Drying equipment for knitted gray fabric processing
By introducing an extrusion mechanism and a hot air circulation system into the knitted fabric drying equipment, the problems of long drying time and high energy consumption are solved, and an efficient and energy-saving drying effect is achieved.
Patent Information
- Application Number
- CN202511109177.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-08
- Publication Date
- 2025-09-26
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing knitted fabric drying equipment has a long drying time and high energy consumption, which makes it difficult to meet the needs of efficient production.
A drying equipment including an extrusion mechanism and a hot air circulation system was designed. The extrusion roller presses the grey cloth on the surface of the support plate to squeeze out moisture. Combined with infrared heating and dehumidification components, the hot air is recycled to reduce the energy consumption of the equipment.
The drying time of knitted fabrics is shortened, the energy consumption of equipment is reduced, and the production efficiency and drying quality are improved.
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Figure CN120702195A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of drying equipment, in particular to a drying equipment for processing knitted grey fabrics. Background Art
[0002] Knitted fabric drying equipment is a key component of the knitted fabric production process, used to remove moisture and stabilize fabric dimensions. The equipment adjusts the temperature (typically between 60°C and 150°C), air flow rate, and operating speed based on the fabric material (such as cotton, chemical fiber, and blends) to prevent shrinkage, wrinkling, and yellowing. This ensures the fabric maintains excellent physical properties and appearance, laying the foundation for subsequent dyeing, finishing, and shaping processes.
[0003] Since the moisture content of knitted fabrics is high after dyeing or cleaning, relying entirely on heat energy to evaporate the moisture will result in a longer drying time and increased energy consumption of the equipment. Summary of the Invention
[0004] The main purpose of the present invention is to provide a drying device for knitted fabric processing, aiming to shorten the drying time of the knitted fabric and thus reduce the energy consumption of the device.
[0005] To achieve the above-mentioned objectives, the present invention proposes a drying device for processing knitted grey fabrics, comprising a shell, wherein a feed port and a discharge port are respectively provided on both sides of the shell, a drainage chamber is provided on the side of the shell near the feed port, a drying chamber is provided on the side of the shell near the discharge port, and a conveying assembly for conveying the grey fabric is provided inside the drying chamber, a first guide roller, a second guide roller, a third guide roller, and a fourth guide roller are connected to the inside of the drainage chamber in rotation in sequence, the third guide roller and the fourth guide roller have the same horizontal height, a support plate is fixedly connected to the bottom of the drainage chamber by a number of support columns, the support plate is arranged between the third guide roller and the fourth guide roller, and the horizontal height of the support plate is lower than that of the third guide roller, a number of drainage ports are provided on the support plate, and an extrusion mechanism is provided inside the drainage chamber to roll the grey fabric on the surface of the support plate.
[0006] In a possible embodiment, the extrusion mechanism includes an extrusion roller for extruding the grey cloth, a movable plate, a connecting plate arranged on the top of the movable plate, a sliding plate arranged on the top of the connecting plate, and a driving assembly for driving the sliding plate to move back and forth, the extrusion roller is rotatably connected to the movable plate, the sliding plate is fixedly connected to the connecting plate, a slide rail is fixedly connected to one side of the drainage chamber close to the sliding plate, and the sliding plate is fixedly connected to the slide rail.
[0007] In a possible embodiment, the driving assembly includes a rotating shaft rotatably connected to the interior of the drainage chamber, a support block fixedly connected to the side of the drainage chamber, a first elastic member arranged between the support block and the sliding plate, a cam that intermittently pushes the sliding plate to compress the first elastic member, and a rotating motor, one side of the rotating shaft extends to the outside of the shell, the output end of the rotating motor is fixedly connected to the rotating shaft, the cam is fixedly connected to the rotating shaft, the cam is slidably connected to the side of the sliding plate, and the two ends of the first elastic member are respectively fixedly connected to the support block and the opposite side of the sliding plate.
[0008] In a possible implementation, a fixed plate is fixedly connected to a side of the sliding plate close to the cam, a pulley is rotatably connected to the fixed plate, and the pulley is slidably connected to the cam.
[0009] In a possible embodiment, the connecting plate and the movable plate are fixedly connected by a plurality of second elastic members, and the two ends of each second elastic member are respectively fixedly connected to the connecting plate and the movable plate, a plurality of fixed rods are provided on the side of the connecting plate close to the movable plate, and each fixed rod is slidably connected to a limiting rod, one side of the limiting rod is fixedly connected to the movable plate, and each of the second elastic members is respectively sleeved on the outer surface of the fixed rod.
[0010] In one possible embodiment, the first material guide roller and the second material guide roller are at the same horizontal height, and a cloth shaking mechanism is provided between the first material guide roller and the second material guide roller, and the cloth shaking mechanism includes a swing plate, cloth shaking rollers arranged on both sides of the swing plate and rotatably connected to the swing plate, a first connecting rod, two second connecting rods, a rotating shaft, and a power component for driving the rotating shaft to rotate, the rotating shaft is rotatably connected to the inner wall of the drainage chamber, a notch is provided on the rotating shaft, one side of the two second connecting rods are respectively arranged on both sides of the notch and fixedly connected to the rotating shaft, one side of the first connecting rod is rotatably connected to the other side of the second connecting rod, and the other side of the first connecting rod is rotatably connected to one side of the swing plate, and the length of the first connecting rod is greater than the length of the second connecting rod.
[0011] In a possible embodiment, the power assembly includes a first synchronous pulley, a second synchronous pulley, and a third synchronous belt connecting the first synchronous pulley and the second synchronous pulley, the first synchronous pulley is fixedly connected to the rotating shaft, and the second synchronous pulley is fixedly connected to the side of the rotating shaft away from the shell.
[0012] In a possible embodiment, each of the cloth shaking rollers is cylindrical in shape as a whole.
[0013] In one possible embodiment, infrared heaters are provided on both sides of the inner wall of the drying chamber, a dehumidification assembly is provided on the top of the drying chamber, the dehumidification assembly includes an exhaust fan, an exhaust duct arranged on the top of the exhaust fan, a dehumidification box arranged on the top of the shell and connected to the exhaust duct, and an activated carbon plate arranged inside the dehumidification box; a return air duct is provided on the side of the dehumidification box away from the exhaust duct, and the interior of the return air duct is connected to the interior of the drying chamber.
[0014] The present invention utilizes a squeezing mechanism that rolls against the surface of the fabric on the support plate, squeezing out moisture from the fabric. The squeezed moisture then flows through the drain port into the bottom of the drainage chamber, reducing the moisture content of the fabric. This, in turn, shortens the drying time of the knitted fabric, reduces energy consumption, and improves production efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the structures shown in these drawings without paying any creative work.
[0016] Figure 1 It is a schematic diagram of the structure of the present invention; Figure 2 for Figure 1 A partial enlarged view of point A in the middle; Figure 3 It is a cross-sectional view of the present invention; Figure 4 It is a partial structural cross-sectional view of the present invention; Figure 5 for Figure 4 A partial enlarged view of point B in the middle; Figure 6 for Figure 4 A partial enlarged view of point C in the middle; Figure 7 Schematic diagram of the structure of the extrusion mechanism and the cloth shaking mechanism in this embodiment; Figure 8 for Figure 7 A partial enlarged view of point D in the middle.
[0017] Explanation of the accompanying drawings: 1. Housing; 101. Feed port; 102. Discharge port; 103. Drainage chamber; 104. Drying chamber; 105. First guide roller; 106. Second guide roller; 107. Third guide roller; 108. Fourth guide roller; 109. Support column; 110. Support plate; 1101. Drainage port; 2. Squeeze roller; 201. Moving plate; 202. Connecting plate; 203. Sliding plate; 204. Slide rail; 205. Rotating shaft; 206. Support block; 207. First elastic member; 208. Cam; 209. Rotating motor; 210. Fixed plate; 211. Pulley; 212. Second elastic member; 213. Fixed rod; 214. Limit rod; 3. Swinging plate; 301. Cloth shaking roller; 302. First connecting rod; 303. Second connecting rod; 304. Rotating shaft; 305. Notch; 306. First synchronous pulley; 307. Second synchronous pulley; 308. Third synchronous belt; 4. Infrared heater; 401. Exhaust fan; 402. Exhaust duct; 403. Dehumidification box; 404. Activated carbon plate; 405. Return air duct.
[0018] The purpose, features and advantages of the present invention will be further described with reference to the accompanying drawings and in conjunction with the embodiments. DETAILED DESCRIPTION
[0019] In order to make the purpose, technical solutions and advantages of this application more clearly understood, the present application is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this application and are not intended to limit this application.
[0020] refer to Figure 1-8 The present embodiment proposes a drying device for processing knitted grey fabrics, comprising a shell 1, with a feed port 101 and a discharge port 102 respectively provided on both sides of the shell 1, a drainage chamber 103 provided on the side of the shell 1 near the feed port 101, a drying chamber 104 provided on the side of the shell 1 near the discharge port 102, and a conveying assembly for conveying the grey fabric provided inside the drying chamber 104, the conveying assembly comprising a plurality of conveying rollers and driving parts thereof for conveying the grey fabric, which is a well-known prior art in the art, and therefore will not be described in detail in this embodiment.
[0021] Furthermore, the drainage chamber 103 is connected to the first guide roller 105, the second guide roller 106, the third guide roller 107, and the fourth guide roller 108 in rotation in sequence. The horizontal heights of the third guide roller 107 and the fourth guide roller 108 are equal. The bottom of the drainage chamber 103 is fixedly connected to a support plate 110 through a number of support columns 109. The support plate 110 is arranged between the third guide roller 107 and the fourth guide roller 108, and the horizontal height of the support plate 110 is lower than the horizontal height of the third guide roller 107. The support plate 110 is provided with a number of drainage ports 1101, and the drainage chamber 103 is provided with an extrusion mechanism that causes the grey cloth to roll on the surface of the support plate 110.
[0022] By providing a squeezing mechanism, the support plate 110 can roll the surface of the grey fabric to squeeze out moisture from the fabric. The squeezed moisture flows through the drain port 1101 into the bottom of the drainage chamber 103, thereby reducing the moisture content of the fabric, thereby shortening the drying time of the knitted fabric, reducing equipment energy consumption, and improving production efficiency.
[0023] In addition, infrared heaters 4 are installed on both sides of the inner wall of the drying chamber 104. When activated, these heaters emit infrared light. This infrared radiation directly penetrates the surface of objects and is absorbed by them. When the infrared light is absorbed by an object (such as fabric), it causes the molecules or atoms within the object to vibrate, generating heat energy. This heat energy raises the temperature of the object, heating the surface and interior of the object. As the temperature rises, the moisture in the fabric evaporates, thus drying the fabric.
[0024] Furthermore, a dehumidification assembly is provided at the top of the drying chamber 104, and the dehumidification assembly includes an exhaust fan 401, an exhaust duct 402 arranged on the top of the exhaust fan 401, a dehumidification box 403 arranged on the top of the shell 1 and connected to the exhaust duct 402, and an activated carbon plate 404 arranged inside the dehumidification box 403. A return air duct 405 is provided on the side of the dehumidification box 403 away from the exhaust duct 402, and the interior of the return air duct 405 is connected to the interior of the drying chamber 104.
[0025] The exhaust fan 401 can extract the hot air containing water vapor in the drying chamber 104, and send it into the dehumidification box 403 through the exhaust pipe 402. The activated carbon plate 404 absorbs the water vapor, and the dried air is returned to the drying chamber 104 through the return air pipe 405. This can form a hot air recycling, reduce heat loss, and reduce energy consumption. At the same time, it can ensure that the air humidity in the drying chamber 104 is within an appropriate range, avoid affecting the drying effect due to excessive humidity, improve drying efficiency and quality, and achieve energy-saving and efficient drying.
[0026] In this embodiment, the extrusion mechanism includes an extrusion roller 2 for extruding the fabric, a movable plate 201, a connecting plate 202 arranged on the top of the movable plate 201, a sliding plate 203 arranged on the top of the connecting plate 202, and a driving component for driving the sliding plate 203 to move back and forth. The extrusion roller 2 is rotationally connected to the movable plate 201, the sliding plate 203 is fixedly connected to the connecting plate 202, and a slide rail 204 is fixedly connected to the side of the drainage chamber 103 close to the sliding plate 203, and the sliding plate 203 is fixedly connected to the slide rail 204.
[0027] During use, a worker activates the drive assembly, which causes the sliding plate 203 to reciprocate along the slide rail 204. The sliding plate 203 drives the movable plate 201 to reciprocate via the connecting plate 202. The movable plate 201 then drives the squeezing roller 2 to reciprocate on the surface of the support plate 110, thereby rolling the surface of the grey fabric to reduce its moisture content. It is important to note that the grey fabric should be located between the bottom of the squeezing roller 2 and the top of the support plate 110.
[0028] By driving the sliding plate 203 to move along the slide rail 204 through the driving assembly, the squeezing roller 2 can fully and evenly squeeze the grey cloth, ensuring that the degree of moisture removal from all parts of the grey cloth is consistent, laying the foundation for subsequent stable and efficient drying, and controlling the moisture content of the grey cloth after drying within a very small range, thereby improving the drying efficiency.
[0029] Furthermore, the driving assembly includes a rotating shaft 205 rotatably connected to the inside of the drainage chamber 103, a support block 206 fixedly connected to the side of the drainage chamber 103, a first elastic member 207 arranged between the support block 206 and the sliding plate 203, a cam 208 that intermittently pushes the sliding plate 203 to compress the first elastic member 207, and a rotating motor 209. One side of the rotating shaft 205 extends to the outside of the shell 1, the output end of the rotating motor 209 is fixedly connected to the rotating shaft 205, the cam 208 is fixedly connected to the rotating shaft 205, the cam 208 is slidably connected to the side of the sliding plate 203, and the two ends of the first elastic member 207 are respectively fixedly connected to the support block 206 and the opposite side of the sliding plate 203.
[0030] During operation, a worker activates the rotary motor 209. The output of the rotary motor 209 rotates the rotating shaft 205, which in turn rotates the cam 208. The special profile design of the cam 208 enables it to intermittently push the sliding plate 203 during rotation. When the longest end of the cam 208 contacts the sliding plate 203, it pushes the sliding plate 203 to compress the first elastic member 207. When the longest end of the cam 208 disengages the sliding plate 203, the first elastic member 207 recovers its deformation, pushing the sliding plate 203 in the opposite direction, thereby achieving reciprocating motion of the squeezing roller 2.
[0031] This design allows the reciprocating motion of the sliding plate 203 to only require the rotary motor 209 to rotate in one direction, thereby avoiding wear of the rotary motor 209 due to frequent forward and reverse rotations and extending the service life of the rotary motor 209.
[0032] To reduce wear between the cam 208 and the side of the sliding plate 203, a fixed plate 210 is fixedly connected to the side of the sliding plate 203 near the cam 208. A pulley 211 is rotatably connected to the fixed plate 210 and slides in contact with the cam 208. The placement of pulley 211 changes the contact between the cam 208 and the sliding plate 203. When the cam 208 rotates, the pulley 211 rolls on the surface of the cam 208, significantly reducing friction compared to direct sliding friction. This improves the overall long-term stability and reliability of the equipment.
[0033] Secondly, the connecting plate 202 and the movable plate 201 are fixedly connected by a plurality of second elastic members 212, and the two ends of each second elastic member 212 are respectively fixedly connected to the connecting plate 202 and the movable plate 201. A plurality of fixing rods 213 are provided on the side of the connecting plate 202 close to the movable plate 201, and each fixing rod 213 is slidably connected to a limiting rod 214, one side of the limiting rod 214 is fixedly connected to the movable plate 201, and each second elastic member 212 is respectively sleeved on the outer surface of the fixing rod 213.
[0034] By providing a second elastic member 212, its ability to recover its deformation is utilized to continuously push the movable plate 201 and the squeeze roller 2 into contact with the surface of the fabric, applying a certain amount of pressure, thereby ensuring the squeezing effect of the squeeze roller 2. This design also enables the squeeze roller 2 to squeeze fabrics of varying thicknesses, eliminating the need for staff to adjust the distance between the squeeze roller 2 and the support plate 110 to accommodate varying fabric thicknesses, thus improving convenience. Furthermore, the provision of a limit rod 214 and a fixed rod 213 ensure the stability of the movable plate 201 during movement, preventing deviation and ensuring that the squeeze roller 2 evenly squeezes the surface of the fabric.
[0035] In this embodiment, the horizontal heights of the first guide roller 105 and the second guide roller 106 are equal, and a cloth shaking mechanism is provided between the first guide roller 105 and the second guide roller 106. The cloth shaking mechanism includes a swing plate 3, cloth shaking rollers 301 arranged on both sides of the swing plate 3 and rotatably connected to the swing plate 3, a first connecting rod 302, two second connecting rods 303, a rotating shaft 304, and a power component for driving the rotating shaft 304 to rotate. The rotating shaft 304 is rotatably connected to the inner wall of the drainage chamber 103, and a notch 305 is provided on the rotating shaft 304. One side of the two second connecting rods 303 are respectively arranged on both sides of the notch 305 and fixedly connected to the rotating shaft 304. One side of the first connecting rod 302 is rotatably connected to the other side of the second connecting rod 303, and the other side of the first connecting rod 302 is rotatably connected to one side of the swing plate 3, and the length of the first connecting rod 302 is greater than the length of the second connecting rod 303.
[0036] During operation, the power assembly rotates the rotating shaft 304, which in turn rotates one side of the second connecting rod 303. The other side of the second connecting rod 303 then rotates one side of the first connecting rod 302 about the rotating shaft 304. Simultaneously, the rotating shaft 304 moves within the notch 305 without interfering with the rotating shaft 304. Because the first connecting rod 302 is longer than the second connecting rod 303, the other side of the first connecting rod 302 drives one side of the swing plate 3 to swing back and forth, causing the two shaking rollers 301 on the swing plate 3 to beat the bottom of the grey fabric, thereby shaking the fabric. This shaking method removes some moisture from the grey fabric surface before the extrusion process, reducing the amount of moisture required by the subsequent extrusion mechanism and thus reducing the drying load. Furthermore, the shaking process loosens the grey fabric fibers due to vibration, preventing moisture from entrapping caused by fiber adhesion, making it easier to squeeze out moisture during subsequent extrusion.
[0037] Furthermore, the power assembly includes a first synchronous pulley 306, a second synchronous pulley 307, and a third synchronous belt 308 connecting the first synchronous pulley 306 and the second synchronous pulley 307. The first synchronous pulley 306 is fixedly connected to the rotating shaft 205, and the second synchronous pulley 307 is fixedly connected to the side of the rotating shaft 304 away from the shell 1.
[0038] By providing the first synchronous pulley 306 , the second synchronous pulley 307 and the third synchronous belt 308 , the movement of the cloth shaking mechanism does not require an additional driving source, thereby reducing the cost of the driving source.
[0039] Furthermore, each fabric shaking roller 301 is designed to have a cylindrical structure. The cylindrical fabric shaking roller 301 maintains a relatively stable and uniform contact area with the fabric during its swing. Compared to other irregular shapes, cylindrical fabric shaking rollers 301 can shake the fabric more smoothly. Irregular shapes can exert excessive pressure on certain areas of the fabric, causing damage. However, cylindrical fabric shaking rollers 301 can evenly apply force to the fabric, avoiding uneven localized stress.
[0040] Working principle: During operation, a worker activates the rotary motor 209. The output of the rotary motor 209 rotates the rotating shaft 205, which in turn rotates the cam 208. The special profile design of the cam 208 allows it to intermittently push the sliding plate 203 during rotation. When the longest end of the cam 208 contacts the sliding plate 203, it pushes the sliding plate 203 to compress the first elastic member 207. When the longest end of the cam 208 disengages the sliding plate 203, the first elastic member 207 recovers its deformation, pushing the sliding plate 203 in the opposite direction, thereby achieving reciprocating motion of the squeezing roller 2 and rolling the surface of the fabric.
[0041] At the same time, the rotation of the rotating shaft 205 drives the first synchronous pulley 306, which in turn drives the second synchronous pulley 307 via the third synchronous belt 308. The second synchronous pulley 307 then drives the rotating shaft 304, which in turn drives one side of the second connecting rod 303 to rotate. The other side of the second connecting rod 303 then drives one side of the first connecting rod 302 to rotate about the rotating shaft 304. Simultaneously, the rotating shaft 304 moves within the notch 305 and does not interfere with the rotating shaft 304. Because the first connecting rod 302 is longer than the second connecting rod 303, the other side of the first connecting rod 302 drives one side of the swing plate 3 to swing back and forth, thereby causing the two shaking rollers 301 on the swing plate 3 to beat the bottom of the grey fabric.
[0042] When the fabric is transported to the inside of the drying chamber 104, the infrared heater 4 and the exhaust fan 401 are started. The infrared heater 4 will heat the grey fabric, and the exhaust fan 401 can extract the hot air containing water vapor in the drying chamber 104 and send it to the dehumidification box 403 through the exhaust pipe 402. The activated carbon plate 404 absorbs the water vapor, and the dried air is returned to the drying chamber 104 through the return air pipe 405. This can form a hot air recycling, reduce heat loss, and reduce energy consumption. At the same time, it can ensure that the air humidity in the drying chamber 104 is within an appropriate range, avoid affecting the drying effect due to excessive humidity, improve drying efficiency and quality, and achieve energy-saving and efficient drying.
[0043] The same or similar numbers in the drawings of this embodiment correspond to the same or similar parts; in the description of this application, it should be understood that if the terms "upper", "lower", "left", "right", etc. indicate an orientation or position relationship, they are based on the orientation or position relationship shown in the drawings. This is only for the convenience of describing this application and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation. Therefore, the terms describing the position relationship in the drawings are only used for illustrative purposes and cannot be understood as a limitation on this patent. For ordinary technicians in this field, the specific meanings of the above terms can be understood according to specific circumstances.
[0044] The above are only preferred embodiments of the present application and are not intended to limit the present application. Any modifications, equivalent replacements, and improvements made within the spirit and principles of the present application should be included in the scope of protection of the present application.
Claims
1. A drying device for knitted fabric processing, comprising a housing (1), wherein two sides of the housing (1) are respectively provided with a feed port (101) and a discharge port (102), characterized in that: A drainage chamber (103) is provided on one side of the shell (1) near the feed port (101), a drying chamber (104) is provided on one side of the shell (1) near the discharge port (102), and a conveying assembly for conveying the grey cloth is provided inside the drying chamber (104). A first guide roller (105), a second guide roller (106), a third guide roller (107), and a fourth guide roller (108) are rotatably connected in sequence inside the drainage chamber (103). The third guide roller (107) and the fourth guide roller (108) are The horizontal heights are equal, the bottom of the drainage chamber (103) is fixedly connected to a support plate (110) via a plurality of support columns (109), the support plate (110) is arranged between the third guide roller (107) and the fourth guide roller (108), and the horizontal height of the support plate (110) is lower than the horizontal height of the third guide roller (107), the support plate (110) is provided with a plurality of drainage ports (1101), and an extrusion mechanism is provided inside the drainage chamber (103) for rolling the grey cloth on the surface of the support plate (110).
2. The drying equipment for knitted fabric processing according to claim 1, characterized in that: The extrusion mechanism comprises an extrusion roller (2) for extruding the grey cloth, a movable plate (201), a connecting plate (202) arranged on top of the movable plate (201), a sliding plate (203) arranged on top of the connecting plate (202), and a driving assembly for driving the sliding plate (203) to move back and forth, wherein the extrusion roller (2) is rotationally connected to the movable plate (201), the sliding plate (203) is fixedly connected to the connecting plate (202), a slide rail (204) is fixedly connected to a side of the drainage chamber (103) close to the slide plate (203), and the slide plate (203) is fixedly connected to the slide rail (204).
3. The drying equipment for knitted fabric processing according to claim 2, characterized in that: The driving assembly comprises a rotating shaft (205) rotatably connected to the inside of the drainage chamber (103), a support block (206) fixedly connected to the side of the drainage chamber (103), a first elastic member (207) arranged between the support block (206) and the sliding plate (203), a cam (208) that intermittently pushes the sliding plate (203) to compress the first elastic member (207), and a rotating motor (209), one side of the rotating shaft (205) extends to the outside of the housing (1), the output end of the rotating motor (209) is fixedly connected to the rotating shaft (205), the cam (208) is fixedly connected to the rotating shaft (205), the cam (208) is slidably connected to the side of the sliding plate (203), and the two ends of the first elastic member (207) are respectively fixedly connected to the support block (206) and the side opposite to the sliding plate (203).
4. The drying equipment for knitted fabric processing according to claim 3, characterized in that: A fixed plate (210) is fixedly connected to one side of the sliding plate (203) close to the cam (208), a pulley (211) is rotatably connected to the fixed plate (210), and the pulley (211) is slidably connected to the cam (208).
5. The drying equipment for knitted fabric processing according to claim 3, characterized in that: The connecting plate (202) and the movable plate (201) are fixedly connected via a plurality of second elastic members (212), and two ends of each second elastic member (212) are respectively fixedly connected to the connecting plate (202) and the movable plate (201). A plurality of fixing rods (213) are provided on a side of the connecting plate (202) close to the movable plate (201), and each fixing rod (213) is slidably connected to a limiting rod (214). One side of the limiting rod (214) is fixedly connected to the movable plate (201), and each second elastic member (212) is respectively sleeved on an outer surface of the fixing rod (213).
6. The drying equipment for knitted fabric processing according to claim 3, characterized in that: The first material guide roller (105) and the second material guide roller (106) are at the same level. A cloth shaking mechanism is provided between the first material guide roller (105) and the second material guide roller (106). The cloth shaking mechanism comprises a swing plate (3), cloth shaking rollers (301) arranged on both sides of the swing plate (3) and rotatably connected to the swing plate (3), a first connecting rod (302), two second connecting rods (303), a rotating shaft (304), and a power component for driving the rotating shaft (304) to rotate. The rotating shaft (304) is connected to the swing plate (3). The inner wall of the drainage chamber (103) is rotatably connected, a notch (305) is provided on the rotating shaft (304), one side of the two second connecting rods (303) are respectively arranged on both sides of the notch (305) and fixedly connected to the rotating shaft (304), one side of the first connecting rod (302) is rotatably connected to the other side of the second connecting rod (303), the other side of the first connecting rod (302) is rotatably connected to one side of the swing plate (3), and the length of the first connecting rod (302) is greater than the length of the second connecting rod (303).
7. The drying equipment for knitted fabric processing according to claim 6, characterized in that: The power assembly comprises a first synchronous pulley (306), a second synchronous pulley (307), and a third synchronous belt (308) connecting the first synchronous pulley (306) and the second synchronous pulley (307); the first synchronous pulley (306) is fixedly connected to the rotating shaft (205); and the second synchronous pulley (307) is fixedly connected to a side of the rotating shaft (304) away from the housing (1).
8. The drying equipment for knitted fabric processing according to claim 6, characterized in that: Each of the cloth shaking rollers (301) is in the shape of a cylinder as a whole.
9. The drying equipment for knitted fabric processing according to claim 6, characterized in that: Infrared heaters (4) are provided on both sides of the inner wall of the drying chamber (104), and a dehumidification component is provided on the top of the drying chamber (104), the dehumidification component comprising an exhaust fan (401), an exhaust pipe (402) provided on the top of the exhaust fan (401), a dehumidification box (403) provided on the top of the shell (1) and connected to the exhaust pipe (402), and an activated carbon plate (404) provided inside the dehumidification box (403). A return air pipe (405) is provided on a side of the dehumidification box (403) away from the exhaust pipe (402), and the interior of the return air pipe (405) is connected to the interior of the drying chamber (104).
Citation Information
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