Polyester gray cloth shaping device convenient for continuous production
By designing a polyester embryo cloth setting device that is convenient for continuous production, and adopting a driving shaping structure and a control and adjustment structure, it solves the problem of operating troubles of artificial hanging embryo cloth and the long cooling time after setting, and achieves efficient shaping and cooling treatment.
Patent Information
- Application Number
- CN202510289169.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-12
- Publication Date
- 2025-05-13
AI Technical Summary
The existing polyester embryo cloth setting machines require manual suspension of embryo cloth, which is troublesome to operate; after the molding, the surface temperature of the fabric is high, the room temperature cooling speed is slow, which delays the subsequent process processing time.
A polyester embryo cloth shaping device that is convenient for continuous production is designed, using a driving shaping structure and a control and adjustment structure, including clamping drive components, shaping components, cold and hot components, etc., to achieve the shaping and cooling of embryo cloth through an automated driving and adjustment mechanism.
It solves the problem of operating troublesomeness of artificial hanging embryo cloth and improves the shaping efficiency; through the rapid cooling mechanism, the cooling time of the fabric is shortened and the efficiency of subsequent process processing is improved.
Smart Images

Figure CN119980613A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of polyester grey cloth, in particular to a polyester grey cloth shaping device that is convenient for continuous production. Background Art
[0002] Polyester has a wide range of uses and is used in large quantities in the manufacture of clothing and industrial products. Flame-retardant polyester has a wide range of applications due to its permanent flame retardancy. In addition to its irreplaceable role in industrial textiles, building interior decoration, and transportation interior decoration, it also plays a lot of roles in the field of protective clothing. According to the national standard for flame-retardant protective clothing, metallurgy, forestry, chemical industry, petroleum, fire protection and other departments should use flame-retardant protective clothing. When producing polyester, it is necessary to use a loom to weave the warp and weft in a specific way, and the woven polyester grey cloth needs to be processed through a series of processing equipment, one of which is to shape the polyester grey cloth. The existing shaping machine needs to manually hang the polyester embryo inside the shaping machine during shaping. However, due to the wide width of the polyester grey cloth, it is more troublesome to hang the polyester grey cloth, and the existing shaping device refers to shaping the cloth after high temperature. After the current shaping device shapes the polyester grey cloth at high temperature, the surface temperature of the cloth is still very high, and it is usually cooled at room temperature. The room temperature cooling speed is slow, which seriously delays the time for subsequent process processing of the cloth. Summary of the invention
[0003] The purpose of the present invention is to provide a polyester grey cloth shaping device that is convenient for continuous production in view of the shortcomings of the prior art, so as to solve the problem that the existing shaping machine proposed in the above background technology requires manual hanging of the polyester grey cloth inside the shaping machine during shaping, but due to the wide width of the polyester grey cloth, it is more troublesome to hang the polyester grey cloth, and the existing shaping device refers to shaping the cloth after high temperature. After the current shaping device performs high-temperature shaping on the polyester grey cloth, the surface temperature of the cloth is still very high, and it is usually cooled at room temperature. The room temperature cooling speed is slow, which seriously delays the time for subsequent process treatment of the cloth.
[0004] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a polyester grey cloth shaping device convenient for continuous production, comprising a driving shaping structure, and control and adjustment structures are installed on both sides of the driving shaping structure;
[0005] The driving shaping structure includes a shaping component fixedly mounted on the clamping driving component, and the shaping component includes a shaping box with a hollow structure inside, and cloth openings are provided on both sides of the shaping box for facilitating the entry and exit of the polyester grey cloth, and the shaping box is provided with sliding grooves on both sides of the cloth opening for facilitating the sliding adjustment of the structural parts, and a grey cloth placing rack and a grey cloth winding rack are respectively fixed on both sides of the shaping box;
[0006] A heating lamp is fixed inside the shaping box, and shaping rollers are rotatably installed between the heating lamps through an adjusting cylinder, and anti-fog glass is inlaid right in front of the shaping box.
[0007] By adopting the above technical solution, the anti-fog glass is provided to facilitate observation.
[0008] Preferably, the clamping and driving assembly includes a mounting frame with a hollow structure inside, and a bearing frame is provided inside the mounting frame to facilitate the rotation and adjustment of the ball screw. At the same time, a first ball nut for drive adjustment passes through the surface of the ball screw. One end of the ball screw is installed and connected to the output end of the drive motor through a bevel gear set, and the mounting frame and the drive motor are fixedly installed inside and above the outside of the molding box respectively.
[0009] By adopting the above technical solution, meshing transmission is achieved through the provided bevel gear set.
[0010] Preferably, the bottom of the first ball nut is fixedly connected to one end of the control cylinder, and a through-hole plate is fixed to the output end of the control cylinder. Meanwhile, the through-hole plates are elastically connected via connecting springs, and adsorption magnet groups are respectively fixed between the through-hole plates.
[0011] By adopting the above technical solution, the adsorption is regulated by setting the adsorption magnet group.
[0012] Preferably, the control and adjustment structure includes an adjustment component for driving and adjusting the cold and hot components, and the adjustment component includes a slider for sliding adjustment with the slide groove, and second ball nuts are fixed on both sides of the slider, a bidirectional ball screw is passed through the second ball nuts, and one end of the bidirectional ball screw is installed on both sides of the molding box through a control motor and a fixing frame.
[0013] By adopting the above technical solution, the sliding adjustment is achieved through the provided sliding block.
[0014] Preferably, the cold and hot components include a connecting frame with a rotating bearing, and a first connecting roller with a hollow structure inside is rotatably connected between the connecting frames, and a fixing groove is opened through the surface of the first connecting roller to facilitate the fixed connection of the horizontal air cooler.
[0015] By adopting the above technical solution, a horizontal air cooler is provided to achieve rapid air cooling.
[0016] Preferably, a T-shaped concave disc is rotatably installed between the other connecting frames, and a heating roller with air holes on the surface is rotatably installed on the inner side of the T-shaped concave disc through an installing bearing, and a through hole is penetrated through the upper inner side of the T-shaped concave disc, and the T-shaped concave disc is connected to the through hole through a pipe connector, and the T-shaped concave disc is installed and connected to one end of the connecting pipe through the pipe connector and the corrugated pipe, and the other end of the connecting pipe is installed and connected to the steam generator, and the steam generator is fixedly connected to the forming box wrapped by the steam generator.
[0017] By adopting the above technical solution, steam softening is achieved through the provided steam generator.
[0018] Preferably, two groups of heating lamps are provided, and the heating lamps are installed symmetrically about the center of the molding box.
[0019] By adopting the above technical solution, the heating lamp is provided to achieve heating and shaping.
[0020] Preferably, the cross-sectional areas of the T-shaped concave disc and the heating roller form a concentric circle structure.
[0021] By adopting the above technical solution, the T-shaped recessed disc is provided to achieve the installation connection between the inside and the outside.
[0022] Preferably, one group of the first connecting rollers is provided, and four groups of horizontal air coolers are installed on the surface of a single first connecting roller.
[0023] By adopting the above technical solution, the first connecting roller is provided to achieve opening and installation.
[0024] Compared with the prior art, the invention has the following beneficial effects: the polyester grey cloth shaping device which is convenient for continuous production,
[0025] (1) This case solves the problem that the existing shaping machine needs to manually hang the polyester blank inside the shaping machine during shaping by using the clamping and driving components set in the shaping structure. However, due to the wide width of the polyester blank, it is troublesome to hang the polyester blank. When the polyester blank needs to be shaped, the operator controls the driving motor to drive the ball screw to move during the movement process. During the movement of the ball screw, the first ball nut drives the cylinder and the through-hole plate to run synchronously and adjust. When the through-hole plate is adjusted to the cloth mouth position, the driving motor is stopped. The operator manually pulls the through-hole plate to separate it, clamps and adsorbs one end of the polyester blank through the through-hole plate and the adsorption magnet group, and then controls the driving motor to run again to pull the polyester blank into the shaping box for shaping.
[0026] (2) The first connecting roller and the horizontal cooling fan are arranged in the cold and hot components, thereby solving the problem that the existing shaping device is to shape the fabric after high temperature. After the polyester grey cloth is shaped at high temperature by the current shaping device, the surface temperature of the fabric is still very high. It is usually cooled at room temperature. The cooling speed at room temperature is slow, which seriously delays the time of subsequent process treatment of the fabric. When the polyester grey cloth is heated and shaped, the grey cloth winding rack winds up the shaped polyester grey cloth. When the polyester grey cloth is rolled up, the first connecting roller is driven to rotate. During the rotation of the first connecting roller, the horizontal cooling fan is driven to rotate synchronously, and the cold air blown out is blown to the two sides of the polyester grey cloth, so as to cool and shape the polyester grey cloth, which is convenient for the continuous operation and production of the polyester grey cloth.
[0027] (3) By driving the shaping component set in the shaping structure, the problem that the polyester grey cloth contains a large amount of water vapor after the initial steam heating affects the subsequent processing of the polyester grey cloth is solved. After the polyester grey cloth is initially steam heated, the polyester grey cloth is transported to the inside of the shaping box. The operator controls the relative interval distance height between the shaping rollers during the operation of the cylinder to control the operation of the heating lamp. During the operation of the heating lamp, the water vapor contained in the polyester grey cloth is not only evaporated, but also the polyester grey cloth is effectively heated and shaped for the second time;
[0028] (4) By controlling the adjustment structure, the adjustment component is set to solve the problem that the cold and hot components cannot adapt to the initial steam heating and cooling and winding of polyester grey cloths of different thicknesses. When polyester grey cloths of different thicknesses need to be shaped, the operator drives the control motor to operate. During the operation of the drive motor, the two-way ball screw drives the slider and the connecting frame to move relative to each other. When the relative interval distance between the connecting frames is adjusted and changed, the heating and cooling of polyester grey cloths of different thicknesses can be adapted.
[0029] (5) By arranging the cold and hot components: T-shaped concave disc, heating roller, corrugated pipe, connecting pipe and steam generator, the problem that the existing shaping device shapes the polyester grey cloth by steam from the beginning to the end, which causes the shaped polyester grey cloth to contain a large amount of water vapor and requires subsequent reprocessing, is solved. When the polyester grey cloth is shaped, the operator controls the steam generator to work, and the steam generator conveys steam to the inside of the T-shaped concave disc during operation. The steam entering the inside of the T-shaped concave disc enters the inside of the heating roller and diffuses to both sides of the polyester grey cloth through the air holes to heat and soften the two sides of the polyester grey cloth. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 It is a schematic diagram of the front cross-sectional structure of the present invention;
[0031] Figure 2 This is a schematic diagram of the driving shaping structure of the present invention;
[0032] Figure 3 It is a schematic diagram of the structure of the shaping box, the grey cloth placing rack, the grey cloth winding rack, the heating lamp, the regulating cylinder, the shaping roller and the anti-fog glass of the present invention;
[0033] Figure 4 This is a schematic diagram of the shaping box and chute structure of the present invention;
[0034] Figure 5 It is a schematic diagram of the structure of the mounting frame, ball screw, first ball nut, bevel gear set, drive motor, control cylinder and through-hole plate of the present invention;
[0035] Figure 6 It is a schematic diagram of the structure of the through-hole plate, the connecting spring and the adsorption magnet group of the present invention;
[0036] Figure 7 This is a schematic diagram of the control and regulation structure of the present invention;
[0037] Figure 8 This is a schematic diagram of the structure of the regulating component of the present invention;
[0038] Fig. 9 It is a schematic structural diagram of the connecting frame, the first connecting roller, the heating roller, the connecting pipe and the steam generator of the present invention;
[0039] Fig.10 It is a schematic diagram of the structure of the first connecting roller and the horizontal air cooler of the present invention;
[0040] Fig.11 It is a schematic diagram of the structure of the T-shaped concave disc, the heating roller and the corrugated tube of the present invention.
[0041] In the figure: 1. Driving shaping structure; 101. Shaping assembly; 1011. Shaping box; 1012. Slide; 1013. Grey cloth placing rack; 1014. Grey cloth winding rack; 1015. Heating lamp; 1016. Adjusting cylinder; 1017. Shaping roller; 1018. Anti-fog glass; 102. Clamping driving assembly; 1021. Mounting frame; 1022. Ball screw; 1023. First ball nut; 1024. Bevel gear set; 1025. Driving motor; 1026. Control cylinder; 1027 , through-hole plate; 1028, connecting spring; 1029, adsorption magnet group; 2, control and adjustment structure; 201, adjustment component; 2011, slider; 2012, second ball nut; 2013, bidirectional ball screw; 2014, control motor; 202, cold and hot components; 2021, connecting frame; 2022, first connecting roller; 2023, horizontal air cooler; 2024, T-shaped concave plate; 2025, heating roller; 2026, bellows; 2027, connecting pipe; 2028, steam generator. DETAILED DESCRIPTION
[0042] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0043] See also Figure 1-11 The present invention provides a technical solution: a polyester grey cloth shaping device that is convenient for continuous production, such as Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 6 As shown, it includes a driving shaping structure 1, which includes a shaping component 101 fixedly installed on the clamping driving component 102, and the shaping component 101 includes a shaping box 1011 with a hollow structure inside, and cloth openings for convenient entry and exit of polyester grey cloth are provided on both sides of the shaping box 1011, and slide grooves 1012 for convenient control and adjustment of the sliding adjustment of the parts of the adjustment structure 2 are opened through both sides of the cloth opening of the shaping box 1011, and a grey cloth placement rack 1013 and a grey cloth winding rack 1014 are fixed on both sides of the shaping box 1011, wherein the slide grooves 1012 are opened in 2 groups of 4, and the 2 groups of 4 slide grooves 1012 are used to effectively match the sliding adjustment of the sliders 2011 installed with the same number.
[0044] The above scheme further includes a heating lamp 1015 fixed inside the shaping box 1011, and two groups of heating lamps 1015 are provided, and the heating lamps 1015 are symmetrically installed about the center of the shaping box 1011. When the above components are provided in two groups of four, this not only reflects the symmetry of the fixed connection of the above components, but also reflects the practicality of the symmetrical fixed installation of the above components and the heat diffusion distribution during the operation process. When the above components are provided in two groups of four, the heating adjustment controllability of the fixed installation of the above components is also reflected. A shaping roller 1017 is rotatably installed between the heating lamps 1015 by adjusting the cylinder 1016. At the same time, an anti-fog glass 1018 is inlaid in front of the shaping box 1011, wherein two anti-fog glasses 1018 are provided, and the one group of anti-fog glasses 1018 is provided, which is convenient for the operator to check the operating status inside the shaping box 1011 and adjust the operating distance of the clamping drive assembly 102.
[0045] The above scheme further comprises a mounting frame 1021 with a hollow structure inside, and a bearing frame is provided inside the mounting frame 1021 for facilitating the rotation and adjustment of the ball screw 1022, and a first ball nut 1023 for driving and adjusting is passed through the surface of the ball screw 1022, one end of the ball screw 1022 is connected to the output end of the driving motor 1025 through a bevel gear set 1024, and the mounting frame 1021 and the driving motor 1025 are fixedly mounted on the inside and outside of the molding box 1011 respectively, wherein the above components constitute a driving and adjusting structure, and the driving and adjusting structure constituted by the above components can effectively change the distance of the reciprocating interval of the control cylinder 1026.
[0046] The above scheme further has the bottom of the first ball nut 1023 fixedly connected to one end of the control cylinder 1026, and a through-hole plate 1027 is fixed to the output end of the control cylinder 1026, and the through-hole plates 1027 are elastically connected by connecting springs 1028, and adsorption magnet groups 1029 are respectively fixed between the through-hole plates 1027, wherein the above-mentioned components constitute an elastic adsorption structure, and the elastic adsorption structure constituted by the above-mentioned components can be used to conveniently and quickly adsorb, clamp, disassemble and separate one end of the polyester grey cloth.
[0047] like Figure 7 , Figure 8 , Fig. 9 , Fig.10 and Fig.11 As shown, a control and adjustment structure 2 is installed on both sides of the shaping structure 1, and the control and adjustment structure 2 includes an adjustment component 201 for driving and adjusting the cold and hot components 202, and the adjustment component 201 includes a slider 2011 for sliding adjustment with the slide groove 1012, and second ball nuts 2012 are fixed on both sides of the slider 2011, and a bidirectional ball screw 2013 is passed through the second ball nuts 2012, and one end of the bidirectional ball screw 2013 is installed on both sides of the shaping box 1011 through a control motor 2014 and a fixing frame, wherein the above-mentioned components constitute a relative adjustment structure, and the relative interval distance between the sliders 2011 is changed when the relative adjustment structure constituted by the above-mentioned components is used, and the relative interval distance between the connecting frame 2021, the first connecting roller 2022 and the heating roller 2025 is changed by changing the relative interval distance between the sliders 2011, so as to adapt to the contact heating and cooling treatment of polyester grey cloths of different thicknesses.
[0048] The above scheme further comprises that the cold and hot components 202 include a connecting frame 2021 with a rotating bearing, and a first connecting roller 2022 with a hollow structure inside is rotatably connected between the connecting frames 2021, and a fixing groove for convenient fixed connection of a horizontal air cooler 2023 is opened on the surface of the first connecting roller 2022, and one group of first connecting rollers 2022 is provided, and four groups of horizontal air coolers 2023 are installed on the surface of a single first connecting roller 2022. When one group of the above components is provided, the above components are rotatably connected. The relative adjustability also reflects the openness and internal installation of the installation connection of the above-mentioned components, and 4 groups of horizontal air coolers 2023 are installed on the surface of a single first connecting roller 2022, and a single group is provided with 6 horizontal air coolers 2023. The horizontal air coolers 2023 surrounding the surface of the first connecting roller 2022 are used to quickly dissipate heat and cool the polyester grey cloth, wherein a connecting frame 2021 is provided with 1 group, and a rotating bearing is installed inside one connecting frame 2021, while a rotating bearing is not installed inside the other connecting frame 2021.
[0049] In the above scheme, a T-shaped concave disc 2024 is rotatably installed between the other connecting frame 2021, and a heating roller 2025 with air holes on the surface is rotatably installed on the inner side of the T-shaped concave disc 2024 through an installed bearing. At the same time, a through hole is opened through the upper inner side of the T-shaped concave disc 2024. The cross-sectional area of the T-shaped concave disc 2024 and the heating roller 2025 forms a concentric circle structure. When the above two are connected into a concentric circle structure, this not only reflects the simplicity of the installation connection of the above two, but also reflects the above two. The practicality of the connection is mutual transportability, and when the connection shapes of the above two are concentric circles, the axial and longitudinal axis symmetry of the connection of the above two is reflected at the same time. The T-shaped recessed disc 2024 is connected to the through hole through a pipe connector, and the T-shaped recessed disc 2024 is installed and connected to one end of the connecting pipe 2027 through a pipe connector and a bellows 2026. At the same time, the other end of the connecting pipe 2027 is installed and connected to the steam generator 2028, and the steam generator 2028 wraps the molding box 1011 and is fixedly connected.
[0050] In the above scheme, when the polyester grey cloth needs to be shaped, the operator first hoists the polyester grey cloth to be shaped on the grey cloth placement rack 1013, and then the operator controls the driving motor 1025 to operate. During the operation of the driving motor 1025, the ball screw 1022, the first ball nut 1023 and the bevel gear set 1024 drive the control cylinder 1026 and the through-hole plate 1027 to operate synchronously. When the through-hole plate 1027 is close to the cloth opening position of the shaping box 1011, the driving motor 1025 is stopped. Then, the through-hole plate 1027 is manually stretched open to be relatively separated, and then one end of the polyester grey cloth is manually passed through the through-hole plate 1027. When one end of the polyester grey cloth passes through the through-hole plate 1027, the through-hole plate 1027 is loosened to allow the connecting spring 1027 to rotate. 028. The adsorption magnet group 1029 and the through-hole plate 1027 adsorb and clamp one end of the polyester grey cloth. When the control cylinder 1026 is in operation and adjustment, the other adjustment cylinders 1016 carry the shaping roller 1017 to synchronously drive up and down to avoid the shaping roller 1017 causing motion interference during the operation of the control cylinder 1026 carrying the through-hole plate 1027. After one end of the polyester grey cloth is clamped, the drive motor 1025 is controlled to operate again to drive one end of the polyester grey cloth to move to another cloth opening position of the shaping box 1011 through the through-hole plate 1027. At this time, the control drive motor 1025 is suspended and the polyester grey cloth is manually pulled apart from the through-hole plate 1027 again. Then, one end of the polyester grey cloth is manually pulled to extend The operator extends the molding box 1011 to wind one end of the polyester grey cloth around the winding roller on the grey cloth winding frame 1014 for winding. The operator drives the control motor 214 to operate again. During the operation of the control motor 2014, the second ball nut 2012 and the bidirectional ball screw 2013 change the relative interval distance between the sliders 2011, thereby driving the connecting frame 221 to synchronously change the relative interval distance. When the first connecting roller 2022 and the heating roller 2025 are in contact with both sides of the polyester grey cloth, the control motor 2014 is stopped, and the heating lamp 1015, the steam generator 2028 and the horizontal air cooler 2023 are controlled to operate again. During the operation of the steam generator 2028, The steam is transported to the T-shaped concave disc 2024 and the heating roller 2025 through the bellows 2026 and the connecting pipe 2027 and sprayed on both sides of the polyester grey cloth. At the same time, the control cylinder 1016 drives the shaping roller 1017 to adjust the tension of the polyester grey cloth during the heating and shaping process to avoid the polyester grey cloth being too tight or too loose during shaping, thereby affecting its shaping effect. When the polyester grey cloth passes through the horizontal air cooler 2023, the horizontal air cooler 2023 will diffuse the cold air blown to both sides of the polyester grey cloth when it is running. When the cold air is blown to both sides of the polyester grey cloth and diffuses, it not only diffuses the heat and shapes the polyester grey cloth, but also facilitates the winding roller on the grey cloth winding rack 1014 to wind up the shaped polyester grey cloth.
[0051] The directions or positional relationships indicated by terms such as "center", "longitudinal", "lateral", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside" and "outside" are based on the directions or positional relationships shown in the accompanying drawings. They are merely simplified descriptions for the convenience of describing the present invention, and do not indicate or imply that the devices or elements referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they should not be understood as limitations on the protection content of the present invention.
[0052] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. A polyester grey cloth shaping device convenient for continuous production, characterized in that: It comprises a driving and shaping structure (1), and control and adjustment structures (2) are installed on both sides of the driving and shaping structure (1); The driving shaping structure (1) comprises a shaping component (101) fixedly mounted on the clamping driving component (102), and the shaping component (101) comprises a shaping box (1011) with a hollow structure inside, and cloth openings are provided on both sides of the shaping box (1011) for facilitating the entry and exit of polyester grey cloth, and slide grooves (1012) are provided on both sides of the cloth opening for facilitating the sliding adjustment of components of the control and adjustment structure (2), and grey cloth placing racks (1013) and grey cloth winding racks (1014) are respectively fixed on both sides of the shaping box (1011); A heating lamp (1015) is fixed inside the shaping box (1011), and a shaping roller (1017) is rotatably installed between the heating lamps (1015) through an adjusting cylinder (1016), and an anti-fog glass (1018) is inlaid in front of the shaping box (1011).
2. A polyester grey cloth shaping device for continuous production according to claim 1, characterized in that: The clamping and driving assembly (102) comprises an installation frame (1021) with a hollow structure inside, and a bearing frame is provided inside the installation frame (1021) for facilitating the rotation and adjustment of the ball screw (1022), and a first ball nut (1023) for driving and adjusting is passed through the surface of the ball screw (1022), one end of the ball screw (1022) is connected to the output end of the driving motor (1025) through a bevel gear set (1024), and the installation frame (1021) and the driving motor (1025) are fixedly installed inside and above the outside of the shaping box (1011), respectively.
3. A polyester grey cloth shaping device for continuous production according to claim 2, characterized in that: The bottom of the first ball nut (1023) is fixedly connected to one end of the control cylinder (1026), and a through-hole plate (1027) is fixed to the output end of the control cylinder (1026). At the same time, the through-hole plates (1027) are elastically connected via a connecting spring (1028), and adsorption magnet groups (1029) are respectively fixed between the through-hole plates (1027).
4. The polyester grey cloth shaping device for continuous production according to claim 1, characterized in that: The control and adjustment structure (2) comprises an adjustment component (201) for driving and adjusting the cold and hot components (202), and the adjustment component (201) comprises a slider (2011) for sliding adjustment with the slide groove (1012), and second ball nuts (2012) are fixed on both sides of the slider (2011), a bidirectional ball screw (2013) passes through the second ball nuts (2012), and one end of the bidirectional ball screw (2013) is installed on both sides of the molding box (1011) through a control motor (2014) and a fixing frame.
5. A polyester grey cloth shaping device for continuous production according to claim 4, characterized in that: The cold and hot components (202) include a connecting frame (2021) with a rotating bearing, and a first connecting roller (2022) with a hollow structure inside is rotatably connected between the connecting frames (2021), and a fixing groove is penetrated through the surface of the first connecting roller (2022) for convenient fixed connection of a horizontal air cooler (2023).
6. A polyester grey cloth shaping device for continuous production according to claim 5, characterized in that: A T-shaped concave disc (2024) is rotatably mounted between the other connecting frames (2021), and a heating roller (2025) with air holes on its surface is rotatably mounted on the inner side of the T-shaped concave disc (2024) via a mounting bearing, and a through hole is penetrated through the upper inner side of the T-shaped concave disc (2024), and the T-shaped concave disc (2024) is connected to the through hole via a pipe connector, and the T-shaped concave disc (2024) is mounted and connected to one end of a connecting pipe (2027) via a pipe connector and a bellows (2026), and the other end of the connecting pipe (2027) is mounted and connected to a steam generator (2028), and the steam generator (2028) is fixedly connected to the molding box (1011) by wrapping it.
7. The polyester grey cloth shaping device for continuous production according to claim 1, characterized in that: The heating lamps (1015) are provided in two groups, and the heating lamps (1015) are installed symmetrically with respect to the center of the molding box (1011).
8. The polyester grey cloth shaping device for continuous production according to claim 6, characterized in that: The cross-sectional areas of the T-shaped concave disc (2024) and the heating roller (2025) form a concentric circle structure.
9. The polyester grey cloth shaping device for continuous production according to claim 5, characterized in that: One group of the first connecting rollers (2022) is provided, and four groups of horizontal cooling fans (2023) are installed on the surface of a single first connecting roller (2022).