supply pipe 603. When the water flows through the blade 709, it is decelerated by the blade 709, so that the water flows slowly into the water tank 604. On the one hand, it can prevent the water flow rate from being too fast and causing the heat-conducting film 609 to 05 damage. On the other hand, it prevents water flow from impacting the fabric surface, causing deformation and wrinkles during winding. A metal sheet 608 and a float 611 are installed in water tank 604 to monitor the water level. When water tank 604 is about to fill, float 611 rises, driving metal sheet 608 to move, opening drain pipe 607 to drain water. Once the water level returns to the proper level, metal sheet 608 is reattached to the lower surface of water tank 604, sealing drain pipe 607. The entire process achieves efficient, energy-saving, and durable fabric processing. The coordinated operation of these mechanisms not only improves washing and drying efficiency, but also ensures fabric quality and the long-term operation of the equipment.
[0047] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.
Claims
1. A highly efficient cloth washing and drying device, characterized in that: include A guide mechanism (3) is installed inside the outer box (1) and is used to guide the cloth when it is transported inside the outer box (1); A washing mechanism (4) is installed inside the outer box (1) and is used for performing reciprocating swing-type high-efficiency cleaning on the cloth; A drying mechanism (5) is installed inside the outer box (1) to efficiently dry the washed fabrics; The cooling mechanism (6) is installed in the lower part of the outer box (1), collects the cleaned water and sends it to the water tank (604) to cool the surface of the fabric through the heat-conducting film (605); the cooling mechanism (6) includes a water supply pipe (603), a water tank (604) and a heat-conducting film (605), the heat-conducting film (605) is fixedly installed on one side of the water tank (604), and one end of the water supply pipe (603) is fixedly connected to the upper part of one side of the water tank (604); The squeezing mechanism (7) is installed in the upper part of the outer box (1), and uses the water flow inside the water supply pipe (603) of the cooling mechanism (6) to provide power to the squeezing roller (705) to squeeze water out of the cloth, so that the subsequent drying mechanism (5) can dry more efficiently; the squeezing mechanism (7) includes a squeezing roller (705) and a blade (709), the blade (709) is fixedly connected to the side surface of the rotating shaft (708), and the rotating shaft (708) is connected to both sides of the water supply pipe (603) through rotation. Both ends of the rotating shaft (708) are fixedly connected to the second bevel gear (707), and the upper parts of both sides of the interior of the outer box (1) are fixedly connected to the extrusion columns (701), and the interior of the extrusion columns (701) is provided with an extrusion lifting groove (702), and the interior of the extrusion lifting groove (702) is rotatably connected to an extrusion screw (703), and the side surface of the extrusion screw (703) is threadedly connected to a sliding block (704), and the extrusion roller (705) is rotatably connected to one side of the sliding block (704).
2. The high-efficiency cloth washing and drying device according to claim 1, characterized in that: A transparent glass is fixedly connected to one side surface of the outer box (1), and a control panel (2) for controlling a device is fixedly connected to a corner of one side surface of the outer box (1).
3. The high-efficiency cloth washing and drying device according to claim 1, characterized in that: The guide mechanism (3) comprises a first guide roller (301), a second guide roller (302), a third guide roller (303), a fourth guide roller (304), a fifth guide roller (305) and a winding roller (306); the first guide roller (301), the second guide roller (302), the third guide roller (303), the fourth guide roller (304), the fifth guide roller (305) and the winding roller (306) are all rotatably connected to the inner wall of the outer box (1); the third guide roller (303) is transmission-connected to the output end of a drive motor (308); and the drive motor (308) is fixedly connected to the upper outer surface of the outer box (1) via a motor base (307).
4. The high-efficiency cloth washing and drying device according to claim 3, characterized in that: The output end of the driving motor (308) is transmission-connected to a first gear (309), one end of the guide roller is fixedly connected to a second gear (310), and the first gear (309) and the second gear (310) are interconnected via a first transmission belt (311).
5. The high-efficiency cloth washing and drying device according to claim 1, characterized in that: The washing mechanism (4) comprises a strip pipeline (401), a first turntable (403), a second turntable (404) and a third turntable (405). The strip pipeline (401) is provided in two groups. The two groups of strip pipelines (401) are rotatably connected to the inner upper part of the outer box (1) through the second turntable (404) and the third turntable (405), respectively. One side surface of the two groups of strip pipelines (401) is fixedly connected to a nozzle (402), and clean water is introduced into the interior of the two groups of strip pipelines (401).
6. The high-efficiency cloth washing and drying device according to claim 5, characterized in that: The side surfaces of the second turntable (404) are respectively fixedly connected with second meshing teeth (407) and third meshing teeth (408); the second turntable (404) and the third turntable (405) are meshed with each other through the third meshing teeth (408) and the fourth meshing teeth (409); the fourth meshing teeth (409) are fixedly connected to the side surface of the third turntable (405); the first turntable (403) is fixedly connected to one end of the third guide roller (303); the side surface of the first turntable (403) is fixedly connected with first meshing teeth (406); the first turntable (403) and the second turntable (404) are meshed with each other through the first meshing teeth (406) and the second meshing teeth (407); the inner wall surface of the outer box (1) is rotatably connected with a rotating rod (411); a spring structure (410) is installed between the rotating rod (411) and the surface of the second turntable (404).
7. The high-efficiency cloth washing and drying device according to claim 1, characterized in that: The drying mechanism (5) comprises a drying device (508) and a drying column (501), wherein the drying column (501) is fixedly connected to the inner upper part of the outer box (1), and the drying column (501) is provided with two groups, and the inner sides of the two groups of drying columns (501) are provided with a drying lifting groove (502), the upper surface of the drying column (501) is fixedly connected to a driving motor (503), and the output end of the driving motor (503) is transmission-connected to a drying screw (507), and the drying device (508) is threadedly connected to the side surface of the drying screw (507), and the drying screw (507) is provided with two groups, and the upper ends of the two groups of drying screws (507) are respectively fixedly connected to a driving tooth (504) and a driven tooth (505), and the driving tooth (504) and the driven tooth (505) are connected to each other through a second transmission belt (506).
8. The high-efficiency cloth washing and drying device according to claim 1, characterized in that: One end of the water supply pipe (603) away from the water tank (604) is fixedly connected to the lower end of the water inlet hopper (602), the water inlet hopper (602) is fixedly connected to the lower end of the guide plate (601), and the guide plate (601) is fixedly connected to the inner wall surface of the outer box (1).
9. The high-efficiency cloth washing and drying device according to claim 1, characterized in that: The lower end of the extrusion screw (703) is fixedly connected to a first bevel gear (706), and the extrusion screw (703) and the rotating shaft (708) are meshed with each other via a first meshing tooth (406) and a second meshing tooth (407).
10. The high-efficiency cloth washing and drying device according to claim 1, characterized in that: Two groups of water tanks (604) are provided. The two groups of water tanks (604) are respectively provided on both sides of the surface of the cloth. The two groups of water tanks (604) are connected to each other via a connecting pipe (606). A drainage pipe (607) is fixedly connected to the inner lower part of the water tank (604). A metal sheet (608) is provided at the inner lower part of the water tank (604). The upper part of the metal sheet (608) is connected to a floating block (611) via a connecting rope (610). A water leakage port (609) is opened through the surface of the metal sheet (608).