Glass fiber surface treatment device

By designing multiple mechanisms to drive the glass fiber to move and process it evenly, the problem of poor processing effect in a static state is solved, and better processing effect and convenient discharge are achieved.

CN116282972BActive Publication Date: 2025-09-16YUAN YUAN NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202211500972.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-11-28
Publication Date
2025-09-16
Estimated Expiration
2042-11-28

AI Technical Summary

Technical Problem

In the prior art, when glass fibers are processed in a static state, an ideal processing effect cannot be achieved.

Method used

A glass fiber surface treatment device is designed, which includes a material transport mechanism, a pressing mechanism, a material sparging mechanism, a material rubbing mechanism, a material pressing mechanism and a material discharging mechanism. The glass fiber is moved by a dual-axis motor driving the material transport belt and the pressing block, and uniform treatment is ensured by the material sparging and rubbing mechanisms. Finally, the material is conveniently discharged through the material discharging mechanism.

Benefits of technology

The mobile immersion treatment of glass fiber is realized, the treatment effect is improved, the accumulation and discharge problems are avoided, and the uniformity and efficiency of the treatment are ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a processing device, in particular to a glass fiber surface processing device. It is necessary to design a glass fiber surface processing device that can move the glass fiber to complete the immersion treatment and has a good treatment effect. A glass fiber surface processing device includes a reaction frame and a discharge frame, a downward pressing mechanism, a discharge frame fixedly connected to the left side of the top of the reaction frame, and also includes a conveying mechanism, and the reaction frame is provided with a conveying mechanism for transporting the glass fiber. The present invention pours an appropriate amount of pickling liquid into the reaction frame, and then pours an appropriate amount of glass fiber onto the conveying belt through the discharge frame, starts the dual-axis motor, and the conveying belt rotates forward to drive the glass fiber to move to the right. The glass fiber moves to the right and is immersed in the pickling liquid for treatment. The rotating pressure block makes the conveying belt in a concave shape. In this way, the glass fiber can move to complete the immersion treatment, and the pickling liquid has fluidity, which makes the glass fiber treatment effect better.
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Description

Technical Field

[0001] The present invention relates to a processing device, in particular to a glass fiber surface processing device. Background Art

[0002] Glass fiber composites have been widely used in many fields such as aviation, petrochemical, processing and automation industries due to their excellent properties such as high strength, high modulus, good formability, good insulation performance, and resistance to corrosion and fatigue damage.

[0003] Chinese patent publication number CN214937054U discloses a novel glass fiber surface treatment device, including an impregnation tank, a plurality of groups of support legs are fixedly provided at the bottom of the impregnation tank, a fixed cylinder is fixedly provided at the top of the impregnation tank, two support plates are fixedly provided on the outer surface of the fixed cylinder, a servo motor is fixedly provided on the top of each of the two support plates, a driving gear is fixedly provided on the output end of the servo motor, and a driven gear is meshedly connected to the outer surface of the driving gear. Although the above patent can perform surface treatment on glass fibers, since the glass fibers are directly placed in a separation cylinder for treatment and the glass fibers are in a stationary state, the ideal treatment effect of the glass fibers cannot be achieved.

[0004] Based on the defects in the existing technology, we propose a glass fiber surface treatment device that can move the glass fiber to complete the soaking treatment and has good treatment effect. Summary of the Invention

[0005] In order to overcome the disadvantage that the glass fiber is not treated ideally because the glass fiber is directly placed in a separation drum for treatment and is in a static state, the present invention provides a glass fiber surface treatment device that can move the glass fiber to complete the immersion treatment and has good treatment effect.

[0006] The technical solution of the present invention is:

[0007] A glass fiber surface treatment device comprises a reaction frame and a blanking frame, wherein the blanking frame is fixedly connected to the left side of the top of the reaction frame, and further comprises a material transporting mechanism, wherein the reaction frame is provided with the material transporting mechanism for transporting glass fibers.

[0008] Further explanation: it also includes supporting legs and a pressing mechanism. The left and right sides of the reaction frame are fixed with supporting legs, and a pressing mechanism for generating deformation is provided between the material transport mechanism and the reaction frame.

[0009] Further explanation: the material transport mechanism includes a dual-axis motor, a mounting frame, a pulley and a transport belt. The dual-axis motor is fixed to the left side of the reaction frame, and mounting frames are fixed to the front and rear sides of the reaction frame. Pulleys are evenly spaced and rotatably provided between the front and rear mounting frames. The output shaft of the dual-axis motor and the lower left pulley are driven by a synchronous belt, and the transport belt is wrapped around the pulleys.

[0010] Further explanation, the pressing mechanism includes a first rotating rod, a second rotating rod, a first column gear and a rotating pressure block. The left part of the reaction frame is provided with a first rotating rod in a front-to-back symmetrical rotation manner. The first rotating rods on the front and rear sides are respectively driven by a synchronous belt to the output shaft of the dual-axis motor. The left part of the reaction frame is provided with a second rotating rod in a front-to-back symmetrical rotation manner. The second rotating rod is located on the right side of the first rotating rod. Four rotating pressure blocks are provided in a spaced rotation manner on the upper part of the reaction frame. The two rotating pressure blocks on the left are respectively fixedly connected to the second rotating rods on the front and rear sides. The rotating pressure blocks are in contact with the conveyor belt. The first rotating rods on the front and rear sides and the second rotating rods on the front and rear sides are fixedly connected with the first column gears. The two first column gears in the front are meshed with each other, and the two first column gears in the rear are meshed with each other.

[0011] The gears on both sides are symmetrical and symmetrical, and the third rotating rod is provided with a third rotating rod on the left side of the reaction frame. The third rotating rod is located on the right side of the second rotating rod, and the third rotating rod on the front and rear sides is fixed with the second column gear. The front and rear sides can respectively mesh with the second column gears on the front and rear sides. The inner sides of the third rotating rods on the front and rear sides are fixed with the winding wheels, and the first mounting seat is fixed to the left side of the top of the reaction frame. Two sliding rake claws for spreading the glass fiber are slidably provided in the first mounting seat, and the two sliding rake claws are connected to the first mounting seat with a reset spring. A pull rope is wound around the front and rear winding wheels, and the tail ends of the pull ropes on the front and rear sides respectively pass around the front and rear guide wheels and are fixedly connected to the two sliding rake claws.

[0012] Further explanation, it also includes a rubbing mechanism for laying glass fiber, the rubbing mechanism includes a second mounting seat, a sliding plate, a connecting frame, a pressure wheel, an S-shaped groove plate, a connecting plate and a guide rod, a second mounting seat is fixedly connected to the top right side of the reaction frame, a sliding plate is slidingly provided in the second mounting seat, a connecting frame is fixedly connected to the bottom of the sliding plate, a pressure wheel for laying glass fiber is rotatably provided at the lower part of the connecting frame, an S-shaped groove plate is fixedly connected to the top of the sliding plate front and back symmetrically, a connecting plate is fixedly connected to the upper right side of the front and rear sliding rake claws, a guide rod is fixedly connected to the right part of the front and rear connecting plates, the front and rear guide rods are respectively located in the front and rear S-shaped groove plates, the front and rear guide rods are respectively slidably connected to the front and rear S-shaped groove plates, and the front and rear guide rods are fixedly connected to the sliding plate.

[0013] Further explanation: it also includes a pressing mechanism for increasing the working efficiency of the sliding rake claws. The pressing mechanism includes a mounting plate and a curved pressure plate. The lower parts of the two sliding rake claws are fixed with mounting plates, and the two mounting plates are fixed with curved pressure plates.

[0014] Further explanation, it also includes a discharge mechanism for facilitating discharge, which includes a receiving hopper and a sponge block. The receiving hopper for facilitating discharge is fixedly connected to the upper right side of the reaction frame, and the sponge block is fixedly connected to the left side of the receiving hopper.

[0015] The beneficial effects of the present invention are:

[0016] 1. The present invention pours an appropriate amount of pickling liquid into the reaction frame, and then pours an appropriate amount of glass fiber onto the conveyor belt through the blanking frame, starts the dual-axis motor, and the conveyor belt rotates forward to drive the glass fiber to move to the right. The glass fiber moves to the right and is immersed in the pickling liquid to be processed. The pressing block is rotated to make the material conveying pressing block in a concave shape. In this way, the glass fiber can move to complete the immersion treatment, so that the pickling liquid has fluidity, which makes the glass fiber processing effect better.

[0017] 2. Under the action of the material leveling mechanism, the front and rear winding wheels drive the front and rear sliding rake claws to move in and out through the front and rear pull ropes respectively. The front and rear sliding rake claws move in and out to repeatedly rake the glass fiber to prevent the glass fiber from accumulating in the middle of the conveyor belt. In this way, the glass fiber can be prevented from accumulating in the middle of the conveyor belt and affecting the processing effect.

[0018] 3. Under the action of the discharging mechanism, the operator first places the collection container directly under the receiving hopper. When the conveyor belt rotates forward and drives the glass fiber to move to the right, the glass fiber moves to the right through the receiving hopper and falls into the collection container. In this way, it can prevent the glass fiber from falling into the collection container. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic diagram of the three-dimensional structure from the first viewing angle of the present invention.

[0020] Figure 2 It is a partial three-dimensional structural schematic diagram of the present invention.

[0021] Figure 3 It is a schematic diagram of the three-dimensional structure of the material transport mechanism of the present invention.

[0022] Figure 4 It is a partial three-dimensional structural schematic diagram of the material transport mechanism of the present invention.

[0023] Figure 5 It is a schematic diagram of the three-dimensional structure of the pressing mechanism of the present invention.

[0024] Figure 6 This is a schematic diagram of the three-dimensional structure from a second viewing angle of the present invention.

[0025] Figure 7 It is a schematic diagram of the three-dimensional structure of the material mixing mechanism of the present invention.

[0026] Figure 8 It is an enlarged schematic diagram of part A of the present invention.

[0027] Figure 9 It is a partial three-dimensional structural schematic diagram of the material distribution mechanism of the present invention.

[0028] Figure 10 It is a schematic diagram of the three-dimensional structure of the material rubbing mechanism of the present invention.

[0029] Figure 11 It is an enlarged schematic diagram of part B of the present invention.

[0030] Figure 12 It is a schematic diagram of the three-dimensional structure of the material pressing mechanism of the present invention.

[0031] Figure 13 This is a schematic diagram of the first three-dimensional structure of the discharging mechanism of the present invention.

[0032] Figure 14 This is a schematic diagram of the second three-dimensional structure of the discharging mechanism of the present invention.

[0033] Markings in the accompanying drawings: 1: reaction frame, 2: support leg, 3: unloading frame, 4: material transport mechanism, 41: dual-axis motor, 42: mounting frame, 43: pulley, 44: material transport belt, 5: pressing mechanism, 51: first rotating rod, 52: second rotating rod, 53: first column gear, 54: rotating pressure block, 6: material leveling mechanism, 61: third rotating rod, 62: missing gear, 63: second column gear, 64: winding wheel, 65: guide wheel, 66: first mounting seat, 67: sliding rake claw, 68: return spring, 69: pull rope, 7: rubbing mechanism, 71: second mounting seat, 72: sliding plate, 73: connecting frame, 74: pressure wheel, 75: S-shaped groove plate, 76: connecting plate, 77: guide rod, 8: pressing mechanism, 81: mounting plate, 82: arc pressure plate, 9: discharging mechanism, 91: receiving hopper, 92: sponge block. DETAILED DESCRIPTION

[0034] The present invention will be further described below with reference to specific embodiments. The illustrative embodiments and descriptions of the present invention are used to explain the present invention but are not intended to limit the present invention.

[0035] Example 1

[0036] A glass fiber surface treatment device, such as Figure 1-Figure 5 As shown, it includes a reaction frame 1, supporting legs 2, a feeding frame 3, a transport mechanism 4 and a pressing mechanism 5. The supporting legs 2 are fixedly connected to the left and right sides of the reaction frame 1, and the feeding frame 3 is fixedly connected to the left top of the reaction frame 1. The transport mechanism 4 is provided on the reaction frame 1, and the transport mechanism 4 can drive the glass fiber to move. A pressing mechanism 5 is provided between the transport mechanism 4 and the reaction frame 1, and the pressing mechanism 5 can press the transport mechanism 4 downward to deform it.

[0037] like Figure 1-Figure 4As shown, the transport mechanism 4 includes a dual-axis motor 41, a mounting frame 42, a pulley 43 and a transport belt 44. The dual-axis motor 41 is fixed to the left side of the reaction frame 1, and the mounting frames 42 are fixed to the front and rear sides of the reaction frame 1. Pulleys 43 are rotatably provided between the front and rear mounting frames 42 at even intervals. The output shaft of the dual-axis motor 41 and the lower left pulley 43 are driven by a synchronous belt, and the transport belt 44 is wound around the pulleys 43.

[0038] like Figure 2 and Figure 5 As shown, the pressing mechanism 5 includes a first rotating rod 51, a second rotating rod 52, a first column gear 53 and a rotating pressure block 54. The left part of the reaction frame 1 is symmetrically rotatable with the first rotating rod 51. The first rotating rods 51 on the front and rear sides are respectively driven by the output shaft of the dual-axis motor 41 through a synchronous belt. The left part of the reaction frame 1 is symmetrically rotatable with the second rotating rod 52 on the front and rear sides. The second rotating rod 52 is located on the right side of the first rotating rod 51. Four rotating pressure blocks 54 are rotatably provided at intervals on the upper part of the reaction frame 1. The two rotating pressure blocks 54 on the left are respectively fixedly connected to the second rotating rods 52 on the front and rear sides. The rotating pressure blocks 54 are in contact with the conveying belt 44. The first rotating rods 51 on the front and rear sides and the second rotating rods 52 on the front and rear sides are fixedly connected with the first column gears 53. The two front first column gears 53 are meshed with each other, and the two rear first column gears 53 are meshed with each other.

[0039] First, the operator pours an appropriate amount of pickling liquid into the reaction frame 1, then places the collection container on the right side of the reaction frame 1, pours an appropriate amount of glass fiber onto the conveyor belt 44 through the unloading frame 3, and starts the dual-axis motor 41. The dual-axis motor 41 drives the lower left pulley 43 to rotate forward through the synchronous belt transmission, so that all the pulleys 43 rotate forward to cooperate with the conveyor belt 44 to rotate forward. The conveyor belt 44 rotates forward to drive the glass fiber to move to the right. The glass fiber moves to the right and is immersed in the pickling liquid to be processed. The pickling liquid flows continuously. At the same time, the dual-axis motor 41 drives the first rotating rods 51 on the front and rear sides to rotate forward through the synchronous belt transmission. The first rotating rods 51 on the front and rear sides rotate forward through the first column gear 53 The second rotating rods 52 on the front and rear sides are driven to reverse respectively, and the reversal of the second rotating rods 52 on the front and rear sides respectively drives the rotating pressure blocks 54 on the front and rear sides on the left to reverse. The rotating pressure blocks 54 on the front and rear sides on the left both make the reversal of the conveying belt 44 smoother. At the same time, the rotating pressure blocks 54 make the conveying belt 44 concave, so that the glass fiber can be better immersed in the pickling solution for processing. Then the conveying belt 44 continues to rotate forward to drive the glass fiber to move to the right. The glass fiber moves to the right and falls into the collection container. After all the glass fibers are reacted and processed, the dual-axis motor 41 is turned off, the pulley 43 stops driving the conveying belt 44 to rotate forward, and the collection container is picked up for subsequent processing of the glass fiber.

[0040] Example 2

[0041] On the basis of Example 1, Figure 6-Figure 9 As shown, it also includes a material sparging mechanism 6, which includes a third rotating rod 61, a missing gear 62, a second column gear 63, a winding wheel 64, a guide wheel 65, a first mounting seat 66, a sliding rake claw 67, a return spring 68 and a pull rope 69. The outside of the second rotating rods 52 on the front and rear sides are fixed with the missing gear 62, and the left part of the reaction frame 1 is symmetrically rotated with the third rotating rod 61 on the front and rear sides. The third rotating rod 61 is located on the right side of the second rotating rod 52, and the outside of the third rotating rod 61 on the front and rear sides is fixed with the second column gear 63. The missing gears 62 on the front and rear sides rotate They can respectively engage with the second column gears 63 on the front and rear sides; the inner sides of the third rotating rods 61 on the front and rear sides are fixedly connected with winding wheels 64; a first mounting seat 66 is fixedly connected to the left side of the top of the reaction frame 1; two sliding rake claws 67 are slidingly provided in the first mounting seat 66; the sliding rake claws 67 can spread the glass fiber evenly; the two sliding rake claws 67 are connected to the first mounting seat 66 with a return spring 68; a pull rope 69 is wound around the front and rear winding wheels 64; the tail ends of the pull ropes 69 on the front and rear sides respectively pass around the front and rear guide wheels 65 and are fixedly connected to the two sliding rake claws 67.

[0042] like Figure 6 、 Figure 10 and Figure 11 As shown, it also includes a rubbing mechanism 7, which includes a second mounting seat 71, a sliding plate 72, a connecting frame 73, a pressure wheel 74, an S-shaped groove plate 75, a connecting plate 76 and a guide rod 77. The second mounting seat 71 is fixedly connected to the right side of the top of the reaction frame 1, and a sliding plate 72 is slidingly provided in the second mounting seat 71. The bottom of the sliding plate 72 is fixedly connected to the connecting frame 73, and a pressure wheel 74 is rotatably provided at the lower part of the connecting frame 73. The pressure wheel 74 can achieve flat laying of glass fiber, and the top of the sliding plate 72 is symmetrically fixed with an S-shaped groove plate 75, and the upper right side of the front and rear sliding rake claws 67 is fixedly connected to a connecting plate 76. The right part of the front and rear connecting plates 76 is fixedly connected to a guide rod 77. The front and rear guide rods 77 are respectively located in the front and rear S-shaped groove plates 75, and the front and rear guide rods 77 are respectively slidably connected to the front and rear S-shaped groove plates 75, and the front and rear guide rods 77 are fixedly connected to the sliding plate 72.

[0043] When the dual-axis motor 41 is working, the front and rear second rotating rods 52 reverse and respectively drive the front and rear missing gears 62 to reverse, and the front and rear missing gears 62 reverse and respectively engage with the front and rear second column gears 63, and the front and rear missing gears 62 reverse and respectively drive the front and rear second column gears 63 to rotate forward, and the front and rear second column gears 63 rotate forward and respectively drive the front and rear winding wheels 64 to rotate forward, and the front and rear winding wheels 64 rotate forward to reel in the front and rear pull ropes 69, so that the front and rear winding wheels 64 respectively drive the front and rear sliding rake claws 67 to move outward through the front and rear pull ropes 69, and the reset spring 68 is compressed, and the front and rear sliding rake claws 67 move outward. The glass fibers are evenly pushed apart, and then the front and rear missing gears 62 are reversed and the front and rear second column gears 63 are disengaged. Due to the action of the return spring 68, the front and rear sliding rake claws 67 move inward to rake the glass fibers again to avoid the glass fibers accumulating in the middle of the conveyor belt 44 and affecting the treatment effect. This is repeated to continuously rake the glass fibers evenly. After all the glass fibers are processed, the dual-axis motor 41 is turned off, and the front and rear second rotating rods 52 stop driving the front and rear missing gears 62 to reverse, and the front and rear sliding rake claws 67 also stop moving inside and outside. This can avoid the glass fibers accumulating in the middle of the conveyor belt 44 and affecting the treatment effect.

[0044] When the dual-axis motor 41 is working, the front and rear sliding rake claws 67 move inward and outward and respectively drive the front and rear connecting plates 76 to move inward and outward, and the front and rear connecting plates 76 move inward and outward and respectively drive the front and rear guide rods 77 to move inward and outward, and the front and rear guide rods 77 move inward and outward respectively through the front and rear S-shaped slot plates 75 to make the sliding plate 72 move left and right, and the sliding plate 72 moves left and right and drives the connecting frame 73 to move left and right, and the connecting frame 73 moves left and right and drives the pressure wheel 74 to move left and right, and the pressure wheel 74 moves left and right to spread the glass fiber evenly, so that the glass fiber can better react with the pickling solution. After all the glass fibers are reacted and processed, the dual-axis motor 41 is turned off, and the front and rear sliding rake claws 67 stop driving the front and rear guide rods 77 to move inward and outward through the front and rear connecting plates 76, and the pressure wheel 74 also stops moving left and right, so that the glass fiber can be evenly spread.

[0045] Example 3

[0046] On the basis of Example 1 and Example 2, Figure 6 and Figure 12 As shown, a pressing mechanism 8 is also included, which includes a mounting plate 81 and a curved pressing plate 82. The lower parts of the two sliding rake claws 67 are fixedly connected to the mounting plates 81, and the two mounting plates 81 are fixedly connected to the curved pressing plates 82.

[0047] like Figure 6 、 Figure 13 and Figure 14As shown, it also includes a discharge mechanism 9, which includes a receiving hopper 91 and a sponge block 92. The receiving hopper 91 is fixedly connected to the upper right side of the reaction frame 1. The receiving hopper 91 can achieve better discharge of glass fiber. The sponge block 92 is fixedly connected to the left side of the receiving hopper 91.

[0048] When the dual-axis motor 41 is working, the sliding rake claws 67 on the front and rear sides move inward and outward, respectively driving the two mounting plates 81 to move inward and outward, and the two mounting plates 81 move inward and outward, respectively driving the two curved surface pressure plates 82 to move inward and outward, and the two curved surface pressure plates 82 move inward and outward to increase the efficiency of raking the glass fiber. After all the glass fiber reaction processing is completed, the dual-axis motor 41 is turned off, and the sliding rake claws 67 on the front and rear sides stop driving the two curved surface pressure plates 82 to move inward and outward through the two mounting plates 81, respectively. In this way, the working effect of the sliding rake claws 67 can be increased.

[0049] First, the operator places the collection container directly below the receiving hopper 91. When the conveyor belt 44 rotates forward and drives the glass fiber to move to the right, the glass fiber moves to the right through the receiving hopper 91 and falls into the collection container. The sponge block 92 cleans the conveyor belt 44 to avoid residual impurities on the conveyor belt 44. In this way, it can prevent the glass fiber from falling into the collection container.

[0050] It should be understood that the above description is only for illustrative purposes and is not intended to limit the present invention. Those skilled in the art will appreciate that variations of the present invention will fall within the scope of the claims herein.

Claims

1. A glass fiber surface treatment device, comprising a reaction frame (1) and a blanking frame (3), wherein the blanking frame (3) is fixedly connected to the left side of the top of the reaction frame (1), characterized in that: The reaction frame (1) further comprises a material transport mechanism (4), the material transport mechanism (4) being provided on the reaction frame (1) for transporting glass fibers; and further comprises supporting legs (2) and a pressing mechanism (5), the supporting legs (2) being fixedly connected to both left and right sides of the reaction frame (1), and a pressing mechanism (5) being provided between the material transport mechanism (4) and the reaction frame (1) for generating deformation. The material transport mechanism (4) comprises a dual-axis motor (41), a mounting frame (42), a pulley (43) and a transport belt (44). The dual-axis motor (41) is fixedly connected to the left side of the reaction frame (1). The mounting frames (42) are fixedly connected to the front and rear sides of the reaction frame (1). Pulleys (43) are evenly spaced and rotatably provided between the front and rear mounting frames (42). The output shaft of the dual-axis motor (41) and the lower left pulley (43) are driven by a synchronous belt. The transport belt (44) is wound around the pulleys (43). The pressing mechanism (5) includes a first rotating rod (51), a second rotating rod (52), a first column gear (53) and a rotating pressing block (54). The left part of the reaction frame (1) is provided with a first rotating rod (51) in a front-to-back symmetrical rotational manner. The first rotating rods (51) on the front and rear sides are respectively connected to the output shaft of the double-axis motor (41) through a synchronous belt transmission. The left part of the reaction frame (1) is provided with a second rotating rod (52) in a front-to-back symmetrical rotational manner. The second rotating rod (52) is located on the right side of the first rotating rod (51). Four rotating pressing blocks (54) are provided at intervals on the upper part of the reaction frame (1). The two rotating pressing blocks (54) on the left are respectively fixedly connected to the second rotating rods (52) on the front and rear sides. The rotating pressing blocks (54) are in contact with the conveying belt (44). The first rotating rods (51) on the front and rear sides and the second rotating rods (52) on the front and rear sides are fixedly connected with the first column gears (53). The two first column gears (53) in the front are meshed with each other, and the two first column gears (53) in the rear are meshed with each other. The invention also includes a material leveling mechanism (6) for leveling glass fiber, the material leveling mechanism (6) includes a third rotating rod (61), a missing gear (62), a second column gear (63), a winding wheel (64), a guide wheel (65), a first mounting seat (66), a sliding rake claw (67), a return spring (68) and a pull rope (69), the second rotating rods (52) on both sides are fixedly connected to the missing gear (62), the left part of the reaction frame (1) is symmetrically rotated with the third rotating rod (61), the third rotating rod (61) is located on the right side of the second rotating rod (52), the third rotating rod (61) on both sides is fixedly connected to the second column gear (63), the front The rear two sides lack gear (62) and can respectively mesh with the second column gear (63) on the front and rear sides. The inner sides of the third rotating rod (61) on the front and rear sides are all fixedly connected with a winding wheel (64). The left side of the top of the reaction frame (1) is fixedly connected with a first mounting seat (66). The first mounting seat (66) is provided with two sliding rake claws (67) for evenly spreading glass fiber. The two sliding rake claws (67) are all connected with a return spring (68) between the first mounting seat (66). The front and rear two sides winding wheels (64) are all wound with a drawstring (69). The tail ends of the drawstring (69) on the front and rear sides respectively bypass the front and rear two sides guide wheels (65) and are fixedly connected with the two sliding rake claws (67).

2. A glass fiber surface treatment device according to claim 1, characterized in that: The invention also includes a rubbing mechanism (7) for tiling glass fiber, the rubbing mechanism (7) includes a second mounting seat (71), a sliding plate (72), a connecting frame (73), a pressure wheel (74), an S-shaped groove plate (75), a connecting plate (76) and a guide rod (77), the second mounting seat (71) is fixedly connected to the right side of the top of the reaction frame (1), a sliding plate (72) is slidably provided in the second mounting seat (71), a connecting frame (73) is fixedly connected to the bottom of the sliding plate (72), and a lower portion of the connecting frame (73) is rotatably provided with a connecting frame for tiling. The pressure wheel (74) of glass fiber, the top of the sliding plate (72) is symmetrically fixed with an S-shaped groove plate (75), the upper right side surface of the front and rear sliding rake claws (67) is fixed with a connecting plate (76), the right part of the front and rear connecting plates (76) is fixed with a guide rod (77), the front and rear guide rods (77) are respectively located in the front and rear S-shaped groove plates (75), the front and rear guide rods (77) are respectively slidably connected to the front and rear S-shaped groove plates (75), and the front and rear guide rods (77) are fixedly connected to the sliding plate (72).

3. A glass fiber surface treatment device according to claim 2, characterized in that: The invention also includes a pressing mechanism (8) for increasing the working efficiency of the sliding rake claws (67). The pressing mechanism (8) includes a mounting plate (81) and a cambered pressing plate (82). The lower parts of the two sliding rake claws (67) are fixedly connected to the mounting plate (81), and the cambered pressing plates (82) are fixedly connected to the two mounting plates (81).

4. A glass fiber surface treatment device according to claim 3, characterized in that: The invention also includes a discharge mechanism (9) for convenient discharge, and the discharge mechanism (9) includes a receiving hopper (91) and a sponge block (92). The receiving hopper (91) for convenient discharge is fixedly connected to the upper right side of the reaction frame (1), and the sponge block (92) is fixedly connected to the left side of the receiving hopper (91).

Citation Information

Patent Citations

  • Novel glass fiber surface treatment device

    CN214937054U

  • Fiber gum dipping and applying system

    CN113601656A