Cotton gin for processing flame-retardant printed cloth
By designing a cooling mechanism and a diversion mechanism in a printed cloth processing ginner, efficient cooling of the surface of the printed cloth body is achieved, and the problem of lack of reliable cooling cooling devices in the prior art is solved, the quality of the printed cloth is improved and fire prevention is prevented.
Patent Information
- Application Number
- CN202421509482.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-28
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-06-28
AI Technical Summary
The existing printing cloth processing ginning machines lack reliable cooling and cooling devices, cannot control the temperature of the device, affect the quality of the printing cloth, and even cause fires.
A flame-retardant printed fabric processing ginning machine is designed, using a cooling mechanism and a diversion mechanism. The cooling mechanism includes a fan, a supply duct, an intake duct, a cooling box and a cooling box. The printed fabric body is cooled through the cold air circulation to ensure uniform temperature drop.
It realizes efficient cooling of the surface of the printed cloth body, avoids deformation and wrinkles caused by uneven temperature, improves the quality of the printed cloth, reduces production costs, and effectively prevents fires.
Smart Images

Figure CN222908313U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of calico processing, in particular to a calendering machine for processing flame-retardant calico. Background Art
[0002] The calendering machine for calico processing is an important mechanical equipment in the textile industry, which is specially used to produce various patterns and designs on fabrics. Its working principle is similar to the traditional calendering process, but the heating roller (pattern roller) of calendering is a metal roller with uneven patterns engraved on it. During operation, the fabric is pressed through between the pattern roller and the backing roller. Through the action of temperature and pressure, the pattern on the pattern roller is printed on the fabric. This process is similar to the principle of stamping a steel seal on a certificate.
[0003] During the calico processing, continuous heating is required, but the heat cannot be discharged. When the machine works for a long time, heat will accumulate, which will affect the quality of the calico and even cause a fire. The existing calendering machine for calico processing has a simple structure, lacks a reliable cooling device, and cannot control the temperature of the device. Content of the Utility Model
[0004] The utility model discloses a calendering machine for processing flame-retardant calico, aiming to solve the technical problems that the existing calico processing lacks a reliable cooling device, cannot control the temperature of the device, affects the quality of the calico, and even causes a fire.
[0005] In order to achieve the above purpose, the utility model adopts the following technical scheme:
[0006] A calendering machine for processing flame-retardant calico, including a workbench and a calico body, further comprising:
[0007] A cooling mechanism for sending in cold air;
[0008] A flow splitting mechanism, including an air inlet pipe and a cooling box. The air inlet pipe is provided with evenly distributed flat plates. A vertical plate is arranged at one end of the flat plate close to the cooling box. A flow splitting plate is arranged at one end of the air inlet pipe close to the cooling box. The cooling box is provided with flow guiding plates that increase in sequence. The calico body passes through the cooling box from top to bottom.
[0009] In this solution, the temperature of the processed printed fabric body is relatively high and it is not suitable to be wound immediately to avoid heat accumulation. The cooling mechanism sends cold air into the air inlet pipe. The cold air is evenly transported through the flat layer plate in layers and then dispersed to the left and right through the shunt plate and blown to both sides of the printed fabric body respectively. After the cold air enters the cooling box, it enters the gaps between the guide plates respectively. After the cold air is shunted, it blows to the printed fabric body, making the surface of the printed fabric body cool down more evenly, avoiding the situation that one end of the printed fabric body close to the air inlet pipe has a lower temperature while the other end far from the air inlet pipe has a higher temperature, and the uneven temperature of the printed fabric body causes deformation, wrinkles and other phenomena of the printed fabric body, affecting the quality of the printed fabric body.
[0010] In a preferred solution, the cooling mechanism includes a fan and a cooling box. The output end of the fan is connected with an air supply pipe. One end of the air supply pipe is fixedly connected to one end of the air inlet pipe. One end of the cooling box far from the air inlet pipe is fixedly connected with a connecting pipe. One end of the connecting pipe is fixedly connected to the input end of the cooling box. The output end of the cooling box is fixedly connected with a return air pipe. One end of the return air pipe is fixedly connected to the input end of the fan.
[0011] Adopting the above solution, the fan sends air to the air inlet pipe through the air supply pipe, blows the heat on the surface of the printed fabric body into the cooling box. The cooling box cools the hot air. The cooled cold air re-enters the air inlet pipe and the cooling box through the return air pipe and the fan, achieving the effect of circulating cooling. Through the fan, the air inlet pipe, the cooling box and the cooling box, the surface of the printed fabric body is efficiently cooled. The cooled cold air is recycled, reducing energy consumption and production costs. The effective cooling ensures the stability and consistency of the printed fabric during processing and improves product quality.
[0012] As can be seen from the above, a calendering machine for processing flame-retardant printed fabric includes a workbench and a printed fabric body, and further includes:
[0013] A cooling mechanism for sending in cold air;
[0014] A shunt mechanism includes an air inlet pipe and a cooling box. The air inlet pipe is provided with evenly distributed flat layer plates. A vertical plate is arranged at one end of the flat layer plate close to the cooling box. A shunt plate is arranged at one end of the air inlet pipe close to the cooling box. The cooling box is provided with guide plates that increase in sequence. The printed fabric body passes through the cooling box from top to bottom. A calendering machine for processing flame-retardant printed fabric provided by the present invention has the technical effect of making the surface of the printed fabric body cool down more evenly, avoiding the situation that one end of the printed fabric body close to the air inlet pipe has a lower temperature while the other end far from the air inlet pipe has a higher temperature, and the uneven temperature of the printed fabric body causes deformation, wrinkles and other phenomena of the printed fabric body, affecting the quality of the printed fabric body. Description of the Drawings
[0015] Figure 1 The overall structural schematic diagram of a rolling machine for processing flame-retardant printed fabric proposed by the present utility model.
[0016] Figure 2 The partial structural schematic diagram of a rolling machine for processing flame-retardant printed fabric proposed by the present utility model.
[0017] Figure 3 The sectional structural schematic diagram of the cooling box of a rolling machine for processing flame-retardant printed fabric proposed by the present utility model.
[0018] In the drawings: 1, mounting frame; 2, air inlet pipe; 3, rolling machine body; 4, air supply pipe; 5, fan; 6, return air pipe; 7, temperature reduction box; 8, cooling box; 9, printed fabric body; 10, winding roller; 11, mounting plate; 12, roller shaft; 13, connecting pipe; 14, flat layer plate; 15, flow dividing plate; 16, vertical plate; 17, guide plate. Specific embodiments
[0019] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments.
[0020] In the description of the present utility model, it should be understood that the orientation or positional relationship indicated by the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present utility model.
[0021] A rolling machine for processing flame-retardant printed fabric disclosed by the present utility model is mainly applied to the scenario where the existing printed fabric processing lacks a reliable temperature reduction and cooling device, cannot control the temperature of the device, affects the quality of the printed fabric, and even causes a fire.
[0022] Referring to Figure 1 and Figure 3 , a rolling machine for processing flame-retardant printed fabric includes a workbench and a printed fabric body 9, and further includes:
[0023] A cooling mechanism for sending cold air;
[0024] The flow splitting mechanism includes an intake pipe 2 and a cooling box 8. A flat layer plate 14 is evenly distributed inside the intake pipe 2. A vertical plate 16 is provided at one end of the flat layer plate 14 close to the cooling box 8. A flow splitting plate 15 is provided at one end of the intake pipe 2 close to the cooling box 8. A flow guiding plate 17 with an increasingly larger size is arranged inside the cooling box 8. The printing cloth body 9 passes through the cooling box 8 from top to bottom.
[0025] Specifically, the temperature of the processed printing cloth body 9 is relatively high and it is not suitable to be wound immediately to avoid heat accumulation. The cooling mechanism is started, and the printing cloth body 9 is passed through the cooling box 8. The cooling mechanism sends cold air into the intake pipe 2. The cold air is evenly transported in layers through the flat layer plate 14, and is dispersed to the left and right after passing through the flow splitting plate 15, and blows towards both sides of the printing cloth body 9 respectively. After the cold air enters the cooling box 8, it enters the gaps between the flow guiding plates 17 respectively. After the cold air is split, it blows towards the printing cloth body 9, so that the surface of the printing cloth body 9 is cooled more evenly, avoiding the phenomenon that one end of the printing cloth body 9 close to the intake pipe 2 has a lower temperature while the other end far from the intake pipe 2 has a higher temperature, and the uneven temperature of the printing cloth body 9 causes deformation, wrinkles and other phenomena of the printing cloth body 9, which affects the quality of the printing cloth body 9.
[0026] Refer to Figure 1 and Figure 2 In a preferred embodiment, the cooling mechanism includes a blower 5 and a cooling box 7. The output end of the blower 5 is connected with an air supply pipe 4. One end of the air supply pipe 4 is fixedly connected to one end of the intake pipe 2. One end of the cooling box 8 far from the intake pipe 2 is fixedly connected with a connecting pipe 13. One end of the connecting pipe 13 is fixedly connected to the input end of the cooling box 7. The output end of the cooling box 7 is fixedly connected with a return air pipe 6. One end of the return air pipe 6 is fixedly connected to the input end of the blower 5.
[0027] Specifically, the blower 5 is started. The blower 5 sends air into the intake pipe 2 through the air supply pipe 4, and blows the heat on the surface of the printing cloth body 9 into the cooling box 7. The cooling box 7 cools the hot air. The cooled cold air re-enters the intake pipe 2 and the cooling box 8 through the return air pipe 6 and the blower 5, achieving the effect of circulating cooling. Through the blower 5, the intake pipe 2, the cooling box 8 and the cooling box 7, the surface of the printing cloth body 9 is efficiently cooled. The cooled cold air is recycled, reducing energy consumption and production costs. The effective cooling ensures the stability and consistency of the printing cloth during the processing, and improves the product quality.
[0028] Refer to Figure 1 and Figure 2, in a preferred embodiment, a calendering machine body 3 is provided on the top of the workbench. Two symmetrically distributed mounting plates 11 are provided on the top of the workbench. A winding roller 10 is provided between the two mounting plates 11. Two symmetrically distributed mounting frames 1 are provided on the top of the workbench. An air inlet pipe 2 and a cooling box 8 are fixed to the outer wall of one side of the mounting frame 1. A fan 5 is fixed to the top of the mounting frame 1. A roller shaft 12 is rotatably connected between the two mounting frames 1.
[0029] Working principle: When in use, the fan 5 is started. The fan 5 sends air to the air inlet pipe 2 through the air supply pipe 4. The cold air is evenly transported in layers through the flat layer plate 14, and is dispersed to the left and right after passing through the flow dividing plate 15, and blows to both sides of the printed fabric body 9 respectively. After the cold air enters the cooling box 8, it enters the gaps between the guide plates 17 respectively. After the cold air is divided, it blows to the printed fabric body 9, and the heat on the surface of the printed fabric body 9 is blown into the temperature reduction box 7. The temperature reduction box 7 cools the hot air. The cooled cold air re-enters the air inlet pipe 2 and the cooling box 8 through the return air pipe 6 and the fan 5.
[0030] As described above, only the preferred specific embodiments of the present invention are given, but the protection scope of the present invention is not limited thereto. The substitution may be the substitution of some structures, devices, method steps, or a complete technical solution. Any equivalent substitution or change made according to the technical solution of the present invention and its inventive concept should be covered within the protection scope of the present invention.
Claims
1. A cotton ginning machine for processing flame-retardant printed fabric, comprising a workbench and a printed fabric body (9), characterized in that: Also includes: A cooling mechanism for supplying cold air; The flow dividing mechanism comprises an air intake pipe (2) and a cooling box (8), wherein evenly distributed leveling plates (14) are arranged in the air intake pipe (2), a vertical plate (16) is arranged at one end of the leveling plate (14) close to the cooling box (8), a flow dividing plate (15) is arranged at one end of the air intake pipe (2) close to the cooling box (8), and guide plates (17) which are gradually enlarged are arranged in the cooling box (8), and the printed cloth body (9) passes through the cooling box (8) from top to bottom.
2. The flame-retardant embossing machine for processing printed fabrics according to claim 1, characterized in that: The cooling mechanism comprises a fan (5) and a cooling box (7); the output end of the fan (5) is connected to an air supply pipe (4); one end of the air supply pipe (4) is fixedly connected to one end of the air inlet pipe (2).
3. The embossing machine for flame-retardant printed cloth processing according to claim 2, characterized in that: One end of the cooling box (8) away from the air intake pipe (2) is fixedly connected to a connecting pipe (13), and one end of the connecting pipe (13) is fixedly connected to the input end of the cooling box (7).
4. The embossing machine for flame-retardant printed cloth processing according to claim 3, characterized in that: The output end of the cooling box (7) is fixedly connected to a return air duct (6), and one end of the return air duct (6) is fixedly connected to the input end of the fan (5).
5. The embossing machine for flame-retardant printed cloth processing according to claim 1, characterized in that: A cotton gin body (3) is arranged on the top of the workbench.
6. The embossing machine for flame-retardant printed cloth processing according to claim 1, characterized in that: Two symmetrically distributed mounting plates (11) are arranged on the top of the workbench, and a winding roller (10) is arranged between the two mounting plates (11).
7. The embossing machine for flame-retardant printed cloth processing according to claim 2, characterized in that: Two symmetrically distributed mounting frames (1) are provided on the top of the workbench, the air inlet pipe (2) and the cooling box (8) are fixed to an outer wall of one side of the mounting frame (1), the fan (5) is fixed to the top of the mounting frame (1), and a roller (12) is rotatably connected between the two mounting frames (1).