Glass fiber cloth cleaning tank

By designing a glass fiber cloth cleaning tank for adjusting support components, width adjustment components and limiting components, the problem of unadjustable cleaning and drying of glass fiber cloths in the prior art is solved, and efficient cleaning and drying of glass fiber cloths of different specifications is achieved, reducing production costs and expanding the production scope.

CN120465243APending Publication Date: 2025-08-12JIANGSU HAISHENG NEW MATERIAL CO LTD
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Patent Information

Application Number
CN202510671446.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-23
Publication Date
2025-08-12

AI Technical Summary

Technical Problem

The width of the existing fiberglass cloth cleaning tank cannot be adjusted, resulting in poor compatibility of the equipment for fiberglass cloth of different specifications, increasing production costs and narrowing the production scope.

Method used

A fiberglass cloth cleaning tank including an adjustment support assembly, a width adjustment assembly and an adjustment limit assembly is designed. Through these components, the cleaning and drying of fiberglass cloth rolls of different diameters are realized, the distance and height of the cleaning assembly and drying assembly are adjusted to adapt to different specifications of fiberglass cloth.

Benefits of technology

It realizes effective cleaning and drying of fiberglass rolls with different diameters, reduces production costs, expands production scope, and improves the applicability and efficiency of equipment.

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Abstract

The invention provides a glass fiber cloth cleaning tank, and relates to the technical field of cleaning tanks, the glass fiber cloth cleaning tank comprises an adjusting supporting assembly, a width adjusting assembly and an adjusting limiting assembly, the width adjusting assembly is movably connected to the top of the adjusting supporting assembly, and the adjusting limiting assembly is connected to the inner side of the bottom of the adjusting supporting assembly; a to-be-cleaned glass fiber cloth roll is in contact between the two adjusting and limiting assemblies, and a drying assembly and a cleaning assembly are movably connected to the width adjusting assembly in a spaced mode. The adjusting supporting assembly at least comprises two parallel lifting supports arranged in a spaced mode, a width adjusting assembly is connected between the tops of the two lifting supports, and adjusting limiting assemblies are connected to the inner sides of the bottoms of the lifting supports. The middle of the lifting support is connected with a lifter, and the lifter at least comprises an upper puller, a lifting screw and a lower puller which are sequentially connected from top to bottom. The problems that in the prior art, due to the fact that the width of the cleaning tank cannot be changed, the production cost is increased, and the production range is reduced are solved.
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Description

Technical Field

[0001] The present invention relates to the technical field of cleaning tanks, in particular to a glass fiber cloth cleaning tank. Background Art

[0002] As an important industrial basic material, glass fiber cloth is widely used in composite materials, electronic insulation, building reinforcement and other fields. The cleaning process of glass fiber cloth plays a key role in ensuring the performance of the material. The disadvantages of not cleaning glass fiber cloth include at least:

[0003] 1. Residual wetting agents (such as starch-based lubricants and polyvinyl acetate) on the surface of unwashed glass fiber cloth will form a physical isolation layer. Experimental data shows that when the residual amount exceeds 0.3%, the contact angle of the epoxy resin matrix will increase by more than 15°, resulting in a decrease in resin wettability. During the vacuum infusion process, such defects will reduce the shear strength of the composite material by 30%-45%, and obvious interfacial delamination will occur in the ASTM D2344 standard test.

[0004] 2. Different resin systems have specific requirements for surface conditions. For example, polyester resin is extremely sensitive to amines during its curing process. A boatyard once used unwashed fiberglass cloth containing amine antistatic agents, resulting in "fisheye" defects in the gel coat layer and a 40% increase in curing time.

[0005] 3. The water-soluble components in the wetting agent (such as PEG lubricants) have hygroscopic properties. After being stored in a 60% RH environment for 3 months, the moisture content of unwashed fabric can reach 1.2%. Microbubble clusters are generated when cured at 80°C. Experiments at an automotive parts factory show that this causes the bending modulus of SMC parts to decrease by 18% and the impact strength to decrease by 25%. In a long-term hot and humid environment, residual organic matter will also catalyze stress corrosion cracking of glass fiber.

[0006] However, in the existing technology, the width of the cleaning trough of the structure for glass fiber cloth cannot be adjusted, and it can only be used to clean glass fiber cloth of a specified width. The fixed-width cleaning trough limits the compatibility of the equipment with glass fiber cloths of different specifications. Taking electronic-grade glass fiber cloth as an example, the common width covers 1000-3600mm. When the width of the equipment cannot be adjusted, the company needs to configure multiple sets of cleaning lines for products of different specifications, resulting in an increase of more than 40% in fixed asset investment, and ultimately leading to an increase in production costs and a reduction in production scope. Summary of the Invention

[0007] The purpose of the present application is to provide a glass fiber cloth cleaning tank, which solves the problems of increased production costs and reduced production range caused by the inability to change the width of the cleaning tank in the prior art.

[0008] To achieve the above objectives, the embodiments of the present invention adopt the following technical solutions:

[0009] A glass fiber cloth cleaning tank includes: an adjustment support assembly, a width adjustment assembly, and an adjustment limit assembly. The width adjustment assembly is movably connected to the top of the adjustment support assembly, and the adjustment limit assembly is connected to the inner side of the bottom of the adjustment support assembly. The glass fiber cloth roll to be cleaned is in contact between the two adjustment limit assemblies. A drying assembly and a cleaning assembly are spaced and movably connected on the width adjustment assembly.

[0010] In some embodiments, the adjustment support assembly includes at least two lifting brackets that are parallel and spaced apart, the width adjustment assembly is connected between the tops of the two lifting brackets, and the adjustment limit assembly is connected to the inner sides of the bottoms of the lifting brackets.

[0011] In some embodiments, a lifter is connected to the middle of the lifting bracket, and the lifter at least includes an upper puller, a lifting screw, and a lower puller connected in sequence from top to bottom.

[0012] In some embodiments, the width adjustment component includes at least an adjustment base, a first control center, and a second control center. The two sides of the adjustment base are respectively connected to the tops of the two pullers. The first control center and the second control center are both movably connected to the adjustment base. The lower end of the first control center is connected to the drying component, and the lower end of the second control center is connected to the cleaning component.

[0013] In some embodiments, a limiting sliding groove is provided on the adjustment base, and the first control center and the second control center are both slidably connected in the limiting sliding groove.

[0014] In some embodiments, the adjustment and limiting assembly includes at least an auxiliary rod and an L-shaped limiting slide rail, and the limiting slide rail is movably connected to the inner side of the lifting bracket through the auxiliary rod.

[0015] In some embodiments, a guide plate is connected to the end of the limiting slide rail.

[0016] In some embodiments, the drying assembly includes at least a first transition cylinder, a first driver, and a dryer, wherein the first driver is connected to a side of the first transition cylinder, and the dryer is connected to a bottom of the first transition cylinder.

[0017] In some embodiments, the cleaning assembly includes at least a second transition tube, a second driver, and a purge device, wherein the second driver is connected to a side of the second transition tube, and the purge device is connected to a bottom of the second transition tube.

[0018] In some embodiments, the dryer includes at least a first connecting plate, a first connecting cylinder, and a drying head connected in sequence, and the first connecting plate is connected to the first transition cylinder; the blower includes at least a second connecting plate, a second connecting cylinder, and a cleaning head connected in sequence, and the second connecting plate is connected to the second transition cylinder.

[0019] According to the above technical features, the beneficial effects of the present invention are:

[0020] The present invention is provided with an adjustable support component, a width adjustment component, an adjustable limit component, a drying component, and a cleaning component. The glass fiber cloth roll is rinsed by the cleaning component, and the water-soaked drying component is dried by the drying component. The distance between the drying component and the cleaning component is controlled by the width adjustment component to achieve cleaning of glass fiber cloth rolls of different diameters. The height of the drying component and the cleaning component is adjusted by adjusting the support component to achieve cleaning of the glass fiber cloth roll. This application solves the problems of increased production cost and reduced production range caused by the inability to change the width of the cleaning tank in the prior art. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0022] Figure 1 It is a structural schematic diagram of the present invention;

[0023] Figure 2 A side view of the structure of the present invention;

[0024] Figure 3 It is a front view of the structure of the present invention;

[0025] Figure 4 A top view of the structure of the present invention;

[0026] Figure 5 Schematic diagram of the structure of the dryer in the present invention;

[0027] Figure 6 Schematic diagram of the structure of the purge device in the present invention;

[0028] Figure 7 Schematic diagram of the structure of the width adjustment assembly in the present invention;

[0029] Figure 8 Schematic diagram of the structure of the adjustable limit assembly in the present invention;

[0030] Figure 9A top view of the structure of the present invention;

[0031] Figure 10 This is another structural diagram of the present invention.

[0032] In the figure: 1-lifting bracket; 2-limiting slide rail; 3-auxiliary rod; 4-glass fiber cloth roll; 5-first transition cylinder; 6-lifter; 7-cleaning assembly; 8-drying assembly; 9-puller; 10-puller; 11-lifting screw; 12-first drive; 13-second drive; 14-blower; 15-dryer; 16-first connecting plate; 17-first connecting cylinder; 18-drying head; 19-second connecting plate; 20-second connecting cylinder; 21-cleaning head; 22-second control center; 23-first control center; 24-adjusting base; 25-guide plate; 26-limiting slide; 27-second transition cylinder. DETAILED DESCRIPTION

[0033] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. 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 making creative efforts are within the scope of protection of the present invention.

[0034] It should be noted that in actual production and life, glass fiber cloth, as a high-performance composite material, is widely used in the fields of construction, electronics, automobiles, aerospace, etc. Its surface cleaning and maintenance is a key link to ensure the stability of material performance. If it is not cleaned for a long time, it will lead to multiple hidden dangers. An embodiment of the present invention provides a glass fiber cloth cleaning tank, which includes an adjustment support component, a width adjustment component, and an adjustment limit component. The width adjustment component is movably connected to the top of the adjustment support component, and the adjustment limit component is connected to the inner side of the bottom of the adjustment support component. The two adjustment limit components are in contact with the glass fiber cloth roll 4 to be cleaned, and the drying component 8 and the cleaning component 7 are spaced and movably connected on the width adjustment component. The adjustment support component includes at least two parallel and spaced-apart lifting brackets 1, the width adjustment component is connected between the tops of the two lifting brackets 1, and the adjustment limit components are connected to the inner sides of the bottoms of the lifting brackets 1. A lifter 6 is connected to the middle of the lifting bracket 1, and the lifter 6 includes at least an upper puller 9, a lifting screw 11, and a lower puller 10 connected in sequence from top to bottom.

[0035] Example 1

[0036] Please refer to Figures 1-10An embodiment of the present invention provides a glass fiber cloth cleaning tank, which relates to the technical field of cleaning tanks. The device includes: an adjusting support component, a width adjusting component, and an adjusting limit component. The width adjusting component is movably connected to the top of the adjusting support component, and the adjusting limit component is connected to the inner side of the bottom of the adjusting support component. The two adjusting limit components are in contact with a glass fiber cloth roll 4 to be cleaned, and a drying component 8 and a cleaning component 7 are spaced and movably connected on the width adjusting component.

[0037] It should be noted that in actual production and life, glass fiber cloth, as a high-performance composite material, is widely used in the fields of construction, electronics, automobiles, aerospace, etc. Its surface cleaning and maintenance is a key link to ensure the stability of material performance. If it is not cleaned for a long time, it will lead to multiple hidden dangers, such as: (1) The surface of glass fiber cloth is easy to absorb pollutants such as dust, oil and sulfide in the air and industrial waste gas. Taking the electronics industry as an example, in PCB manufacturing, if 0.01g / cm2 of glass fiber cloth with a thickness of 0.1mm is left on the surface, 2 The insulation resistance of the pollutants may drop sharply from 10^12Ω to 10^8Ω, which directly increases the risk of circuit short circuit by more than 40%. On the other hand, chemical analysis shows that PM2.5 particles in industrial environments contain metal oxide components, which react with the hydroxyl groups on the surface of glass fibers to form conductive complexes, destroying the insulation properties of the material; (2) The main component of glass fiber is silicon dioxide (65-75%), which will react in an acidic environment (such as sulfuric acid mist). The test data of a chemical company shows that the tensile strength of unwashed glass fiber cloth decreased by 37% after being exposed to a pH = 2 environment for 1000 hours. In the salt spray environment of coastal areas, chloride ions penetrate into the fiber to form micro batteries, causing interface debonding and material The life of the material is shortened by more than 60%; (3) After the surface of the glass fiber cloth used for building insulation is covered with dust, the thermal conductivity increases from 0.04W / (m·K) to 0.12W / (m·K), which is equivalent to a 66% reduction in the thickness of the insulation layer. Experimental data show that when the dust layer reaches 2mm, the energy consumption of air conditioners increases by 18%. What is more serious is that if the glass fiber cloth used for heat dissipation of electronic equipment is covered with oil, it will cause the local temperature to rise by 25℃, exceeding that of the insulating material; (4) The interfacial bonding strength between the glass fiber and the resin matrix in the composite material determines the overall performance. Surface pollutants will form a weak interface layer, which will reduce the interlayer shear strength by more than 50%. Scanning electron microscopy shows that there is an amorphous transition layer with a thickness of about 5μm at the contaminated interface, which leads to a decrease in stress transfer efficiency. The blades of wind turbines were not cleaned in time, and after 3 years of operation, they developed delamination and cracks, and the breaking load was only 38% of the design value. (5) In a humid environment, the surface of glass fiber cloth is prone to microorganisms, forming biofilms. The metabolites of microorganisms contain organic acids and enzymes, which can accelerate the hydrolysis rate of glass fiber by 10 times. Hospital clean room tests found that after 6 months of use, the total number of bacteria in the unwashed glass fiber filter material reached 1.2×10^6 CFU / cm2 , exceeding the standard value by 24 times, directly threatening the safety of the medical environment.

[0038] The glass fiber cloth cleaning tank provided in this embodiment is provided with an adjustable support component, a width adjustment component, an adjustable limit component, a drying component 8, and a cleaning component 7. The glass fiber cloth roll 4 is rinsed by the cleaning component 7, and the water-soaked drying component 8 is dried by the drying component 8. The distance between the drying component 8 and the cleaning component 7 is controlled by the width adjustment component to achieve cleaning of glass fiber cloth rolls 4 with different diameters. The height of the drying component 8 and the cleaning component 7 is adjusted by adjusting the support component to achieve cleaning of the glass fiber cloth roll 4. Preferably, a fixed cylinder is connected to the center of the glass fiber cloth roll 4, and the fixed cylinder is surrounded by a grid plate. A rotator is connected to the center of the fixed cylinder, and the rotator can drive the rotation of the fixed cylinder, thereby ensuring the integrity of the glass fiber cloth cleaning. This embodiment solves the problems of increased production cost and reduced production range caused by the inability to change the width of the cleaning tank in the prior art.

[0039] In some embodiments, the adjustable support assembly includes at least two parallel and spaced-apart lifting brackets 1 , a width adjustment assembly is connected between the tops of the two lifting brackets 1 , and an adjustment limit assembly is connected to the inner sides of the bottoms of the lifting brackets 1 .

[0040] In some embodiments, a lifter 6 is connected to the middle of the lifting bracket 1, and the lifter 6 includes at least an upper puller 9, a lifting screw 11, and a lower puller 10 connected in sequence from top to bottom.

[0041] In some embodiments, the width adjustment component includes at least an adjustment base 24, a first control center 23, and a second control center 22. The two sides of the adjustment base 24 are respectively connected to the tops of the two pullers 9. The first control center 23 and the second control center 22 are both movably connected to the adjustment base 24. The lower end of the first control center 23 is connected to the drying component 8, and the lower end of the second control center 22 is connected to the cleaning component 7.

[0042] Example 2

[0043] The present embodiment provides a glass fiber cloth cleaning tank, including an adjustable support assembly, a width adjustment assembly, and an adjustable limit assembly. The width adjustment assembly is movably connected to the top of the adjustable support assembly, and the adjustable limit assembly is connected to the inner side of the bottom of the adjustable support assembly. The two adjustable limit assemblies are in contact with the glass fiber cloth roll 4 to be cleaned. The drying assembly 8 and the cleaning assembly 7 are spaced and movably connected to the width adjustment assembly. The adjustable support assembly includes at least two parallel and spaced-apart lifting brackets 1. The width adjustment assembly is connected between the tops of the two lifting brackets 1, and the adjustable limit assembly is connected to the inner side of the bottom of each lifting bracket 1. The two lifting brackets 1 are provided to achieve stability on both sides of the support, ensuring that the entire device will not collapse during operation. Preferably, reinforcing rods are provided on both sides of the lifting bracket 1.

[0044] In some embodiments, a lifter 6 is connected to the middle of the lifting bracket 1. The lifter 6 includes at least an upper puller 9, a lifting screw 11, and a lower puller 10, which are connected in sequence from top to bottom. The upper puller 9, the lifting screw 11, and the lower puller 10 are arranged to adjust the height of the lifting bracket 1, thereby adjusting the height of the drying assembly 8 and the cleaning assembly 7.

[0045] In some embodiments, the width adjustment assembly includes at least an adjustment base 24, a first control center 23, and a second control center 22. The two sides of the adjustment base 24 are respectively connected to the tops of the two pullers 9. The first control center 23 and the second control center 22 are both movably connected to the adjustment base 24. The lower end of the first control center 23 is connected to the drying assembly 8, and the lower end of the second control center 22 is connected to the cleaning assembly 7. The connection between the first control center 23 and the second control center 22 is achieved through the provision of the adjustment base 24. The first control center 23 and the second control center 22 are used to control the operation of the drying assembly 8 and the cleaning assembly 7, respectively.

[0046] Preferably, the regulating base 24 is connected to an ultrasonic vibration plate array, a multi-stage spraying system and a circulating filtration system, wherein the ultrasonic vibration plate has a frequency of 40kHz and an amplitude of 10-15μm, and the guide plate makes the sound field uniformity deviation less than 5%.

[0047] In some embodiments, a limiting chute 26 is provided on the adjustment base 24, and the first control center 23 and the second control center 22 are both slidably connected within the limiting chute 26. The limiting chute 26 allows adjustment of the distance between the drying assembly 8 and the cleaning assembly 7, so that glass fiber cloth rolls 4 with different diameters can be cleaned.

[0048] In some embodiments, the adjustment limit assembly includes at least an auxiliary rod 3 and an L-shaped limit rail 2, and the limit rail 2 is movably connected to the inner side of the lifting bracket 1 through the auxiliary rod 3. In detail, the limit rail 2 is made of high-strength 316L stainless steel, and its inner wall is polished to Ra≤0.8μm to reduce the adhesion of pollutants. A laser ranging sensor is connected to the inner side of the limit rail 2 for feedback control of the distance between the two limit rails 2. The glass fiber cloth roll 4 is clamped and limited by the two L-shaped limit rails 2, and the distance between the L-shaped limit rails 2 is achieved by the auxiliary rod 3, so that the distance can be adjusted, so as to achieve the purpose of flexibly adapting to glass fiber cloths of different sizes.

[0049] Preferably, the auxiliary rod 3 can drive the two L-shaped limit rails 2 to adjust their spacing, enabling dynamic width adjustment from 500-4000mm with a positioning accuracy of ±0.5mm. The bottom of the adjustable limit assembly is connected to an environmental recovery tank, which houses a wastewater treatment system with a 70% water reuse rate and a plate heat exchanger with a 28% waste heat recovery efficiency. The wastewater treatment system includes at least a flocculation sedimentation tank and a reverse osmosis membrane module. With a 70% water reuse rate, this system saves approximately 120,000 tons of water annually, calculated based on a daily treatment area of 5,000 square meters. The waste heat recovery system is expected to save 280,000 yuan in electricity costs annually.

[0050] In some embodiments, a guide plate 25 is connected to the end of the limiting slide rail 2. The guide plate 25 includes at least a first guide plate and a second guide plate, wherein the first guide plate is rectangular and the second guide plate is rectangular. It should be noted that the first guide plate and the second guide plate are both rotatably connected to the end of the limiting slide rail 2. In some possible embodiments, the first guide plate and the second guide plate can be connected by a movable connection. In addition, in this embodiment, when the fiberglass cloth roll 4 comes out, the first guide plate and the second guide plate are in an obtuse angle opening and closing state. The obtuse angle opening and closing refers to an opening angle greater than 90° between the first guide plate and the second guide plate and the limiting slide rail 2. Optionally, the opening angle is 95°, 100° and 105°.

[0051] In some embodiments, the drying component 8 includes at least a first transition cylinder 5, a first driver 12 and a dryer 15, wherein the first driver 12 is connected to the side of the first transition cylinder 5, and the dryer 15 is connected to the bottom of the first transition cylinder 5. The first driver 12 is connected to the central control system through electrical control to realize the control of the dryer 15. It should be noted that the central control system is an intelligent device for centralized management and control of multiple electrical appliances or equipment. It controls the electrical appliances through sensors, actuators and communication modules at the hardware layer, in conjunction with the operating system and application programs at the software layer, and based on communication protocols such as MQTT, HTTP, etc. In this embodiment, it also controls the dryer 15. It can be understood that the addition of the central control system can improve convenience and efficiency, reduce manual operations, achieve energy saving and consumption reduction, and enhance the coordination ability of equipment.

[0052] In some embodiments, the cleaning assembly 7 includes at least a second transition barrel 27, a second driver 13 and a purge 14, wherein the second driver 13 is connected to the side of the second transition barrel 27, and the purge 14 is connected to the bottom of the second transition barrel 27. The second driver 13 is connected to the central control system through electrical control to realize the control of the purge 14. It should be noted that the central control system is an intelligent device for centralized management and control of multiple electrical appliances or equipment. It controls the electrical appliances through sensors, actuators and communication modules at the hardware layer, in conjunction with the operating system and application programs at the software layer, and based on communication protocols such as MQTT, HTTP, etc. In this embodiment, it also controls the purge 14. It can be understood that the addition of the central control system can improve convenience and efficiency, reduce manual operations, achieve energy saving and consumption reduction, and enhance the coordination ability of equipment.

[0053] In some embodiments, the dryer 15 includes at least a first connecting disk 16, a first connecting tube 17, and a drying head 18 connected in sequence, and the first connecting disk 16 is connected to the first transition tube 5; the blower 14 includes at least a second connecting disk 19, a second connecting tube 20, and a cleaning head 21 connected in sequence, and the second connecting disk 19 is connected to the second transition tube 27.

[0054] The cleaning head 21 is connected to at least a first-stage pre-spray head, a second-stage main spray head, and a third-stage rinsing spray head. The first-stage pre-spray head uses a fan-shaped nozzle with a pressure of 0.1-0.2 MPa and a water temperature of 45±5°C; the second-stage main spray head is a spiral nozzle with a pressure of 0.3-0.5 MPa and a flow regulating valve; the third-stage rinsing spray head is a microporous aeration nozzle, which reduces water consumption by 40%. The second connecting tube 27 contains at least a 1μm bag filter, an activated carbon adsorption column, and a conductivity sensor. The cleaning liquid circulation flow rate is 50-100m 3 / h, the conductivity sensor monitors the water quality in real time and automatically triggers backwashing. Preferably, the pre-spray water temperature is 45℃, the main spray pressure is 0.35MPa, and the ultrasonic power density is 0.8W / cm 2 It should be noted that, compared with the traditional fixed tank, the glass fiber cloth cleaning tank provided in this embodiment shortens the cleaning time by 40%, reduces water consumption by 55%, reduces the product defect rate from 1.2% to 0.25%, shortens the equipment changeover time from 8 hours to 45 minutes, increases the annual production capacity by 22%, reduces the comprehensive energy consumption by 18%, and can also support 500-4000mm width adjustment, reducing the enterprise's equipment investment by more than 60%; the flow field uniformity is improved, and the residual pollutants in the edge area are reduced by 40%; the ultrasonic cleaning efficiency is increased by 3 times, and the cleaning time is compressed from 30 minutes to 10 minutes.

[0055] The dryer head 18 comprises at least a heating element, a high-speed motor, a magnetic nozzle, and an intelligent temperature controller. The heating element in this embodiment is a ceramic heater, utilizing a nickel-chromium alloy heating wire combined with a ceramic coating to improve thermal efficiency and reduce static electricity. The high-speed motor in this embodiment is a brushless motor, capable of reaching 110,000 rpm, improving efficiency by 50%. The magnetic nozzle in this embodiment allows for quick replacement. The intelligent temperature controller in this embodiment includes at least a temperature sensor that monitors the outlet temperature 40 times per second to prevent overheating, as well as an overheat protection mechanism that automatically shuts off the power supply when the bimetallic strip exceeds the specified temperature.

[0056] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. A glass fiber cloth cleaning tank, characterized in that: include: An adjusting support assembly, a width adjusting assembly, and an adjusting limit assembly, wherein the width adjusting assembly is movably connected to the top of the adjusting support assembly, the adjusting limit assembly is connected to the inner side of the bottom of the adjusting support assembly, a glass fiber cloth roll (4) to be cleaned is in contact between the two adjusting limit assemblies, and a drying assembly (8) and a cleaning assembly (7) are spaced and movably connected on the width adjusting assembly.

2. The glass fiber cloth cleaning tank according to claim 1, characterized in that: The adjustment support assembly comprises at least two parallel and spaced-apart lifting brackets (1), the width adjustment assembly being connected between the tops of the two lifting brackets (1), and the adjustment limit assembly being connected to the inner sides of the bottoms of the lifting brackets (1).

3. The glass fiber cloth cleaning tank according to claim 2, characterized in that: A lifter (6) is connected to the middle of the lifting bracket (1), and the lifter (6) comprises at least an upper puller (9), a lifting screw (11), and a lower puller (10) connected in sequence from top to bottom.

4. The glass fiber cloth cleaning tank according to claim 3, characterized in that: The width adjustment component at least includes an adjustment base (24), a first control center (23), and a second control center (22). The two sides of the adjustment base (24) are respectively connected to the tops of the two pullers (9). The first control center (23) and the second control center (22) are both movably connected to the adjustment base (24). The lower end of the first control center (23) is connected to the drying component (8), and the lower end of the second control center (22) is connected to the cleaning component (7).

5. The glass fiber cloth cleaning tank according to claim 4, characterized in that: A limiting sliding groove (26) is provided on the adjustment base (24), and the first control center (23) and the second control center (22) are both slidably connected in the limiting sliding groove (26).

6. The glass fiber cloth cleaning tank according to claim 2, characterized in that: The adjustment and limiting assembly comprises at least an auxiliary rod (3) and an L-shaped limiting slide rail (2); the limiting slide rail (2) is movably connected to the inner side of the lifting bracket (1) via the auxiliary rod (3).

7. The glass fiber cloth cleaning tank according to claim 6, characterized in that: The end of the position-limiting slide rail (2) is connected to a guide plate (25).

8. The glass fiber cloth cleaning tank according to claim 1, characterized in that: The drying assembly (8) comprises at least a first transition cylinder (5), a first driver (12) and a dryer (15), wherein the first driver (12) is connected to the side of the first transition cylinder (5), and the dryer (15) is connected to the bottom of the first transition cylinder (5).

9. The glass fiber cloth cleaning tank according to claim 8, characterized in that: The cleaning assembly (7) comprises at least a second transition barrel (27), a second driver (13) and a purge device (14), wherein the second driver (13) is connected to the side of the second transition barrel (27), and the purge device (14) is connected to the bottom of the second transition barrel (27).

10. The glass fiber cloth cleaning tank according to claim 9, characterized in that: The dryer (15) at least includes a first connecting disk (16), a first connecting tube (17), and a drying head (18) connected in sequence, and the first connecting disk (16) is communicated with the first transition tube (5); the washer (14) at least includes a second connecting disk (19), a second connecting tube (20), and a cleaning head (21) connected in sequence, and the second connecting disk (19) is communicated with the second transition tube (27).