CN120846057A - Glass fiber mesh cloth drying device - Google Patents

Glass fiber mesh cloth drying device

Info

Publication number
CN120846057A
CN120846057A CN202511358066.2A CN202511358066A CN120846057A CN 120846057 A CN120846057 A CN 120846057A CN 202511358066 A CN202511358066 A CN 202511358066A CN 120846057 A CN120846057 A CN 120846057A
Authority
CN
China
Prior art keywords
glass fiber
roller
mesh cloth
fiber mesh
box body
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
CN202511358066.2A
Other languages
Chinese (zh)
Other versions
CN120846057B (en
Inventor
李泽
季飞
戴永伟
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Jiangsu Skyflon Composite Material Co ltd
Original Assignee
Jiangsu Skyflon Composite Material Co ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Jiangsu Skyflon Composite Material Co ltd filed Critical Jiangsu Skyflon Composite Material Co ltd
Priority to CN202511358066.2A priority Critical patent/CN120846057B/en
Publication of CN120846057A publication Critical patent/CN120846057A/en
Application granted granted Critical
Publication of CN120846057B publication Critical patent/CN120846057B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F26DRYING
    • F26BDRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
    • F26B13/00Machines and apparatus for drying fabrics, fibres, yarns, or other materials in long lengths, with progressive movement
    • F26B13/06Machines and apparatus for drying fabrics, fibres, yarns, or other materials in long lengths, with progressive movement with movement in a sinuous or zig-zag path
    • F26B13/08Machines and apparatus for drying fabrics, fibres, yarns, or other materials in long lengths, with progressive movement with movement in a sinuous or zig-zag path using rollers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F26DRYING
    • F26BDRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
    • F26B13/00Machines and apparatus for drying fabrics, fibres, yarns, or other materials in long lengths, with progressive movement
    • F26B13/10Arrangements for feeding, heating or supporting materials; Controlling movement, tension or position of materials
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F26DRYING
    • F26BDRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
    • F26B13/00Machines and apparatus for drying fabrics, fibres, yarns, or other materials in long lengths, with progressive movement
    • F26B13/10Arrangements for feeding, heating or supporting materials; Controlling movement, tension or position of materials
    • F26B13/14Rollers, drums, cylinders; Arrangement of drives, supports, bearings, cleaning
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F26DRYING
    • F26BDRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
    • F26B25/00Details of general application not covered by group F26B21/00 or F26B23/00
    • F26B25/005Treatment of dryer exhaust gases
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F26DRYING
    • F26BDRYING SOLID MATERIALS OR OBJECTS BY REMOVING LIQUID THEREFROM
    • F26B25/00Details of general application not covered by group F26B21/00 or F26B23/00
    • F26B25/06Chambers, containers, or receptacles
    • F26B25/08Parts thereof
    • F26B25/12Walls or sides; Doors

Landscapes

  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Textile Engineering (AREA)
  • Treatment Of Fiber Materials (AREA)
  • Drying Of Solid Materials (AREA)

Abstract

The invention relates to the technical field of drying equipment, and particularly discloses a glass fiber mesh cloth drying device which comprises a support seat and an inner support. And the inlet end roller and the outlet end roller are rotationally connected in the inlet and the outlet. A plurality of guide rollers distributed in a serpentine shape in the main box. And the first shaking piece and the lower drying mechanism are arranged in the clamping cavity. The guide rollers distributed in a serpentine manner are matched with the cavity clamping structure, so that the travel of the glass fiber mesh cloth in the drying cavity and the contact area with air flow are greatly increased, and the drying efficiency is effectively improved. And secondly, the first elastic supporting roller and the second elastic supporting roller arranged in the clamping cavity enable the glass fiber mesh cloth to generate irregular shaking under the air flow blowing through the elastic action of the spring and the high-pressure air cavity, so that the dynamic contact between the air flow and the fiber surface is obviously enhanced. In addition, the lower drying mechanism enables the temperature of the product to approach normal temperature through the synergistic effect of natural wind cooling and the third elastic supporting roller, and the subsequent winding is convenient.

Description

Glass fiber net cloth drying device
Technical Field
The invention relates to the technical field of drying equipment, in particular to a glass fiber mesh cloth drying device.
Background
The glass fiber mesh cloth is used as an important reinforcing material and is widely applied to the fields of construction, chemical industry and the like. In the production process, the glass fiber mesh cloth needs to be subjected to drying treatment to remove surface moisture, so that the product quality and the subsequent processing performance are ensured. The existing drying equipment mostly adopts a hot air circulation mode, and has the problems of low drying efficiency, high energy consumption, poor uniformity and the like. Specifically, glass fiber mesh cloth in traditional equipment is usually conveyed in a straight state, the contact area between the glass fiber mesh cloth and hot air is limited, so that drying is not thorough, meanwhile, the fiber mesh cloth is difficult to effectively shake in a static conveying mode, and the moisture separation effect is poor. Although some devices are provided with guide rollers to realize serpentine conveying, the drying effect cannot be fully improved without combining a dynamic shaking mechanism. Therefore, how to design a device capable of enhancing the contact effect of air flow and glass fiber mesh cloth and improving the drying uniformity and efficiency becomes an important direction of improvement of the current technology.
Disclosure of Invention
Aiming at the defects of the prior art, the invention provides a glass fiber mesh cloth drying device, which solves the problems of low drying uniformity and efficiency of the existing glass fiber mesh cloth.
The glass fiber mesh cloth drying device comprises a bracket seat, an inner bracket, an inlet end roller, an outlet end roller, a plurality of guide rollers, at least one clamping cavity, an air supply assembly, a first shaking piece, a lower drying mechanism and an exhaust box; the device comprises a main box body, a support seat, an inner bracket, an inlet end roller, an outlet end roller, a plurality of guide rollers, a lower drying mechanism, a gas supply assembly, a vibrating piece, a lower drying mechanism and a gas collecting mechanism, wherein the main box body is fixed at the top of the support seat, the side face of the main box body is detachably connected with a side box cover, an inlet and an outlet are respectively arranged below the front side and the rear side of the main box body, the inner bracket is erected in the main box body along the inlet and the outlet, the inlet end roller and the outlet end roller are respectively connected in the inlet and the outlet, the guide rollers are respectively arranged in an inner cavity of the main box body from top to bottom in a serpentine distribution manner, the glass fiber mesh cloth is lapped on the guide rollers to form a plurality of horizontal distribution sections and vertical sections, the at least one clamping cavity is clamped on the upper horizontal distribution section of the glass fiber mesh cloth, the gas supply assembly is connected to the clamping cavity, the gas is blown into the clamping cavity, the first vibrating piece is arranged in the clamping cavity and is abutted against the glass fiber mesh cloth, when the glass fiber mesh cloth is blown by the gas, the vibrating piece is vibrated, the lower drying mechanism is arranged at the bottom of the inner cavity of the main box body, the glass fiber mesh cloth is distributed on the horizontal distribution section, and the gas is blown out of the main box body, and the gas is discharged from the side of the main box.
Preferably, the clamping cavity comprises a first buckle cover and a second buckle cover, wherein the first buckle cover is positioned at one side of the upper glass fiber mesh cloth horizontal distribution section, the second buckle cover is positioned at the other side of the upper glass fiber mesh cloth horizontal distribution section, a supporting frame is arranged between two adjacent second buckle covers, and a clamping cavity through which the upper glass fiber mesh cloth horizontal distribution section passes is formed between the first buckle cover and the second buckle cover;
The first shaking piece is arranged in the clamping cavity and comprises a first elastic supporting roller and a second elastic supporting roller which are respectively arranged on two sides of the clamping cavity, the first elastic supporting roller and the second elastic supporting roller are respectively arranged on the first buckle cover and the second buckle cover in a relative mode, and the first elastic supporting roller and the second elastic supporting roller are arranged in a staggered mode.
Preferably, the first elastic supporting roller comprises a first barrel, a first roller support and a first spring, wherein the first barrel is fixed with the first buckle cover, the top of the first roller support is rotationally connected with a first roller, the bottom of the first roller support is movably connected in the first barrel, the first spring is arranged in the first barrel, and the top of the first spring is abutted against the bottom of the first roller support.
The second elastic supporting roller comprises a second barrel, an air inlet nozzle, a second roller support and a second roller, wherein the second barrel is fixed with the second buckle cover, sealing caps are fixed at the upper end and the lower end of the second barrel, the air inlet nozzle is arranged on the second barrel, air is filled into the second barrel to enable a high-pressure air cavity to be formed in the second barrel, one end of the second roller support penetrates through the sealing caps and is inserted into the high-pressure air cavity, a piston is arranged at the insertion end of the second roller support, and the second roller is connected to the second roller support in a rotating mode.
The lower drying mechanism comprises a third buckle cover, two side supporting rollers, a third elastic supporting roller, a separation net and a fan, wherein the third buckle cover is arranged above a lower glass fiber grid cloth horizontal distribution section, an air outlet is formed in an opening shape close to one end of the exhaust box, the two side supporting rollers are arranged at two ends of the inner side of the third buckle cover, the third elastic supporting roller is arranged in the middle of the inner side of the third buckle cover, the lower glass fiber grid cloth horizontal distribution section is overlapped on the side supporting roller and the third elastic supporting roller, the separation net is arranged on the inner bracket and is arranged below the third buckle cover, and the fan is arranged on the bracket seat and faces the separation net.
The third elastic supporting roller comprises a third barrel, a third roller support, a second spring and a limiting baffle, wherein the third barrel is fixed with the third buckle cover, one end of the third roller support is inserted into the third barrel, the other end of the third roller support is connected with the third roller in a rotating mode, the second spring is located in the third barrel, the top end of the second spring is abutted against the third roller support, and the limiting baffle is fixed above the third barrel and penetrates through the third roller support.
The exhaust box comprises an air outlet box body, a box body air port, a plurality of air inlet openings and an inner partition plate, wherein the air outlet box body is fixed on the main box body, a lower opening is formed in the bottom of the air outlet box body, the box body air port is arranged above the air outlet box body, the top of the box body air port penetrates through the main box body, the air inlet openings face to the clamping cavity, the inner partition plate is arranged in the main box body and is positioned on one side of the air inlet openings, an inner separation cavity is formed between the inner partition plate and the air inlet openings, and the upper part of the inner separation cavity is opened.
Preferably, an outer connecting plate is fixed at one end of the air inlet opening, a lap joint edge is fixed at the other end of the air inlet opening opposite to the outer connecting plate, a lap joint plate is arranged at one end of the first buckle cover close to the exhaust box, the lap joint plate is abutted against the lap joint edge, and an air outlet clamping cavity is formed between the lap joint plate and the outer connecting plate.
Preferably, the air supply assembly comprises an air inlet cylinder arranged at one side of the main box body and an air inlet connecting pipe communicated with the air inlet cylinder, and the air inlet connecting pipes are respectively communicated with the clamping cavities.
The glass fiber mesh cloth drying device has the beneficial effects that the guide rollers distributed in a snake shape are matched with the cavity clamping structure, so that the stroke of the glass fiber mesh cloth in a drying cavity and the contact area with air flow are greatly increased, the drying efficiency is effectively improved, the first elastic supporting roller and the second elastic supporting roller arranged in the cavity clamping structure enable the glass fiber mesh cloth to generate irregular shaking under the air flow blowing through the elastic action of the spring and the high-pressure air cavity, the dynamic contact of the air flow and the fiber surface is obviously enhanced, the rapid separation of moisture is promoted, and in addition, the lower drying mechanism enables the temperature of a product to approach normal temperature through the synergistic action of natural air cooling and the third elastic supporting roller, the subsequent winding is convenient, and the following effects can be achieved:
1. Adopt the direction roller cooperation of snakelike distribution to press from both sides cavity structure, lengthen the stoving stroke of glass fiber net cloth in the main tank body by a wide margin, strengthen the contact density of air current and net cloth through pressing from both sides the local constraint of cavity simultaneously, effectively enlarged area of contact, solved traditional equipment because of the stoving inefficiency problem that straight transport leads to.
2. The first elastic supporting roller (spring driving) and the second elastic supporting roller (high-pressure air cavity driving) in the clamping cavity form staggered elastic interference, so that irregular shaking is generated on the mesh cloth under air flow blowing, dynamic contact between the air flow and the surface of the fiber is remarkably enhanced, the problem of partial moisture residue in static conveying is avoided, and the whole drying uniformity of the mesh cloth is ensured.
3. The lower drying mechanism introduces natural wind through a fan, combines the elastic shaking effect of the third elastic supporting roller, enables the temperature of the grid cloth to quickly approach to normal temperature when finishing the final-stage drying, avoids the quality problems of deformation, adhesion and the like caused by winding in a high-temperature state, and simplifies the subsequent processing flow.
4. The exhaust box is through air inlet opening, lower opening and interior structural design who separates the chamber, accurate collection presss from both sides the air current of chamber and lower stoving mechanism and uniformly derive, avoids damp and hot gas to be detained in the main tank, guarantees drying environment's stability, further promotes stoving effect.
5. The clamp cavity can be flexibly adjusted according to the specification of the grid cloth through the combined structure of the first buckle cover and the second buckle cover, and the suitability of the equipment is improved.
In conclusion, the invention realizes the cooperative promotion of the drying efficiency, uniformity and subsequent procedure suitability through structural optimization, and effectively solves the core technical defects of the traditional glass fiber mesh cloth drying equipment.
Drawings
FIG. 1 is a schematic perspective view of the present invention;
FIG. 2 is a front view of the present invention;
FIG. 3 is a front view of the exhaust box of the present invention;
FIG. 4 is a schematic perspective view of an exhaust box according to the present invention;
FIG. 5 is an enlarged schematic view of the structure of FIG. 2A according to the present invention;
FIG. 6 is a front view of a third resilient support roller of the present invention;
FIG. 7 is a perspective view of a third resilient support roller of the present invention;
FIG. 8 is a schematic view of a first resilient support roller of the present invention;
fig. 9 is a schematic view of a second elastic supporting roller structure according to the present invention.
The reference numerals in the figure indicate that 1, a bracket seat, 2, a main box body, 3, a side box cover, 4, an inlet end roller, 5, an outlet end roller, 6, an inlet cylinder, 7, an exhaust box, 71, an outlet box body, 72, a box body air port, 73, an inner partition plate, 74, an inner separation chamber, 75, a lower opening, 76, an inlet opening, 8, an inner bracket, 9, a guide roller, 10, a first buckle closure, 11, a second buckle closure, 12, a clamping cavity, 13, a first elastic support roller, 131, a first barrel part, 132, a first spring, 133, a first roller bracket, 134, a first roller, 14, a second elastic support roller, 141, a second barrel part, 142, a sealing cap, 143, an inlet nozzle, 144, a high-pressure air chamber, 145, a second roller bracket, 146, a piston, 147, a second roller, 15, an inlet opening, 16, a buckle closure, 17, a third buckle closure, 18, a side support roller, 19, an outlet opening, 20, a third elastic support roller, 202, a third roller bracket, a third roller, a fan, a flange, 25, a limiting plate, a fan, a 25, a connecting plate, a third roller, a flange, and a limiting plate.
Detailed Description
The invention will be better explained by the following detailed description of the embodiments with reference to the drawings.
The following description of the embodiments of the present invention will be made clearly and completely with reference to the accompanying drawings, in which it is apparent that the embodiments described are only some embodiments of the present invention, but not all embodiments. Various modifications can be made to the embodiments as long as the effects of the present invention can be exerted.
The components in the present case are sequentially connected by a person skilled in the art, and specific connection and operation sequence should be referred to the following working principle, and the detailed connection means thereof are known in the art, and the following working principle and process are mainly described.
As shown in fig. 1 and 2, in one embodiment, a glass fiber mesh cloth drying apparatus is disclosed, which comprises a support frame 1 and an inner support frame 8, wherein the inner support frame 8 is arranged above the support frame 1 to form a horizontal plane for the top of the support frame 1, and in addition, a main box body 2 is fixed at the top of the support frame 1, and a side cover 3 is detachably connected to the side of the main box body 2, so that after the side cover 3 is opened, the maintenance of the internal parts is facilitated, and the initial end of the glass fiber mesh cloth is led to each guide roller 9.
In this embodiment, the front and rear sides of the main box 2 are respectively provided with an inlet and an outlet, the inner bracket 8 is erected in the main box 2 along the inlet and the outlet, and in addition, the inlet and the outlet are respectively rotatably connected with an inlet end roller 4 and an outlet end roller 5, and when in implementation, the glass fiber mesh cloth enters the main box 2 from the inlet through the inlet end roller 4 and flows out from the outlet end roller 5.
Further, as shown in fig. 2, the drying device in this embodiment further includes a plurality of guiding rollers and at least one clamping cavity, wherein the plurality of guiding rollers 9 are respectively disposed in the inner cavity of the main box 2 from top to bottom, so that the glass fiber mesh cloth is distributed in the inner cavity of the main box 2 in a serpentine shape in the main box 2, the glass fiber mesh cloth is lapped on the plurality of guiding rollers 9 to form a plurality of horizontal distribution sections and vertical sections, and the glass fiber mesh cloth is dried in the multi-section guiding process.
In addition, as shown in fig. 1 and 2, in this embodiment, a gas supply assembly is connected to the cavity, and gas is blown into the cavity, so that the gas flows in the smaller cavity 12 at a high speed, and the gas flows on the surface of the glass fiber mesh fabric in the high-speed flowing process to dehumidify and dry.
Specifically, in an exemplary embodiment, the air supply assembly comprises an air inlet cylinder 6 arranged at one side of the main box body 2 and an air inlet connecting pipe 15 communicated with the air inlet cylinder 6, wherein the air inlet connecting pipes 15 are respectively communicated with the clamping cavities 12, and the dried hot air enters the air inlet connecting pipes 15 through the air inlet cylinder 6 to be split, and is split into a plurality of clamping cavities 12 to be blown on the surface of the glass fiber mesh cloth.
It should be noted that, be connected with first shake piece in the clamp cavity, contradict on glass fiber net cloth, make on the glass fiber net cloth by the gas when blowing on shake piece irregular shake, make the air current by the gas blowing change into the state and the air current contact of glass fiber net cloth irregular shake under the horizontal static transportation state of glass fiber net cloth, strengthen the contact effect of air current and glass fiber net cloth, improve the stoving effect to glass fiber net cloth.
As shown in fig. 2, the first shaking member is disposed in the clamping cavity 12, and the first shaking member includes a first elastic supporting roller 13 and a second elastic supporting roller 14 disposed on two sides of the clamping cavity 12, where the first elastic supporting roller 13 and the second elastic supporting roller 14 are disposed on the first buckle cover 10 and the second buckle cover 11 respectively and are disposed alternately.
In this embodiment, as shown in fig. 8, the first elastic supporting roller 13 includes a first barrel 131, a first roller support 133 and a first spring 132, where the top of the first roller support 133 is rotatably connected with a first roller 134, the bottom of the first roller support 133 is movably connected in the first barrel 131, the first barrel 131 is fixed with the first buckle cover 10, so that the first roller 134 is disposed downward, the first spring 132 is disposed in the first barrel 131, the top of the first spring is abutted against the bottom of the first roller support 133, the glass fiber mesh fabric is overlapped on the first roller 134 to change direction in the first direction, and the first roller 134 is pressed under the action force of air flow, so that the first roller support 133 moves inwards to compress the first spring 132, the first roller support 133 is vibrated to continuously press the first spring 132 by the air flow blowing the glass fiber mesh fabric, and the first roller support 133 is repeatedly pushed by the elastic pushing force of the first spring 132, so that the glass fiber mesh fabric continuously forms an effect, and the effect of separating water vapor from the glass fiber mesh fabric is improved.
In this embodiment, as shown in fig. 9, the second elastic supporting roller 14 includes a second cylinder 141, an air inlet nozzle 143, a second roller support 145 and a second roller 147, wherein the second cylinder 141 is fixed with the second buckle cover 11, the upper end and the lower end of the second cylinder are both fixed with a sealing cap 142, the air inlet nozzle 143 is arranged on the second cylinder 141, the air inlet nozzle 143 is connected with a high-pressure air source, such as an air pump, the air inlet nozzle 143 is filled with air into the second cylinder 141 to form a high-pressure air cavity 144 in the second cylinder 141, one end of the second roller support 145 penetrates through the sealing cap 142 and is inserted into the high-pressure air cavity 144, the inserted end is provided with a piston 146, the second roller 147 is rotatably connected to the second roller support 145, the glass fiber mesh cloth is lapped on the second roller 147 to change direction, and the second mesh roller 147 is pressed under the action force of air flow, so that the second roller support 145 moves inwards to compress the high-pressure air in the high-pressure air cavity 144, the air inlet nozzle 143 blows the glass fiber mesh cloth through the air flow to drive the second roller support to reciprocate the high-pressure air cavity 144, and the high-pressure air mesh cloth is repeatedly pressed by the air flow to separate from the second roller support and the high-pressure mesh support, thereby the elastic support is repeatedly broken, and the elastic fiber support is formed.
As shown in fig. 2, the drying device in this embodiment further includes a lower drying mechanism disposed at the bottom of the inner cavity of the main casing 2 and configured to blow air to the horizontally-distributed section below the glass fiber mesh cloth, and the lower drying mechanism is configured to blow natural air to the glass fiber mesh cloth to be discharged from the outlet, so that the temperature of the glass fiber mesh cloth approaches normal temperature, and a drying operation for the final section of the glass fiber mesh cloth is formed.
Specifically, the lower drying mechanism comprises a third buckle cover 17, two side supporting rollers 18 and a third elastic supporting roller 20, wherein the third buckle cover 17 is positioned above the lower glass fiber grid cloth horizontal distribution section, one end close to the exhaust box 7 is in an opening shape to form an air outlet 19, the two side supporting rollers 18 are positioned at the two inner ends of the third buckle cover 17, the third elastic supporting roller 20 is positioned in the middle of the inner side of the third buckle cover 17, the lower glass fiber grid cloth horizontal distribution section is overlapped on the side supporting rollers 18 and the third elastic supporting roller 20, so that the lower glass fiber grid cloth is turned on the two side supporting rollers 18 and the third elastic supporting roller 20, and the lower glass fiber grid cloth moves in the third buckle cover 17 in a wave shape.
Further, the lower drying mechanism further comprises a separation net 22 and a fan 21, wherein the separation net 22 is arranged on the inner bracket 8 and positioned below the third buckle cover 17, the fan 21 is arranged on the bracket seat 1 and is arranged towards the separation net 22, and wind power generated by the operation of the fan 21 penetrates through the separation net 22 to act in the third buckle cover 17 so that natural wind blows on the glass fiber mesh cloth.
In this embodiment, as shown in fig. 6 and 7, the third elastic supporting roller 20 includes a third barrel 201, a third roller support 202, a second spring 204 and a limit baffle 205, where one end of the third roller support 202 is inserted into the third barrel 201 and the other end is rotatably connected with the third roller 203, the second spring 204 is located in the third barrel 201, the top end abuts against the third roller support 202, the limit baffle 205 is fixed above the third barrel 201 and passes through the third roller support 202, the third roller 203 is pressed under the action of natural wind to make the third roller support 202 move inwards to compress the second spring 204, the third roller support 202 is driven to reciprocate by the vibration of the glass fiber mesh cloth through the airflow, the third roller support 202 is repeatedly pressed by the elastic driving force of the second spring 204, and the glass fiber mesh cloth is repeatedly pushed to continuously vibrate to form an effect, so that the separation effect of water vapor from the glass fiber mesh cloth is improved.
In this embodiment, as shown in fig. 2, the above-mentioned cavity comprises a first buckle cover 10 and a second buckle cover 11 positioned on one side of the upper glass fiber mesh cloth horizontal distribution section, a supporting frame 16 is disposed between two adjacent second buckle covers 11, and a cavity 12 through which the upper glass fiber mesh cloth horizontal distribution section passes is formed between the first buckle cover 10 and the second buckle cover 11.
In addition, as shown in fig. 2, the air exhaust box 7 is arranged at one side of the inner cavity of the main box body 2, and collects the air flowing out of the clamping cavity and the lower drying mechanism and guides the air out of the main box body 2.
Specifically, as shown in fig. 3 and 4, the exhaust box 7 comprises an exhaust box 71, a box air port 72, a plurality of air inlet openings 76 and an inner partition 73, wherein the exhaust box 71 is fixed on the main box 2, the box air port 72 is arranged above the exhaust box 71 and penetrates through the main box 2 at the top, air flow in the main box 2 flows out through the box air port 72, a lower opening 75 is formed at the bottom of the exhaust box 71, the lower opening 75 is close to the air outlet 19 at one end of the third buckle cover 17, so that air flow out of the third buckle cover 17 can enter the exhaust box 71 through the lower opening 75, in addition, the plurality of air inlet openings 76 are arranged towards the clamp cavity 12, air flowing out of the clamp cavity 12 enters the inside of the exhaust box 71 through the air inlet openings 76, the inner partition 73 is arranged in the main box 2 and is positioned at one side of the air inlet openings 76, an inner partition 74 is formed between the inner partition 74, an upper opening is formed above the inner partition 74, air flowing out of the clamp cavity 12 enters the inner partition 74 through the air inlet opening 76, and natural wind flowing into the upper partition 71 through the upper opening 75, and natural wind flowing into the air flowing into the clamp cavity 12 through the lower opening 71 is prevented from entering the air inlet opening 12.
In addition, as shown in fig. 5, an external connection plate 25 is fixed at one end of the air inlet opening 76, a lap joint edge 26 is fixed at the other end opposite to the external connection plate 25, a lap joint plate 23 is arranged at one end of the first buckle cover 10 close to the exhaust box 7, the lap joint plate 23 is abutted against the lap joint edge 26, an air outlet clamping cavity 24 is formed between the lap joint plate 23 and the external connection plate 25, and after the first buckle cover 10 is installed, the lap joint plate 23 and the external connection plate 25 can form the air outlet clamping cavity 24 to provide an outflow channel of air flow in the clamping cavity 12.
The working principle is as follows:
The glass fiber mesh cloth enters the main box body 2 through the inlet end roller 4 at the inlet, is distributed in a serpentine shape under the guidance of the guide rollers 9, and forms a multi-section horizontal distribution section and a vertical section, thereby greatly prolonging the drying stroke in the main box body 2;
For the upper horizontal distribution section, the horizontal distribution section passes through a clamping cavity 12 formed by the first buckle cover 10 and the second buckle cover 11; the first elastic supporting roller 13, the first roller 134 props against the grid cloth, when the grid cloth is pressed, the first roller bracket 133 compresses the first spring 132 in the first barrel part 131, the first spring 132 rebound force pushes the first roller 134 to form reciprocating vibration, the second barrel part 141 of the second elastic supporting roller 14 is filled with gas through the air inlet nozzle 143 to form a high-pressure gas cavity 144, when the grid cloth presses the second roller 147, the second roller bracket 145 drives the piston 146 to compress the high-pressure gas, the gas elastically pushes the first roller 134 back, and the two are staggered and cooperated to ensure that the grid cloth generates irregular vibration under the blowing of the gas flow, thereby obviously enhancing the dynamic contact between the gas flow and the fiber surface and improving the drying effect;
When the third roller 203 of the third elastic supporting roller 20 is pressed by the grid cloth, the third roller bracket 202 compresses the second spring 204 in the third barrel 201, the reaction force of the second spring 204 promotes the grid cloth to shake, the fan 21 on the bracket seat 1 generates natural wind, and the natural wind blows to the horizontal section through the separation net 22, so that the temperature of the grid cloth is reduced while the final drying is finished, and the subsequent winding is convenient;
The air flow in the clamping cavity 12 enters the inner separation cavity 74 of the exhaust box 7 through the air outlet clamping cavity 24 and the air inlet opening 76, the air flow of the lower drying mechanism enters the air outlet box 71 through the air outlet 19 and the lower opening 75, finally all the air is led out of the main box 2 through the box air opening 72, the inner separation plate 73 prevents different air flows from interfering with each other, the stable drying environment is ensured, the side box cover 3 is detachable, the equipment maintenance and the grid cloth threading are convenient, and the support frame 16 supports the second buckle cover 11, so that the stable operation of the whole structure is ensured.
The foregoing has outlined the basic principles, features, and advantages of the present invention. However, the foregoing is merely specific examples of the present invention, and the technical features of the present invention are not limited thereto, and any other embodiments that are derived by those skilled in the art without departing from the technical solution of the present invention are included in the scope of the present invention.
In the description of the present invention, each embodiment focuses on the differences from other embodiments, and the same similar parts between the embodiments are referred to each other. For the device disclosed in the embodiment, since it corresponds to the method disclosed in the embodiment, the description is relatively simple, and the relevant points refer to the description of the method section.
Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made therein without departing from the principles and spirit of the invention, the scope of which is defined in the appended claims and their equivalents.

Claims (9)

1. A fiberglass mesh drying device, comprising:
the support comprises a support seat (1), a main box body (2) is fixed at the top, a side box cover (3) is detachably connected to the side face of the main box body (2), and an inlet and an outlet are respectively formed below the front side and the rear side of the main box body (2);
An inner bracket (8) arranged in the main box body (2) along the inlet and the outlet;
an inlet end roller (4) and an outlet end roller (5) are respectively and rotatably connected in the inlet and the outlet;
The guide rollers (9) are respectively arranged in the inner cavity of the main box body (2) from top to bottom, so that the glass fiber mesh cloth is distributed in a serpentine shape in the main box body (2); the glass fiber mesh cloth is lapped on a plurality of guide rollers (9) to form a plurality of horizontal distribution sections and vertical sections;
at least one clamping cavity clamped on the upper horizontal distribution section of the glass fiber mesh cloth;
the air supply assembly is connected to the clamping cavity and blows air into the clamping cavity;
the first shaking piece is arranged in the clamping cavity and is abutted against the glass fiber mesh cloth, so that the glass fiber mesh cloth shakes on the shaking piece when being blown by gas;
The lower drying mechanism is arranged at the bottom of the inner cavity of the main box body (2) and blows air to a horizontal distribution section below the glass fiber mesh cloth;
The exhaust box (7) is arranged on one side of the inner cavity of the main box body (2), and is used for collecting the gas flowing out of the clamping cavity and the lower drying mechanism and guiding out of the main box body (2).
2. The glass fiber mesh cloth drying device according to claim 1, wherein the clamping cavity comprises a first buckle cover (10) and a second buckle cover (11) which are positioned on one side and the other side of the upper glass fiber mesh cloth horizontal distribution section, a supporting frame (16) is arranged between two adjacent second buckle covers (11), and a clamping cavity (12) through which the upper glass fiber mesh cloth horizontal distribution section passes is formed between the first buckle cover (10) and the second buckle cover (11);
The first shaking piece is arranged in the clamping cavity (12), the first shaking piece comprises a first elastic supporting roller (13) and a second elastic supporting roller (14) which are respectively arranged on two sides of the clamping cavity (12), and the first elastic supporting roller (13) and the second elastic supporting roller (14) are respectively arranged on the first buckle closure (10) and the second buckle closure (11) in a relative mode and are arranged in a staggered mode.
3. A glass fiber mesh cloth drying apparatus according to claim 2, wherein the first elastic supporting roller (13) comprises:
a first barrel (131) fixed to the first buckle closure (10);
The top of the first roller bracket (133) is rotationally connected with a first roller (134), and the bottom of the first roller bracket is movably connected in the first barrel part (131);
The first spring (132) is arranged in the first barrel part (131), and the top of the first spring is abutted against the bottom of the first roller bracket (133).
4. A glass fiber scrim drying apparatus according to claim 2, wherein said second elastic support roll (14) comprises:
the second barrel part (141) is fixed with the second buckle cover (11), and sealing caps (142) are fixed at the upper end and the lower end of the second barrel part;
The air inlet nozzle (143) is arranged on the second barrel part (141), and air is filled into the second barrel part (141) to enable the second barrel part (141) to form a high-pressure air cavity (144);
A second roller bracket (145), one end of which penetrates through the sealing cap (142) and is inserted into the high-pressure air cavity (144), and the insertion end is provided with a piston (146);
And the second roller (147) is rotatably connected to the second roller bracket (145).
5. The apparatus for drying glass fiber mesh cloth according to claim 1, wherein the lower drying mechanism comprises:
A third buckle cover (17) which is positioned above the lower glass fiber mesh cloth horizontal distribution section and is close to one end of the exhaust box (7) to form an air outlet (19) in an opening shape;
two side support rollers (18) positioned at both ends of the inner side of the third buckle cover (17);
The third elastic supporting roller (20) is positioned in the middle of the inner side of the third buckle cover (17);
wherein, the glass fiber mesh cloth horizontal distribution section positioned below is lapped on the side supporting roller (18) and the third elastic supporting roller (20), and the device further comprises:
a screen (22) arranged on the inner bracket (8) and positioned below the third buckle cover (17);
The fan (21) is arranged on the bracket seat (1) and is arranged towards the separation net (22).
6. The glass fiber scrim drying apparatus according to claim 5, wherein said third elastic support roll (20) comprises:
a third barrel (201) fixed to the third buckle closure (17);
A third roller bracket (202), one end of which is inserted into the third barrel (201), and the other end of which is rotatably connected with a third roller (203);
A second spring (204) positioned in the third barrel (201), and the top end of the second spring is abutted against the third roller bracket (202);
and the limit baffle (205) is fixed above the third barrel part (201) and penetrates through the third roller bracket (202).
7. The glass fiber mesh cloth drying apparatus according to claim 1, wherein the exhaust box (7) comprises:
the air outlet box body (71) is fixed on the main box body (2), and a lower opening (75) is formed in the bottom of the air outlet box body (71);
a box body air port (72) which is arranged above the air outlet box body (71) and the top of which penetrates through the main box body (2);
a plurality of air inlet openings (76) disposed toward the clamp chamber (12);
The inner partition plate (73) is arranged in the main box body (2) and is positioned on one side of the air inlet opening (76), an inner separation cavity (74) is formed between the inner partition plate (73) and the air inlet opening (76), and the upper side of the inner separation cavity (74) is opened.
8. The glass fiber mesh cloth drying device according to claim 7, wherein an outer connecting plate (25) is fixed at one end of the air inlet opening (76), a lap joint edge (26) is fixed at the other end of the air inlet opening opposite to the outer connecting plate (25), a lap joint plate (23) is arranged at one end, close to the exhaust box (7), of the first buckle cover (10), the lap joint plate (23) is abutted against the lap joint edge (26), and an air outlet clamping cavity (24) is formed between the lap joint plate (23) and the outer connecting plate (25).
9. The glass fiber mesh cloth drying device according to claim 1, wherein the air supply assembly comprises an air inlet cylinder (6) arranged on one side of the main box body (2) and an air inlet connecting pipe (15) communicated with the air inlet cylinder (6), and the air inlet connecting pipes (15) are respectively communicated with the clamping cavities (12).
CN202511358066.2A 2025-09-23 2025-09-23 Glass fiber net cloth drying device Active CN120846057B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202511358066.2A CN120846057B (en) 2025-09-23 2025-09-23 Glass fiber net cloth drying device

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202511358066.2A CN120846057B (en) 2025-09-23 2025-09-23 Glass fiber net cloth drying device

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CN120846057A true CN120846057A (en) 2025-10-28
CN120846057B CN120846057B (en) 2025-12-09

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Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FI20065061A0 (en) * 2006-01-30 2006-01-30 Metso Paper Inc Method and apparatus for drying part of a fiber web machine such as a paper or board machine
CN106865353A (en) * 2017-04-07 2017-06-20 盐城帝佳妮服饰有限公司 One kind weaving thread tensioner
CN210268062U (en) * 2019-04-16 2020-04-07 沈阳市新天地制衣有限公司 Corrosion-resistant cloth even air blast drying cabinet
DE212021000013U1 (en) * 2021-02-24 2021-05-06 Suzhou Wang Yongheng Silk Science And Technology Culture Co., Ltd. A textile oven for reciprocating and continuous drying of fabrics
CN215598020U (en) * 2021-05-05 2022-01-21 江苏思慕新型纺织科技有限公司 Fiber mesh cloth scraping, airing and shaking drying device

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FI20065061A0 (en) * 2006-01-30 2006-01-30 Metso Paper Inc Method and apparatus for drying part of a fiber web machine such as a paper or board machine
CN106865353A (en) * 2017-04-07 2017-06-20 盐城帝佳妮服饰有限公司 One kind weaving thread tensioner
CN210268062U (en) * 2019-04-16 2020-04-07 沈阳市新天地制衣有限公司 Corrosion-resistant cloth even air blast drying cabinet
DE212021000013U1 (en) * 2021-02-24 2021-05-06 Suzhou Wang Yongheng Silk Science And Technology Culture Co., Ltd. A textile oven for reciprocating and continuous drying of fabrics
CN215598020U (en) * 2021-05-05 2022-01-21 江苏思慕新型纺织科技有限公司 Fiber mesh cloth scraping, airing and shaking drying device

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