Production process and equipment for high-strength and high-temperature-resistant glass fiber cloth

Through the design of transmission components and detection components, automatic high-temperature resistance testing of glass fiber cloth is achieved, which solves the problem of decreased accuracy caused by manual sampling and improves detection efficiency and accuracy.

CN116068007BActive Publication Date: 2025-09-12ZHENJIANG ANZHIDUN HIGH TEMPERATURE FIBER PROD CO LTD
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Patent Information

Application Number
CN202211605410.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-14
Publication Date
2025-09-12
Estimated Expiration
2042-12-14

AI Technical Summary

Technical Problem

The existing high-temperature resistance testing method for glass fiber cloth relies on manual sampling, which has a small testing area and leads to reduced accuracy.

Method used

A high-strength and high-temperature resistant glass fiber cloth production equipment is designed. It adopts transmission components and detection components. Electric heating blocks are in alternating contact with the cloth. Combined with an image collector, it automatically detects high-temperature damage to the cloth and generates a thermal deformation curve.

Benefits of technology

It realizes the automation and full coverage of high temperature resistance testing of glass fiber cloth, improves the testing efficiency and accuracy, and ensures the overall quality of the cloth.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a production process and equipment for high-strength, high-temperature-resistant glass fiber cloth, comprising a transmission assembly, a detection assembly, and a detection platform, wherein the transmission assembly and the detection assembly are both arranged on the upper surface of the detection platform; when the glass fiber cloth passes under an electric heating block, an image collector located below the glass fiber cloth collects the degree of high-temperature damage to the cloth and outputs the data to the electrical control program, which is then processed by a processing device within the electrical control program and generates a heat deformation curve (data), thereby completing the detection of the high-temperature resistance of the glass fiber cloth. The present invention sequentially arranges a transmission assembly, a detection assembly, and a detection platform, arranges the transmission assembly and the detection assembly on the upper surface of the detection platform, confines the glass fiber cloth to the surface of the transmission assembly, and activates the detection assembly to test the high-temperature resistance of the cloth, eliminating the need for manual spot checks and ensuring detection accuracy.
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Description

Technical Field

[0001] The present invention relates to the technical field of cloth detection, in particular to a production process of high-strength and high-temperature resistant glass fiber cloth. The present invention also provides a production device for the high-strength and high-temperature resistant glass fiber cloth. Background Art

[0002] As a new type of material in modern industrial production, fiberglass cloth is widely used in various fields of the national economy such as hulls, storage tanks, cooling towers, ships, vehicles, tanks, buildings, etc. due to its advantages such as good insulation, strong heat resistance, good corrosion resistance, and high mechanical strength.

[0003] Fiberglass cloth is used in many fields for its main functions of heat insulation, fire prevention and flame retardancy. This is because when it is burned by flames, it absorbs a lot of heat and can prevent the flames from passing through and isolate the air.

[0004] In the existing technology, glass fiber cloth often comes into contact with high-temperature environments or objects during use, so its high-temperature resistance needs to be tested during the production process. Most of the existing testing methods are through manual sampling, which involves placing it directly in a high-temperature environment to observe its surface changes and analyze the changes in its material composition after heating. Due to the influence of the testing environment, the testing surface is small, resulting in a decrease in detection accuracy. Summary of the Invention

[0005] The object of the present invention is to provide a production device and method for high-strength and high-temperature resistant glass fiber cloth, which can realize automated detection and improve the accuracy of detection without manual sampling; at the same time, the cloth is conveyed while the electric heating block is pressed, and all areas within the cloth are synchronously detected, thereby ensuring the overall quality of the cloth, so as to solve the problems raised in the above background technology.

[0006] To achieve the above object, the present invention provides the following technical solutions:

[0007] The present invention provides a production device for high-strength and high-temperature resistant glass fiber cloth, comprising the following steps:

[0008] S1: Wrap the glass fiber cloth between the driving roller and the passive roller to fix them, and make the glass fiber cloth wrap the tensioning shaft at the same time, and ensure that the detection table is placed on the lower surface of the top layer of the glass fiber cloth;

[0009] S2: Adjust the height of the flip axis to ensure that after it rotates, the electric heating blocks on both sides of the detection bracket are tightly attached to the glass fiber cloth when they turn downward;

[0010] S3: Start the motor to drive the transmission roller to rotate, and at the same time drive the passive roller and the tensioning shaft to float and rotate, so that the glass fiber cloth is transmitted on the surface of the transmission roller, the passive roller and the tensioning shaft;

[0011] S4: Synchronously with step S3, the first pulley, the second pulley, and the transmission belt are connected to drive the flip shaft to rotate. During the rotation, the electric heating blocks on both sides of the detection bracket will alternately contact the glass fiber cloth and perform detection. The electrical control program is used to control the rotation of the motor to jog, ensuring that the contact time between the electric heating blocks and the cloth is 12 seconds, which is the optimal time.

[0012] S5: When the glass fiber cloth passes under the electric heating block, the image collector located under the glass fiber cloth will collect the degree of high-temperature damage to the cloth and output it to the electrical control program. The processing equipment within the electrical control program processes it and generates a thermal deformation curve (data), thereby completing the detection of the high-temperature resistance of the glass fiber cloth.

[0013] The present invention also provides a production device for high-strength and high-temperature resistant glass fiber cloth, comprising a transmission component, a detection component and a detection platform, wherein the transmission component and the detection component are both arranged on the upper surface of the detection platform;

[0014] The transmission assembly includes a first bracket and a second bracket, a transmission roller is rotatably mounted in the first bracket, and a passive roller is rotatably mounted in the second bracket. A detection table is provided on one side of the transmission roller, and the detection table is provided with a light-transmitting plate structure, and an image collector is provided at the bottom of the detection table;

[0015] The detection assembly includes a flip shaft, and the flip shaft surface has an equidistant array of detection brackets, and electric heating blocks are symmetrically arranged on both sides of the detection bracket. A black light filter is fixedly connected between the electric heating blocks. Support frames are provided at both ends of the flip shaft, and the support frames are fixedly installed on the surface of the detection table. One end of the flip shaft is transmission-mounted on the motor, and the end of the flip shaft away from the motor is transmission-connected to the transmission roller.

[0016] A tensioning shaft is provided between the driving roller and the passive roller, and the driving roller, the passive roller and the tensioning shaft are all rubber roller structures.

[0017] The first bracket is fixedly mounted on the upper surface of the detection platform, and the first bracket includes two groups of first vertical plates. The transmission roller is detachably mounted between the two groups of first vertical plates through a bearing seat.

[0018] Among them, the second bracket is fixedly installed on the upper surface of the detection platform away from the first bracket. The second bracket includes two groups of second vertical plates. A U-shaped bracket is rotatably installed on one side of the two groups of second vertical plates. The U-shaped bracket is a graphite bracket structure.

[0019] Among them, adjustment legs are provided at the four corners of the bottom of the detection table. The adjustment legs include hollow tubes. The top of the hollow tubes is threadedly connected to a support rod. The support rod is rotatably installed on the bottom surface of the detection table, and the hollow tubes are fixedly installed on the upper surface of the detection platform.

[0020] Among them, two groups of third vertical plates are symmetrically installed on both sides of the upper surface of the detection table, and there is a slide groove starting from the third vertical plate, which is slidably installed in the slide groove on the support plate, and both ends of the flip axis are rotatably installed in the support plate, and an adjusting screw is rotatably installed on the top of the support plate, and the top end of the adjusting screw is threadedly connected to the top of the third vertical plate and extends to the outside of the third vertical plate.

[0021] One end of the transmission roller is fixedly mounted with a first pulley, one end of the flip shaft passes through the support plate and is fixedly mounted with a second pulley, and a transmission belt is connected between the first pulley and the second pulley.

[0022] A tensioning assembly is provided between the first pulley and the second pulley and is attached to the inner side of the transmission belt. The tensioning assembly includes a tensioning wheel, a fourth support plate is provided on one side of the tensioning wheel, a groove is provided in the fourth support plate, a tensioning plate is slidably installed in the groove, the tensioning wheel is rotatably installed on one side of the tensioning plate, and a compression spring is provided between the tensioning plate and the groove.

[0023] Among them, the detection bracket is opened at the center position of the mounting hole, the detection bracket is connected and fixed through the mounting hole and the flip shaft key, two sets of clamping plates are symmetrically arranged at both ends of the detection bracket, and the electric heating block is detachably clamped between the clamping plates.

[0024] Compared with the prior art, the present invention has the following beneficial effects:

[0025] The present invention sequentially arranges a transmission assembly, a detection assembly, and a detection platform, and arranges the transmission assembly and the detection assembly on the upper surface of the detection platform. The glass fiber cloth is confined to the surface of the transmission assembly, and the detection assembly is activated to test the high-temperature resistance of the cloth. Manual spot checks are not required, and the detection efficiency is increased while ensuring the detection accuracy.

[0026] The present invention forms a closed transmission assembly by arranging a first bracket and a second bracket, and arranging a driving roller and a passive roller in the first bracket and the second bracket respectively, and wrapping the glass fiber cloth between the driving roller and the passive roller. During detection, the motor is started to drive the driving roller to rotate, thereby driving the cloth to move between the driving roller and the passive roller, ensuring the largest detection area, thereby ensuring the overall quality of the cloth;

[0027] The present invention provides a set of detection brackets, and utilizes the special structure of the detection brackets to symmetrically arrange two sets of electric heating blocks on both sides thereof. When the glass fiber cloth moves, the detection brackets are simultaneously driven to rotate, so that the two sets of electric heating blocks alternately fit the cloth surface for detection. During detection, the detection is synchronized with the cloth transmission, and a set of motors drives the transmission assembly and the detection assembly at the same time, thereby improving the detection efficiency and ensuring the detection effect.

[0028] In the present invention, a third vertical plate, a support plate, an adjusting screw and a slide groove are sequentially provided, wherein the threaded rod is connected to the top of the third vertical plate and extends to the outside of the third vertical plate. The flip shaft is slidably installed between the two sets of third vertical plates. Before testing, the height of the testing bracket on the surface of the flip shaft is finely adjusted according to the thickness of the glass fiber cloth to ensure that the electric heating block and the glass fiber cloth are tightly fitted during testing, thereby ensuring the quality of the test.

[0029] In the present invention, when the glass fiber cloth passes under the electric heating block, the image collector located under the glass fiber cloth will collect the degree of high-temperature damage to the cloth and output it to the electrical control program. The processing equipment within the electrical control program processes the data and generates a thermal deformation curve (data), thereby completing the detection of the high-temperature resistance of the glass fiber cloth. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] Figure 1 It is a production flow chart of the present invention;

[0031] Figure 2 It is a right-side perspective structural diagram of the present invention;

[0032] Figure 3 It is a left-side perspective structural diagram of the present invention;

[0033] Figure 4 It is a schematic diagram of the three-dimensional structure of the detection component of the present invention;

[0034] Figure 5 This is a schematic diagram of the three-dimensional structure of the detection bracket of the present invention;

[0035] Figure 6 This is a schematic diagram of the exploded three-dimensional structure of the second bracket of the present invention;

[0036] Figure 7 It is a schematic diagram of the three-dimensional structure of the tensioning assembly of the present invention.

[0037] In the figure: 1. Transmission assembly; 101. First bracket; 1011. First vertical plate; 102. Second bracket; 1021. Second vertical plate; 1022. U-shaped bracket; 103. Transmission roller; 104. Detection table; 105. Image collector; 106. Passive roller; 107. Tensioning shaft; 2. Detection assembly; 201. Turning shaft; 202. Detection bracket; 203. Electric heating block; 204. Support frame; 2 05. Motor; 206. Clamp; 3. Inspection platform; 4. Adjustment leg; 401. Hollow tube; 402. Support rod; 5. Third vertical plate; 501. Slide groove; 502. Support plate; 503. Adjustment screw; 6. First pulley; 7. Second pulley; 8. Drive belt; 9. Tensioning assembly; 901. Tensioning pulley; 902. Fourth support plate; 903. Groove; 904. Tensioning plate; 905. Compression spring. DETAILED DESCRIPTION

[0038] In order to make the purpose, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are 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 work are within the scope of protection of the present invention. Therefore, the following detailed description of the embodiments of the present invention provided in the drawings is not intended to limit the scope of the invention for which protection is sought, but merely represents selected embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.

[0039] In the description of the present invention, it should be understood that the terms indicating orientation or positional relationships are based on the orientation or positional relationships shown in the accompanying drawings and are only used to facilitate the description of the present invention and simplify the description. They do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation. Therefore, they cannot be understood as limiting the present invention.

[0040] In the present invention, unless otherwise expressly specified or limited, the terms "mounted," "connected," "connect," "fixed," etc. should be understood broadly. For example, they may refer to fixed connection, detachable connection, or integration; mechanical connection or electrical connection; direct connection or indirect connection through an intermediate medium; internal communication between two components or interaction between two components. Those skilled in the art will be able to understand the specific meanings of the above terms in the present invention based on the specific circumstances of the specification.

[0041] See also Figure 1The present invention also provides a production process for high-strength and high-temperature resistant glass fiber cloth, comprising the following steps:

[0042] S1: Wrap the glass fiber cloth between the driving roller 103 and the passive roller 106 to fix them, and make the glass fiber cloth wrap the tensioning shaft 107 at the same time, and ensure that the detection table 104 is set in close contact with the lower surface of the top layer of the glass fiber cloth;

[0043] S2: Adjust the height of the flip shaft 201 to ensure that after it rotates, the electric heating blocks 203 on both sides of the detection bracket 202 are tightly attached to the glass fiber cloth when they turn downward;

[0044] S3: Starting the motor 205 drives the driving roller 103 to rotate, and at the same time drives the passive roller 106 and the tensioning shaft 107 to float and rotate, so that the glass fiber cloth is conveyed on the surfaces of the driving roller 103, the passive roller 106 and the tensioning shaft 107;

[0045] S4: Synchronously with step S3, the first pulley 6, the second pulley 7, and the transmission belt 8 are connected to drive the turning shaft 201 to rotate. During the rotation, the electric heating blocks 203 on both sides of the detection bracket 202 will alternately contact the glass fiber cloth and perform detection. The electrical control program is used to control the rotation of the motor 205 to jog, ensuring that the contact time between the electric heating blocks 203 and the cloth is 12 seconds, which is the optimal time.

[0046] S5: When the glass fiber cloth passes under the electric heating block 203, the image collector 105 located under the glass fiber cloth will collect the degree of high-temperature damage to the cloth and output it to the electrical control program. The processing equipment in the electrical control program processes it and generates a thermal deformation curve (data), thereby completing the detection of the high-temperature resistance of the glass fiber cloth.

[0047] Based on the above production process, please refer to Figure 2-7 The present invention also provides a production device for high-strength and high-temperature resistant glass fiber cloth, including a transmission component 1, a detection component 2 and a detection platform 3. The transmission component 1 and the detection component 2 are both arranged on the upper surface of the detection platform 3. During detection, the glass fiber cloth is first confined to the surface of the transmission component 1, and the detection component 2 is started to test the high-temperature resistance of the cloth without manual spot checks. In the device, the transmission component 1 and the detection component 2 are driven by a group of motors 205. While increasing the detection efficiency, the automated detection device guarantees the detection accuracy to a certain extent compared to manual spot checks.

[0048] The transmission assembly 1 includes a first bracket 101 and a second bracket 102. A transmission roller 103 is rotatably mounted in the first bracket 110, and a passive roller 106 is rotatably mounted in the second bracket 102. A detection table 104 is provided on one side of the transmission roller 103. The detection table 104 is a light-transmitting plate structure, and an image collector 105 is provided at the bottom of the detection table 104. The detection assembly 2 includes a flip shaft 201. The flip shaft 201 has detection brackets 202 arranged equidistantly on its surface. Electric heating blocks 203 are symmetrically provided on both sides of the detection brackets 202 to perform high-temperature treatment on the glass fiber cloth. When the glass fiber cloth passes under the electric heating blocks 203, the image collector 105 located under the glass fiber cloth will collect the degree of high-temperature damage to the cloth and output it to the electrical control program. The processing equipment in the electrical control program processes the data and generates a thermal deformation curve (data), thereby completing the high-temperature resistance test of the glass fiber cloth. The electrical control program is a well-known electrical control technology to those skilled in the art and is not described in detail.

[0049] A tensioning shaft 107 is provided between the driving roller 103 and the passive roller 106, and the driving roller 103, the passive roller 106 and the tensioning shaft 107 are all rubber roller structures. The rubber roller is provided to increase the friction during transmission to ensure smooth transmission of the glass fiber cloth. The tensioning shaft 107 is a floating roller, which follows the transmission of the glass fiber cloth without power output, and ensures that the glass fiber cloth is always in a tensioned state during the transmission process to avoid wrinkles and insufficient detection area.

[0050] Both ends of the flip shaft 201 are provided with support frames 204, and the support frames 204 are fixedly installed on the upper surface of the detection table 104. One end of the flip shaft 201 is transmission-mounted on the motor 205, and the flip shaft 201 is transmission-connected to the transmission roller 103 at one end away from the motor 205. The detection bracket 202 is centrally provided with a mounting hole, and the detection bracket 202 is fixed by a key connection with the flip shaft 201 through the mounting hole. Two groups of clamping plates 206 are symmetrically provided at both ends of the detection bracket 202, and the electric heating block 203 is detachably clamped between the clamping plates 206. The flip shaft 201 is used to drive the detection bracket 202 to flip, thereby driving the electric heating block 203 to alternately fit the surface of the cloth for detection, following the movement of the glass fiber cloth, and continuously testing the high-temperature resistance of the glass fiber cloth.

[0051] The first bracket 101 is fixedly mounted on the upper surface of the detection platform 3. The first bracket 101 includes two groups of first vertical plates 1011. The transmission roller 103 is detachably rotatably mounted between the two groups of first vertical plates 1011 via a bearing seat. The second bracket 102 is fixedly mounted on the upper surface of the detection platform 3 on the side away from the first bracket 101. The second bracket 102 includes two groups of second vertical plates 1021. A U-shaped bracket 1022 is rotatably mounted on one side of each group of second vertical plates 1021. The U-shaped bracket 1022 is arranged in a graphite bracket structure. The transmission roller 103 and the passive roller 106 are rotatably arranged in the first bracket 101 and the second bracket 102, respectively, to form a closed transmission assembly 1. The passive roller 106 is arranged as a detachable roller to facilitate wrapping the glass fiber cloth between the transmission roller 103 and the passive roller 106.

[0052] The four corners of the bottom of the detection table 104 are each provided with an adjustment leg 4, and the adjustment leg 4 includes a hollow tube 401, and the top of the hollow tube 401 is threadedly connected to a support rod 402, and the support rod 402 is rotatably mounted on the bottom surface of the detection table 104, and the hollow tube 401 is fixedly mounted on the upper surface of the detection platform 3. The adjustment legs 4 are used to adjust the horizontal position of the detection table 104 to ensure its fit with the glass fiber cloth. During detection, the glass fiber cloth is flattened on the surface of the detection table 104 to ensure the accuracy of the detection.

[0053] Two groups of third vertical plates 5 are symmetrically installed on both sides of the upper surface of the detection table 104, and a slide groove 501 is provided in the third vertical plate 5. The slide groove 501 is slidably installed in the support plate 502, and both ends of the flip shaft 201 are rotatably installed in the support plate 502. An adjusting screw 503 is rotatably installed on the top of the support plate 502, and the top of the adjusting screw 503 is threadedly connected to the top of the third vertical plate 5 and extends to the outside of the third vertical plate 5. The flip shaft 201 is slidably installed between the two groups of third vertical plates 5. Before conducting the inspection, the height of the inspection bracket 202 on the surface of the flip shaft 201 is fine-tuned according to the thickness of the glass fiber cloth to ensure that the electric heating block 203 and the glass fiber cloth are tightly fitted during the inspection to ensure the inspection quality.

[0054] One end of the transmission roller 103 is fixedly mounted with a first pulley 6, one end of the flip shaft 201 passes through the support plate 502 and is fixedly mounted with a second pulley 7, a transmission belt 8 is connected between the first pulley 6 and the second pulley 7, a tensioning assembly 9 is arranged between the first pulley 6 and the second pulley 7 and is attached to the inner side of the transmission belt 8, the tensioning assembly 9 includes a tensioning wheel 901, a fourth support plate 902 is arranged on one side of the tensioning wheel 901, a groove 903 is opened in the fourth support plate 902, and a tensioning assembly 901 is slidably mounted in the groove 903. The tensioning plate 904, the tensioning wheel 901 is rotatably installed on one side of the tensioning plate 904, and a compression spring 905 is provided between the tensioning plate 904 and the groove 903. Due to the transmission connection mechanism between the transmission roller 103 and the flip shaft 201, when the flip shaft 201 needs to be fine-tuned, the transmission belt 8 will be affected to a certain extent and may not be able to be completely fitted with the first pulley 6 and the second pulley 7. Therefore, it is necessary to set a set of tensioning components 9 to make the tensioning wheel 901 always fit and tighten the inner side of the transmission belt 8 to ensure the normal transmission function of the transmission belt 8.

[0055] In summary, the working principle of the present invention is as follows:

[0056] The glass fiber cloth is wound between the driving roller 103 and the passive roller 106 to fix it, and the glass fiber cloth is wrapped around the tensioning shaft 107 at the same time, and the detection table 104 is ensured to be in contact with the lower surface of the upper layer of the glass fiber cloth. During the detection, the motor 205 is started to drive the driving roller 103 to rotate, and at the same time drive the passive roller 106 and the tensioning shaft 107 to float and rotate, so that the glass fiber cloth is transmitted on the surface of the driving roller 103, the passive roller 106 and the tensioning shaft 107. Due to the transmission connection of the first pulley 6, the second pulley 7 and the transmission belt 8, the flip shaft 201 is driven to rotate. During the rotation process The electric heating blocks 203 on both sides of the detection bracket 202 will alternately contact the glass fiber cloth. When the glass fiber cloth passes under the electric heating block 203, the image collector 105 located under the glass fiber cloth will collect the degree of high-temperature damage to the cloth and output it to the electrical control program. The processing equipment in the electrical control program processes it and generates a thermal deformation curve (data), thereby completing the test of the high-temperature resistance of the glass fiber cloth. During this period, the electrical control program is used to control the rotation of the motor 205 to be inching, ensuring that the contact time between the electric heating block 203 and the cloth is 12 seconds, which is the best.

[0057] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

[0058] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

Claims

1. A production equipment for high-strength and high-temperature resistant glass fiber cloth, capable of automatically testing the high-temperature resistance of the glass fiber cloth during the production process, characterized in that: It comprises a transmission component (1), a detection component (2) and a detection platform (3), wherein the transmission component (1) and the detection component (2) are both arranged on the upper surface of the detection platform (3); The transmission assembly (1) comprises a first bracket (101) and a second bracket (102); a transmission roller (103) is rotatably mounted in the first bracket (110); a passive roller (106) is rotatably mounted in the second bracket (102); a detection table (104) is provided on one side of the transmission roller (103); the detection table (104) is a light-transmitting plate structure, and an image collector (105) is provided at the bottom of the detection table (104); The detection assembly (2) comprises a flip shaft (201), the flip shaft (201) is provided with detection brackets (202) in an equidistant array along the axial surface, electric heating blocks (203) are symmetrically arranged on both sides of the detection bracket (202), a black filter plate (207) is fixedly connected between the electric heating blocks (203), and support brackets (204) are provided at both ends of the flip shaft (201), the support brackets (204) are fixedly installed on the upper surface of the detection table (104), and the flip shaft (201 ) are rotatably mounted on the support frame (204) at both ends, and the flip shaft (201) is connected to the transmission roller (103) at one end away from the motor (205); the flip shaft is driven to rotate, and during the rotation, the electric heating blocks on both sides of the detection bracket will alternately contact the glass fiber cloth for detection; a tensioning shaft (107) is provided between the transmission roller (103) and the passive roller (106), and the transmission roller (103), the passive roller (106) and the tensioning shaft (107) are all rubber roller structures.

2. The production equipment for high-strength and high-temperature-resistant glass fiber cloth according to claim 1, characterized in that: The first bracket (101) is fixedly mounted on the upper surface of the detection platform (3), and the first bracket (101) comprises two groups of first vertical plates (1011). The transmission roller (103) is detachably rotatably mounted between the two groups of first vertical plates (1011) via a bearing seat.

3. The production equipment for high-strength and high-temperature-resistant glass fiber cloth according to claim 1, characterized in that: The second bracket (102) is fixedly mounted on a side of the upper surface of the detection platform (3) away from the first bracket (101), and the second bracket (102) comprises two groups of second vertical plates (1021). A U-shaped bracket (1022) is rotatably mounted on one side of each of the two groups of second vertical plates (1021), and the U-shaped bracket (1022) is arranged in a graphite bracket structure.

4. The production equipment for high-strength and high-temperature resistant glass fiber cloth according to claim 1, characterized in that: Adjustable legs (4) are provided at the four corners of the bottom of the detection table (104), and the adjustable legs (4) include a hollow tube (401). The top of the hollow tube (401) is threadedly connected to a support rod (402). The support rod (402) is rotatably mounted on the bottom surface of the detection table (104), and the hollow tube (401) is fixedly mounted on the upper surface of the detection platform (3).

5. The production equipment for high-strength and high-temperature-resistant glass fiber cloth according to claim 4, characterized in that: Two groups of third vertical plates (5) are symmetrically installed on both sides of the upper surface of the detection table (104), a slide groove (501) is opened in the third vertical plate (5), a support plate (502) is slidably installed in the slide groove (501), both ends of the flip shaft (201) are rotatably installed in the support plate (502), and an adjusting screw (503) is rotatably installed on the top of the support plate (502), and the top end of the adjusting screw (503) is threadedly connected to the top of the third vertical plate (5) and extends to the outside of the third vertical plate (5).

6. The production equipment for high-strength and high-temperature-resistant glass fiber cloth according to claim 5, characterized in that: One end of the transmission roller (103) is fixedly mounted with a first pulley (6), one end of the flip shaft (201) passes through the support plate (502) and is fixedly mounted with a second pulley (7), and a transmission belt (8) is connected between the first pulley (6) and the second pulley (7).

7. The production equipment for high-strength and high-temperature-resistant glass fiber cloth according to claim 6, characterized in that: A tensioning assembly (9) is provided between the first pulley (6) and the second pulley (7) and is attached to the inner side of the transmission belt (8). The tensioning assembly (9) comprises a tensioning wheel (901). A fourth support plate (902) is provided on one side of the tensioning wheel (901). A groove (903) is provided in the fourth support plate (902). A tensioning plate (904) is slidably installed in the groove (903). The tensioning wheel (901) is rotatably installed on one side of the tensioning plate (904). A compression spring (905) is provided between the tensioning plate (904) and the groove (903).

8. The production equipment for high-strength and high-temperature-resistant glass fiber cloth according to claim 1, characterized in that: The detection bracket (202) is provided with a mounting hole at a central position, and the detection bracket (202) is fixed by a key connection between the mounting hole and the flip shaft (201). Two sets of clamping plates (206) are symmetrically arranged at both ends of the detection bracket (202), and the electric heating block (203) is detachably clamped between the clamping plates (206).

9. A production process using the high-strength and high-temperature resistant glass fiber cloth production equipment according to claim 7, characterized in that: The steps include: S1: Wrap the glass fiber cloth between the driving roller and the passive roller to fix them, and make the glass fiber cloth wrap the tensioning shaft at the same time, and ensure that the detection table is placed on the lower surface of the top layer of the glass fiber cloth; S2: Adjust the height of the flip axis to ensure that after it rotates, the electric heating blocks on both sides of the detection bracket are tightly attached to the glass fiber cloth when they turn downward; S3: Start the motor to drive the transmission roller to rotate, and at the same time drive the passive roller and the tensioning shaft to float and rotate, so that the glass fiber cloth is transmitted on the surface of the transmission roller, the passive roller and the tensioning shaft; S4: Synchronously with step S3, the first pulley, the second pulley, and the transmission belt are connected to drive the turning shaft to rotate. During the rotation, the electric heating blocks on both sides of the detection bracket will alternately contact the glass fiber cloth and perform detection. The electrical control program is used to control the rotation of the motor to jog, ensuring that the electric heating blocks and the cloth are in contact for at least 12 seconds. S5: When the glass fiber cloth passes under the electric heating block, the image collector located under the glass fiber cloth will collect the degree of high-temperature damage to the cloth and output it to the electrical control program. The processing equipment within the electrical control program processes the data and generates thermal deformation curve data, thereby completing the test of the high-temperature resistance of the glass fiber cloth.

Citation Information

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