Efficient and stable forming machine for ceramic fiber paper

By using the combination of forming rollers, transmission mechanisms and edge sealing mechanisms in the ceramic fiber paper molding machine, the problems of adhesive overflow and surface protrusion of ceramic fiber paper are solved, and an efficient and stable forming process is achieved, which improves the molding quality and adhesive utilization rate.

CN119953025AInactive Publication Date: 2025-05-09山东久强新材料科技有限公司
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Patent Information

Application Number
CN202510429988.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-08
Publication Date
2025-05-09
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing ceramic fiber paper pressing and synthesis equipment is difficult to effectively reduce the situation where the adhesive spills from the edges of the ceramic fiber paper, and it is difficult to smooth the blocky protrusions on the surface of the ceramic fiber paper, affecting the quality of the pressing.

Method used

A high-efficiency and stable forming machine for ceramic fiber paper is designed, which adopts the combination of forming rollers, transmission mechanisms and edge sealing mechanisms. The edge sealing mechanism drives the operation of the edge sealing mechanisms. The edge sealing mechanism performs edge sealing treatment on the sides of the ceramic fiber paper to reduce the overflow of adhesive; at the same time, through the cooperation between the smoothing mechanism and the transmission mechanism, the block-like protrusions on the surface of the ceramic fiber paper are automatically smoothed.

Benefits of technology

It effectively reduces the waste of adhesive, improves the pressing quality of ceramic fiber paper, and ensures the effect of molded ceramic fiber paper.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of ceramic fiber paper processing, in particular to an efficient and stable ceramic fiber paper forming machine which comprises two main supports, unwinding rollers are symmetrically and rotationally connected between the two main supports, auxiliary supports are symmetrically arranged on the right sides of the main supports, and guide rollers are symmetrically and rotationally connected between the two auxiliary supports. And a glue solution box is fixedly connected between the middles of the two auxiliary supports, forming supports are symmetrically arranged on the right sides of the auxiliary supports, and forming rollers are symmetrically and rotationally connected between the two forming supports. The efficient and stable forming machine for the ceramic fiber paper is composed of a transmission mechanism, a trowelling mechanism and an edge sealing mechanism. In the process that two pieces of ceramic fiber paper are pressed and formed by the two forming rollers, the transmission mechanism drives the edge sealing mechanism to operate, the edge sealing mechanism firstly carries out edge sealing treatment on the side edge positions of the two pieces of ceramic fiber paper, and the situation that an adhesive overflows in the process that the middles of the two pieces of ceramic fiber paper are pressed is reduced.
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Description

Technical Field

[0001] The invention relates to the field of ceramic fiber paper processing, in particular to a high-efficiency and stable forming machine for ceramic fiber paper. Background Art

[0002] Ceramic fiber paper has a white appearance and regular size. It has good fire-resistant and heat-insulating effects. Therefore, it is widely used in hot surface linings, insulation sheets, backing materials, etc. in the steel, non-ferrous metals, ceramics, glass and other industries. Double-layer ceramic fiber paper is formed by gluing single-layer ceramic fiber paper. The current double-layer fiber paper pressing requires a pressing device to be processed and formed.

[0003] The existing patent (Announcement No.: CN220840699U) discloses an unwinding frame, on which an upper unwinding roller and a lower unwinding roller are rotatably mounted, and at least one pressing roller group is provided on the right side of the unwinding frame. In the process of implementing the solution, the inventor found that the following problems in the prior art have not been well solved: 1. During the use of the device, the adhesive and two ceramic fiber papers are pressed into shape by squeezing two pressing rollers. During the squeezing of the two ceramic fiber papers, excess adhesive will overflow from the side of the ceramic fiber papers, which is easy to cause waste of adhesive; 2. When block-like protrusions appear on the surface of the ceramic fiber paper, when the two ceramic fiber papers are bonded together, after the adhesive dries, a gap is easily generated between the two ceramic fiber papers, affecting the use effect of the pressed ceramic fiber papers. Summary of the invention

[0004] The purpose of the present invention is to provide a ceramic fiber paper efficient and stable forming machine to solve the problems raised in the above-mentioned background technology: 1. It is difficult to effectively reduce the occurrence of adhesive overflowing from the edge of the ceramic fiber paper during use of some existing ceramic fiber paper pressing and forming equipment; 2. It is difficult to smooth the raised positions on the surface of the ceramic fiber paper during use of some existing ceramic fiber paper pressing and forming equipment, which affects the pressing quality of the ceramic fiber paper. In order to achieve the above-mentioned purpose, the present invention provides the following technical scheme: A ceramic fiber paper efficient and stable forming machine, comprising a main bracket, wherein two main brackets are provided, and an unwinding roller is symmetrically rotatably connected between the two main brackets, a slave bracket is symmetrically arranged on the right side of the main bracket, and a guide roller is symmetrically rotatably connected between the two slave brackets, a glue box is fixedly connected between the middle parts of the two slave brackets, a forming bracket is symmetrically arranged on the right side of the slave bracket, and a forming roller is symmetrically rotatably connected between the two forming brackets; The support plates are symmetrically fixedly connected to the side of the support close to the forming support, the two support plates are symmetrically arranged up and down, the two support plates correspond to the two guide rollers one by one, the surface of the glue box is symmetrically and movably connected to the glue coating plate, and the guide roller and the surface of the corresponding support plate are movably connected to a transmission mechanism matched with the glue coating plate; A smoothing mechanism matched with a transmission mechanism is movably connected between the surface of the support plate and the corresponding glue-coating plate, and an edge sealing mechanism is movably connected between the surface of the forming roller and the side wall of the adjacent forming bracket; The transmission mechanism comprises a transmission motor, the transmission motor is fixedly connected to the surface of the rear forming bracket, the rotating end of the transmission motor passes through the corresponding forming bracket and is fixedly sleeved with a transmission gear, one end of the two forming rollers close to the transmission motor is fixedly sleeved with a transmission gear, the two transmission gears are meshed, and the top of the transmission gear is meshed with the bottom of the adjacent transmission gear; The surface of the support plate is rotatably connected with a main transmission rod, the surface of the main transmission rod is fixedly sleeved with a transmission cylinder, the surface of the transmission cylinder is provided with a corrugated groove, both sides of the rubber-coated plate are fixedly connected with L-shaped transmission rods, one end of the L-shaped transmission rod is slidably connected to the inside of the connected corrugated groove, and a main synchronous belt is movably connected between the main transmission rod and the end of the forming roller on the same side; The surface of the support plate is rotatably connected to a slave transmission rod, and a slave synchronous belt is movably connected between the surface of the slave transmission rod and the surface of the adjacent main transmission rod. One end of the slave transmission rod passes through the support plate and is fixedly sleeved with a synchronous gear that cooperates with the smoothing mechanism.

[0005] Preferably, the ends of the main transmission rod and the forming roller are fixedly sleeved with main synchronous wheels, and the main synchronous belt is movably connected between the two main synchronous wheels; The middle part of the main transmission rod and the end part of the slave transmission rod are both fixedly sleeved with slave synchronous wheels, and the slave synchronous belt is movably connected between the two slave synchronous wheels.

[0006] Preferably, the smoothing mechanism comprises a smoothing tooth plate, and the smoothing tooth plates are provided in two, and the two smoothing tooth plates are symmetrically and movably connected to the surface of the glue liquid box, and the side of the smoothing tooth plate away from the glue liquid box is slidably connected to the surface of the glue coating plate; The surface of the glue coating plate is provided with mounting holes, the mounting holes are set to eighteen, and every nine mounting holes are set to a group, and two groups of mounting holes are staggered and opened on the surface of the glue coating plate, the smoothing tooth plate is arranged between the two groups of mounting holes, and a smoothing gear is rotatably connected inside the mounting hole, and the side wall of the smoothing gear is meshed with the side wall of the smoothing tooth plate, and a groove is provided on the side of the glue coating plate away from the glue tank, and a T-shaped smoothing disk is eccentrically fixedly connected to the surface of the smoothing gear, and the T-shaped smoothing disk is arranged inside the groove; A cross bar is fixedly connected between the two support plates on the same horizontal line, and an L-shaped seesaw is rotatably connected to the surface of the cross bar. Waist-shaped grooves are provided on both sides of the L-shaped seesaw, and a push rod is movably connected inside the waist-shaped groove. The middle part of the push rod is slidably connected to the surface of the adjacent support plate, and one end of the push rod away from the L-shaped seesaw is rotatably connected to a moving gear matched with a synchronous gear. The surface of the support plate is rotatably connected to a gear rod matched with the moving gear, and the side wall of the rubber-coated plate is meshed with the side wall of the adjacent gear rod; The push rod is fixedly connected with a cone sleeve on one side close to the L-shaped rocker plate, and a pressure rod is fixedly sleeved on one side of the push rod close to the moving gear. The side wall of the support plate is fixedly connected with a pin sleeve, and an L-shaped pin rod matching the cone sleeve is vertically slidably connected inside the pin sleeve. The surface of the L-shaped pin rod overlaps the surface of the push rod, and an extrusion spring is fixedly connected to the top of the L-shaped pin rod and the inner top surface of the pin sleeve; The surface of the support plate is vertically slidably connected with a conical pressure plate that matches the pressure rod, the top of the conical pressure plate is fixedly connected with a limiting tooth, the side wall of the support plate is fixedly connected with an L-shaped sliding rod, the surface of the L-shaped sliding rod is slidably connected with an L-shaped rack that matches the L-shaped pin rod, a return spring is fixedly connected between the side wall of the L-shaped rack and the surface of the L-shaped sliding rod, fourteen movable grooves are equidistantly provided on one side of the L-shaped rack, the interior of the movable groove is slidably connected with a bevel tooth block, a connecting spring is fixedly connected between the surface of the bevel tooth block and the inner wall of the movable groove, and the side wall of the limiting tooth overlaps the side wall of the adjacent bevel tooth block; A single-tooth gear is fixedly sleeved on the surface of the gear rod, and the surface of the single-tooth gear is meshed with the surface of the adjacent L-shaped rack.

[0007] Preferably, the surface of the glue box is symmetrically provided with countersunk holes, the surface of the smoothing tooth plate is symmetrically fixedly connected with T-shaped rods, two T-shaped rods are slidably connected inside the two countersunk holes respectively, and a return spring is movably connected between the surface of the T-shaped rod and the inner wall of the countersunk hole; The smoothing tooth plate is symmetrically provided with a T-shaped slide groove on one side away from the glue box, and the surface of the glue coating plate is symmetrically fixedly connected with a T-shaped slider, and the two T-shaped sliders are respectively slidably connected inside the two T-shaped slide grooves.

[0008] Preferably, both sides of the L-shaped rocker are provided with hinge grooves, the waist-shaped groove is provided at the inner wall of the hinge groove, the inside of the waist-shaped groove is slidably connected with a hinge rod, and the end of the push rod close to the L-shaped rocker is rotatably connected to the surface of the hinge rod; A guide sleeve is movably sleeved on the surface of the push rod, and a side wall of the guide sleeve is fixedly connected to the side wall of the adjacent support plate. A retaining ring is fixedly sleeved on the surface of the push rod, and an adjusting spring is movably connected between the side wall of the retaining ring and the side wall of the guide sleeve.

[0009] Preferably, the edge sealing mechanism comprises an adjusting ring, wherein two adjusting rings are provided, and the two adjusting rings are symmetrically and fixedly sleeved on both sides of the forming roller, and the outer ring of the adjusting ring is movably sleeved with a gear ring, and the surface of the gear ring is movably connected to the surface of the forming roller; A ring groove is provided in the middle of the inner ring of the gear ring, a main pad is symmetrically fixedly connected to the inner wall of the ring groove, a slave pad is symmetrically fixedly connected to the middle of the outer ring of the adjustment ring, two slave pads correspond to the two main pads one by one, and an arc spring is fixedly connected between the side wall of the main pad and the side wall of the corresponding slave pad; The side wall of the forming bracket is symmetrically fixedly connected with an L-shaped pad, and the two L-shaped pads correspond to the two forming rollers one by one. The side wall of the L-shaped pad is equidistantly rotated with three rotating rods, and one end of the rotating rod is rotatably connected with an L-shaped pressing block, and a vertical groove is opened on the surface of the L-shaped pressing block; The surface of the L-shaped pad is slidably connected with an L-shaped toothed plate, one side of the L-shaped toothed plate is meshed with the surface of the adjacent toothed ring, and the side of the L-shaped toothed plate away from the toothed ring is equidistantly fixedly connected with three levers, and the three levers are slidably connected to the inside of the three vertical grooves respectively; The surfaces of the two L-shaped pads on the same side are slidably connected with an L-shaped pressure plate, the two L-shaped pressure plates are symmetrically arranged, the three L-shaped pressure blocks are arranged on the side walls of adjacent L-shaped pressure plates, the side walls of the glue box are symmetrically fixedly connected with ball-head gluing rods, and the ball-head gluing rods are arranged between two adjacent L-shaped pressure plates.

[0010] Preferably, a moving groove is provided on the surface of the L-shaped pad, a moving block is fixedly connected to the surface of the L-shaped tooth plate, the moving block is slidably connected inside the moving groove, and a restoring spring is fixedly connected between the side wall of the moving block and the inner wall of the moving groove; The opposite surfaces of the two L-shaped pads on the same side are fixedly connected with guide rods, and the side walls of the L-shaped pressure plates are symmetrically fixedly connected with ring sleeve rods, which are movably sleeved on the surfaces corresponding to the guide rods, and the surfaces of the guide rods are movably sleeved with guide springs that cooperate with the ring sleeve rods.

[0011] Preferably, an L-shaped telescopic glue coating rod is fixedly connected to the surface of the glue coating plate, and a spring tube is fixedly connected between the surface of the L-shaped telescopic glue coating rod and the surface of the glue liquid box.

[0012] Compared with the prior art, the present invention has the following beneficial effects: In the present invention, by using the forming rollers, the transmission mechanism and the edge sealing mechanism in coordination, the two forming rollers are used in the process of pressing and forming two sheets of ceramic fiber paper, and the transmission mechanism drives the edge sealing mechanism to operate, and the edge sealing mechanism first performs edge sealing treatment on the side positions of the two ceramic fiber papers, thereby reducing the occurrence of adhesive overflow during the pressing of the middle parts of the two ceramic fiber papers.

[0013] In the present invention, through the coordinated use of components such as the forming roller, the transmission mechanism and the smoothing mechanism, when the transmission mechanism is operated to transport the two sheets of ceramic fiber paper to between the two forming rollers for pressing and forming, when the L-shaped seesaw contacts the block-shaped protrusions on the surface of the ceramic fiber paper, the smoothing mechanism and the transmission mechanism cooperate to automatically level the block-shaped protrusions on the ceramic fiber paper by the rotating T-shaped smoothing disk, thereby improving the pressing and forming quality of the two sheets of ceramic fiber paper. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 The present invention is a side view of the support and the glue tank; Figure 2 It is a side sectional view of the local position of the glue liquid box and the ball-end glue coating rod of the present invention; Figure 3 It is a side cross-sectional view of the local position of the glue box and the smoothing tooth plate of the present invention; Figure 4 It is a cross-sectional view of a local position of the transmission gear and the transmission gear of the present invention; Figure 5 It is a side cross-sectional view of a local position of the support plate and the L-shaped seesaw plate of the present invention; Figure 6 A side cross-sectional view of a local position of an L-shaped pin and an extrusion spring of the present invention; Figure 7 It is a side cross-sectional view of a local position of an L-shaped rack and a helical gear block of the present invention; Figure 8 It is a side cross-sectional view of a local position of the forming roller and the L-shaped pressing plate of the present invention; Fig. 9 It is a side cross-sectional view of the local position of the adjusting ring and the gear ring of the present invention; Fig.10 It is a cross-sectional view of a local position of the gear ring and the ring groove of the present invention; Fig.11 It is a three-dimensional diagram of the position of the gear rod and the single-tooth gear of the present invention.

[0015] In the figure: 1, main support; 2, unwinding roller; 3, slave support; 4, guide roller; 5, glue box; 6, forming support; 7, forming roller; 8, support plate; 9, glue coating plate; 10, transmission mechanism; 1001, transmission motor; 1002, transmission gear; 1003, transmission gear; 1004, main transmission rod; 1005, transmission cylinder; 1006, corrugated groove; 1007, L-shaped transmission rod; 100 8. Main synchronous belt; 1009. Slave transmission rod; 1010. Slave synchronous belt; 1011. Synchronous gear; 11. Smoothing mechanism; 1101. Smoothing tooth plate; 1102. Mounting hole; 1103. Smoothing gear; 1104. Groove; 1105. T-shaped smoothing plate; 1106. Crossbar; 1107. L-shaped rocker; 1108. Waist-shaped groove; 1109. Push rod; 1110. Moving gear; 1111, gear rod; 1112, cone sleeve; 1113, pressure rod; 1114, pin sleeve; 1115, L-shaped pin rod; 1116, extrusion spring; 1117, cone pressure plate; 1118, limit tooth; 1119, L-shaped slide rod; 1120, L-shaped rack; 1121, return spring; 1122, movable groove; 1123, oblique tooth block; 1124, connecting spring; 1125, single tooth gear Wheel; 12, edge sealing mechanism; 1201, adjusting ring; 1202, toothed ring; 1203, ring groove; 1204, main pad; 1205, slave pad; 1206, arc spring; 1208, L-shaped pad; 1209, rotating rod; 1210, L-shaped pressure block; 1211, vertical groove; 1212, L-shaped toothed plate; 1213, lever; 1214, L-shaped pressure plate; 1215, ball head gluing rod. DETAILED DESCRIPTION

[0016] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technical personnel in this field without creative work are within the scope of protection of the present invention.

[0017] See also Figures 1 to 11The present invention provides a technical solution: a ceramic fiber paper efficient and stable forming machine, comprising a main support 1, wherein the main support 1 is provided in two, an unwinding roller 2 is symmetrically rotatably connected between the two main supports 1, a slave support 3 is symmetrically arranged on the right side of the main support 1, a guide roller 4 is symmetrically rotatably connected between the two slave supports 3, a glue tank 5 is fixedly connected between the middle parts of the two slave supports 3, a forming support 6 is symmetrically arranged on the right side of the slave supports 3, and a forming roller 7 is symmetrically rotatably connected between the two forming supports 6. It should be noted that the two unwinding rollers 2, the two guide rollers 4 and the two forming rollers 7 are all symmetrically arranged up and down. When the ceramic fiber paper roll is mounted on the unwinding roller 2, the ceramic fiber paper is transported between the two forming rollers 7 through the guide roller 4, and the two sheets of ceramic fiber paper are pressed and formed by the forming roller 7.

[0018] A support plate 8 is symmetrically fixedly connected to one side of the bracket 3 close to the forming bracket 6. The two support plates 8 are symmetrically arranged up and down. The two support plates 8 correspond to the two guide rollers 4 one by one. The surface of the glue tank 5 is symmetrically and movably connected to a glue-coating plate 9. A transmission mechanism 10 matched with the glue-coating plate 9 is movably connected between the guide roller 4 and the surface of the corresponding support plate 8. It should be noted that: when the guide roller 4 is running, the transmission mechanism 10 carries the glue-coating plate 9 to perform the glue coating action.

[0019] A smoothing mechanism 11 that cooperates with the transmission mechanism 10 is movably connected between the surface of the support plate 8 and the corresponding glue-coating plate 9, and an edge-sealing mechanism 12 is movably connected between the surface of the forming roller 7 and the side wall of the adjacent forming bracket 6. It should be noted that when block-shaped protrusions appear on the surface of the ceramic fiber paper, the smoothing mechanism 11 cooperates with the transmission mechanism 10 to level the block-shaped protrusions.

[0020] The transmission mechanism 10 includes a transmission motor 1001, which is fixedly connected to the surface of the rear forming bracket 6. The rotating end of the transmission motor 1001 penetrates the corresponding forming bracket 6 and is fixedly sleeved with a transmission gear 1002. One end of the two forming rollers 7 near the transmission motor 1001 is fixedly sleeved with a transmission gear 1003. The two transmission gears 1003 are meshed, and the top of the transmission gear 1002 is meshed with the bottom of the adjacent transmission gear 1003. It should be noted that: under the transmission of the transmission motor 1001, the transmission gear 1002 and the transmission gear 1003, the two forming rollers 7 rotate synchronously in opposite directions.

[0021] The surface of the support plate 8 is rotatably connected with a main transmission rod 1004, and a transmission cylinder 1005 is fixedly sleeved on the surface of the main transmission rod 1004. A corrugated groove 1006 is provided on the surface of the transmission cylinder 1005. Both sides of the glue-coated plate 9 are fixedly connected with L-shaped transmission rods 1007, and one end of the L-shaped transmission rod 1007 is slidably connected inside the connected corrugated grooves 1006. A main synchronous belt 1008 is movably connected between the main transmission rod 1004 and the end of the same-side forming roller 7. It should be noted that the corrugated grooves 1006 on the surfaces of the two transmission cylinders 1005 on the same horizontal line are set in the same direction. When the two transmission cylinders 1005 on the same horizontal line rotate synchronously, the glue-coated plate 9 slides along the track of the corrugated groove 1006 through the L-shaped transmission rod 1007, so that the glue-coated plate 9 can stably reciprocate.

[0022] The surface of the support plate 8 is rotatably connected to a slave transmission rod 1009, and a slave synchronous belt 1010 is movably connected between the surface of the slave transmission rod 1009 and the surface of the adjacent main transmission rod 1004. One end of the slave transmission rod 1009 passes through the support plate 8 and is fixedly sleeved with a synchronous gear 1011 that cooperates with the smoothing mechanism 11.

[0023] In this embodiment, Figures 1 to 11 As shown, the ends of the main transmission rod 1004 and the forming roller 7 are fixedly sleeved with main synchronous wheels, and the main synchronous belt 1008 is movably connected between the two main synchronous wheels.

[0024] The middle of the main transmission rod 1004 and the end of the slave transmission rod 1009 are both fixedly sleeved with slave synchronous wheels, and the slave synchronous belt 1010 is movably connected between the two slave synchronous wheels. It should be noted that a transmission synchronous belt is movably connected between the end of the slave transmission rod 1009 and the end of the adjacent guide roller 4, so that the transmission mechanism 10 can rotate synchronously with the guide roller 4 during operation.

[0025] In this embodiment, Figures 1 to 11 As shown, the smoothing mechanism 11 includes a smoothing tooth plate 1101, and the smoothing tooth plates 1101 are provided in two, and the two smoothing tooth plates 1101 are symmetrically and movably connected to the surface of the glue box 5, and the side of the smoothing tooth plate 1101 away from the glue box 5 is slidably connected to the surface of the glue coating plate 9. It should be noted that: the two smoothing tooth plates 1101 are symmetrically arranged at the upper and lower positions of the glue box 5, and the smoothing tooth plates 1101 are arranged between the glue box 5 and the corresponding glue coating plate 9.

[0026] The surface of the glue coating plate 9 is provided with mounting holes 1102, and the number of the mounting holes 1102 is set to eighteen, and every nine mounting holes 1102 are set to a group, and two groups of mounting holes 1102 are staggered and opened on the surface of the glue coating plate 9, and a smoothing tooth plate 1101 is set between the two groups of mounting holes 1102. The interior of the mounting hole 1102 is rotatably connected with a smoothing gear 1103, and the side wall of the smoothing gear 1103 is meshed with the side wall of the smoothing tooth plate 1101. A groove 1104 is provided on the side of the glue coating plate 9 away from the glue tank 5, and a T-shaped smoothing disk 1105 is eccentrically fixedly connected to the surface of the smoothing gear 1103, and the T-shaped smoothing disk 1105 is set inside the groove 1104. It should be noted that: a mounting bearing is fixedly connected between the inner wall of the mounting hole 1102 and the outer ring of the smoothing gear 1103; when the glue coating plate 9 reciprocates at the side wall position of the smoothing tooth plate 1101, the smoothing gear 1103 meshes with the side wall of the smoothing tooth plate 1101, so that the smoothing gear 1103 rotates with the eccentrically set T-shaped smoothing disk 1105, and the T-shaped smoothing disk 1105 smoothes the block-like protrusions on the ceramic fiber paper. Since the two groups of mounting holes 1102 are staggered, the eighteen smoothing gears 1103 can effectively cover the cross-sectional position of the ceramic fiber paper when the corresponding T-shaped smoothing disk 1105 rotates; here, a blade is provided on the surface of the T-shaped smoothing disk 1105, and when the T-shaped smoothing disk 1105 rotates, the block-like protrusions on the ceramic fiber paper can be quickly removed.

[0027] A cross bar 1106 is fixedly connected between two support plates 8 on the same horizontal line, and an L-shaped seesaw 1107 is rotatably connected to the surface of the cross bar 1106. Waist-shaped grooves 1108 are provided on both sides of the L-shaped seesaw 1107, and a push rod 1109 is movably connected inside the waist-shaped groove 1108. The middle part of the push rod 1109 is slidably connected to the surface of the adjacent support plate 8, and one end of the push rod 1109 away from the L-shaped seesaw 1107 is rotatably connected to a moving gear 1110 that matches the synchronous gear 1011. The surface of the support plate 8 is rotatably connected to a gear rod 1111 that matches the moving gear 1110, and the side wall of the glue-coated plate 9 is meshed with the side wall of the adjacent gear rod 1111. It should be noted that: the side wall of the glue-coated plate 9 is set as a tooth surface, the surface of the tooth surface is meshed with the side wall of the adjacent gear rod 1111, and the moving gear 1110 is arranged between the synchronous gear 1011 and the gear rod 1111; when the L-shaped seesaw 1107 contacts the block-shaped protrusion on the ceramic fiber paper, the end of the L-shaped seesaw 1107 close to the ceramic fiber paper is pressed, and under the principle of leverage, the push rod 1109 brings the moving gear 1110 to mesh with the synchronous gear 1011 and the gear rod 1111. Since the synchronous gear 1011 rotates with the transmission rod 1009, the synchronous gear 1011 engages with the tooth surface of the side wall of the glue-coated plate 9 through the moving gear 1110 and the gear rod 1111, and the glue-coated plate 9 moves toward the ceramic fiber paper with the smoothing tooth plate 1101.

[0028] A conical sleeve 1112 is fixedly connected to one side of the push rod 1109 close to the L-shaped rocker 1107, a pressure rod 1113 is fixedly connected to one side of the push rod 1109 close to the moving gear 1110, a pin sleeve 1114 is fixedly connected to the side wall of the support plate 8, an L-shaped pin rod 1115 which cooperates with the conical sleeve 1112 is vertically slidably connected inside the pin sleeve 1114, the surface of the L-shaped pin rod 1115 overlaps the surface of the push rod 1109, and an extrusion spring 1116 is fixedly connected to the top of the L-shaped pin rod 1115 and the inner top surface of the pin sleeve 1114. It should be noted that a rectangular groove is provided on the side wall of the pin sleeve 1114, and the end of the L-shaped pin 1115 away from the push rod 1109 passes through the rectangular groove and overlaps the surface of the L-shaped tooth plate 1212; when the push rod 1109 translates with the tapered sleeve 1112 and passes the position of the L-shaped pin 1115, the L-shaped pin 1115 can limit the reset movement of the push rod 1109 and the tapered sleeve 1112, thereby ensuring the stable operation of the moving gear 1110.

[0029] The surface of the support plate 8 is vertically slidably connected with a conical pressure plate 1117 that cooperates with the pressure rod 1113, and the top of the conical pressure plate 1117 is fixedly connected with a limiting tooth 1118, and the side wall of the support plate 8 is fixedly connected with an L-shaped slide bar 1119, and the surface of the L-shaped slide bar 1119 is slidably connected with an L-shaped rack 1120 that cooperates with the L-shaped pin 1115, and a return spring 1121 is fixedly connected between the side wall of the L-shaped rack 1120 and the surface of the L-shaped slide bar 1119, and fourteen movable grooves 1122 are equidistantly provided on one side of the L-shaped rack 1120, and the inside of the movable groove 1122 is slidably connected with a bevel tooth block 1123, and a connecting spring 1124 is fixedly connected between the surface of the bevel tooth block 1123 and the inner wall of the movable groove 1122, and the side wall of the limiting tooth 1118 overlaps the side wall of the adjacent bevel tooth block 1123. It should be noted that the L-shaped rack 1120 can only slide horizontally on the surface of the L-shaped slide rod 1119 and cannot rotate, so as to avoid affecting the use effect of the L-shaped rack 1120; when the push rod 1109 moves, it will bring the pressure rod 1113 into contact with the inclined surface of the conical pressure plate 1117, so that the conical pressure plate 1117 moves toward the L-shaped rack 1120 with the limiting tooth 1118. At this time, the limiting tooth 1118 cooperates with the oblique tooth block 1123 on the surface of the L-shaped rack 1120 to limit, so that the L-shaped rack 1120 can be self-locking during the transmission process, thereby realizing the unidirectional movement effect of the L-shaped rack 1120.

[0030] The surface of the gear rod 1111 is fixedly sleeved with a single-tooth gear 1125, and the surface of the single-tooth gear 1125 meshes with the surface of the adjacent L-shaped rack 1120. It should be noted that: when the gear rod 1111 rotates, the single-tooth gear 1125 will mesh with the L-shaped rack 1120 in stages, so that the L-shaped rack 1120 slowly moves toward the L-shaped pin 1115. When the L-shaped rack 1120 moves to the limit position, the inclined surface of the L-shaped rack 1120 contacts the L-shaped pin 1115, and then moves with the L-shaped pin 1115 and releases the overlap with the cone sleeve 1112, so that the push rod 1109 can be reset and moved. At this time, the mobile gear 1110 on the push rod 1109 is reset, so that the gear rod 1111 is released from the transmission state, ensuring that the glue-coated plate 9 can be reset with the T-shaped smoothing plate 1105 regularly.

[0031] In this embodiment, Figures 1 to 11 As shown, the surface of the glue box 5 is symmetrically provided with countersunk holes, and the surface of the smoothing tooth plate 1101 is symmetrically fixedly connected with T-shaped rods, and the two T-shaped rods are respectively slidably connected inside the two countersunk holes, and a return spring is movably connected between the surface of the T-shaped rod and the inner wall of the countersunk hole. It should be noted that: through the cooperation of the countersunk holes and the T-shaped rods, the smoothing tooth plate 1101 can stably move toward the ceramic fiber paper at the position of the glue box 5.

[0032] A T-shaped slide is symmetrically provided on one side of the smoothing tooth plate 1101 away from the glue liquid box 5, and a T-shaped slider is symmetrically fixedly connected to the surface of the glue coating plate 9, and the two T-shaped sliders are respectively slidably connected inside the two T-shaped slides. It should be noted that: through the cooperation of the T-shaped slide and the T-shaped slider, the glue coating plate 9 can stably slide on the side wall of the smoothing tooth plate 1101, and the smoothing tooth plate 1101 will be pulled by the T-shaped slider to move synchronously during the movement of the glue coating plate 9 toward the ceramic fiber paper, ensuring the stability of the cooperation between the smoothing tooth plate 1101 and the smoothing gear 1103 on the glue coating plate 9.

[0033] In this embodiment, Figures 1 to 11 As shown, both sides of the L-shaped seesaw 1107 are provided with hinge grooves, waist grooves 1108 are provided at the inner wall of the hinge grooves, a hinge rod is slidably connected inside the waist grooves 1108, and a push rod 1109 is rotatably connected to the surface of the hinge rod at one end close to the L-shaped seesaw 1107. It should be noted that: the L-shaped seesaw 1107 and the rubber-coated plate 9 are both made of PVC material to ensure that the L-shaped seesaw 1107 can move with the rubber-coated plate 9 under the action of the push rod 1109 after being compressed; under the cooperation of the hinge grooves, waist grooves 1108 and hinge rods, a lever effect is formed, so that the L-shaped seesaw 1107 can move with the push rod 1109 during the deflection process.

[0034] The surface of the push rod 1109 is movably sleeved with a guide sleeve, the side wall of the guide sleeve is fixedly connected to the side wall of the adjacent support plate 8, the surface of the push rod 1109 is fixedly sleeved with a retaining ring, and the side wall of the retaining ring and the side wall of the guide sleeve are movably connected with an adjustment spring. It should be noted that the L-shaped seesaw 1107 and the push rod 1109 can be reset and moved by adjusting the spring, so that the L-shaped seesaw 1107 can be restored to the initial state, and the L-shaped seesaw 1107 can overlap the surface position of the adjacent ceramic fiber paper in the initial state.

[0035] In this embodiment, Figures 1 to 11 As shown, the edge sealing mechanism 12 includes an adjusting ring 1201, and two adjusting rings 1201 are provided. The two adjusting rings 1201 are symmetrically fixedly sleeved on both sides of the forming roller 7. The outer ring of the adjusting ring 1201 is movably sleeved with a gear ring 1202, and the surface of the gear ring 1202 is movably connected to the surface of the forming roller 7. It should be noted that: the two ends of the gear ring 1202 are fixedly connected to the surface of the guide roller 4 with a limited bearing, so that the adjusting ring 1201 on the surface of the guide roller 4 will not form interference during the rotation of the gear ring 1202.

[0036] A ring groove 1203 is provided in the middle of the inner ring of the gear ring 1202, and a main pad 1204 is symmetrically fixedly connected to the inner wall of the ring groove 1203. A slave pad 1205 is symmetrically fixedly connected to the middle of the outer ring of the adjustment ring 1201. The two slave pads 1205 correspond to the two main pads 1204 one by one, and an arc spring 1206 is fixedly connected between the side wall of the main pad 1204 and the side wall of the corresponding slave pad 1205. It should be noted that: when the forming roller 7 rotates with the adjusting ring 1201, the arc spring 1206 begins to compress. When the arc spring 1206 is compressed to the limit state, the adjusting ring 1201 rotates synchronously with the gear ring 1202 under the cooperation of the main pad 1204 and the corresponding slave pad 1205, so that the gear ring 1202 is meshed with the adjacent L-shaped rack 1120 for transmission; when the forming roller 7 stops rotating, the arc spring 1206 elastically recovers and reverses the gear ring 1202, so that the gear ring 1202 is meshed with the L-shaped rack 1120 for transmission and resets the L-shaped rack 1120.

[0037] The side walls of the forming bracket 6 are symmetrically fixedly connected with L-shaped pads 1208, and the two L-shaped pads 1208 correspond one to one with the two forming rollers 7. The side walls of the L-shaped pads 1208 are equidistantly rotated with three rotating rods 1209, and one end of the rotating rod 1209 is rotatably connected with an L-shaped pressure block 1210, and a vertical groove 1211 is opened on the surface of the L-shaped pressure block 1210.

[0038] The surface of the L-shaped pad 1208 is slidably connected to an L-shaped tooth plate 1212, one side of the L-shaped tooth plate 1212 engages with the surface of the adjacent tooth ring 1202, and the side of the L-shaped tooth plate 1212 away from the tooth ring 1202 is equidistantly fixedly connected to three levers 1213, which are slidably connected to the inside of the three vertical slots 1211 respectively. It should be noted that: when the L-shaped tooth plate 1212 is in meshing transmission with the adjacent tooth ring 1202, the L-shaped tooth plate 1212 slides in cooperation with the vertical groove 1211 on the L-shaped pressure block 1210 through the lever 1213, so that the L-shaped pressure block 1210 deflects with the rotating rod 1209 as the axis point. At this time, the deflected L-shaped pressure block 1210 presses against the surface of the corresponding L-shaped pressure plate 1214, so that the L-shaped pressure plate 1214 moves toward the direction of the ceramic fiber paper. At this time, the upper and lower L-shaped pressure plates 1214 move relative to each other to press and seal the side positions of the two ceramic fiber papers, effectively reducing the occurrence of adhesive overflow during the pressing and forming of the two ceramic fiber papers at the middle position.

[0039] The surfaces of the two L-shaped pads 1208 on the same side are both slidably connected with L-shaped pressing plates 1214, the two L-shaped pressing plates 1214 are symmetrically arranged, three L-shaped pressing blocks 1210 are arranged at the side walls of adjacent L-shaped pressing plates 1214, and the side walls of the glue box 5 are symmetrically fixedly connected with ball-head glue-spreading rods 1215, which are arranged between two adjacent L-shaped pressing plates 1214. It should be noted that the ball-head glue-spreading rods 1215 are used to glue the side edges of the two sheets of ceramic fiber paper being conveyed, and the two L-shaped pressing plates 1214 are used to perform edge sealing.

[0040] In this embodiment, Figures 1 to 11 As shown, a movable groove is opened on the surface of the L-shaped pad 1208, a movable block is fixedly connected to the surface of the L-shaped tooth plate 1212, the movable block is slidably connected inside the movable groove, and a restoring spring is fixedly connected between the side wall of the movable block and the inner wall of the movable groove.

[0041] The opposite surfaces of the two L-shaped pads 1208 on the same side are fixedly connected with guide rods, and the side walls of the L-shaped pressure plate 1214 are symmetrically fixedly connected with ring sleeve rods, which are movably sleeved on the surfaces of the corresponding guide rods, and the surfaces of the guide rods are movably sleeved with guide springs that cooperate with the ring sleeve rods. It should be noted that: through the cooperation of the guide rods, the ring sleeve rods and the guide springs, when the L-shaped pressure block 1210 releases the pressure on the L-shaped pressure plate 1214, the L-shaped pressure plate 1214 can automatically reset, thereby ensuring that the L-shaped pressure plate 1214 is released from the squeezed state after shutdown.

[0042] In this embodiment, Figures 1 to 11As shown, the surface of the glue coating plate 9 is fixedly connected with an L-shaped telescopic glue coating rod, and a spring tube is fixedly connected between the surface of the L-shaped telescopic glue coating rod and the surface of the glue liquid box 5. It should be noted that: the two glue coating plates 9 are respectively arranged at the inclined positions of the top and bottom of the glue liquid box 5, and the L-shaped telescopic glue coating rods on the two glue coating plates 9 correspond to the two ceramic fiber papers one by one; when the glue coating plate 9 moves toward the ceramic fiber paper, the L-shaped telescopic glue coating rod can be extended and retracted to avoid affecting the glue coating effect.

[0043] The use method and advantages of the present invention: The ceramic fiber paper efficient and stable forming machine has the following working process: like Figures 1 to 11 As shown, when in use, first start the transmission motor 1001 to mesh the transmission gear 1002 with the transmission gear 1003, so that the two transmission gears 1003 mesh and rotate with the corresponding forming roller 7, at this time, under the action of the main synchronous belt 1008, the main transmission rod 1004 and the forming roller 7 rotate synchronously, and the main transmission rod 1004 cooperates with the slave synchronous belt 1010 to rotate the slave transmission rod 1009, so that the transmission synchronous belt on the slave transmission rod 1009 rotates with the corresponding guide roller 4, and the ceramic fiber paper on the unwinding roller 2 is guided and conveyed by the guide roller 4. When the upper and lower ceramic fiber papers are conveyed to the position of the forming roller 7, the two forming rollers 7 press and form the ceramic fiber paper after glue coating; During this process, the rotation of the guide roller 4 will cause the adjusting ring 1201 to rotate synchronously, so that the slave pad 1205 on the adjusting ring 1201 moves toward the corresponding main pad 1204 inside the gear ring 1202. At this time, the arc spring 1206 is compressed, so that the adjusting ring 1201 can rotate synchronously with the gear ring 1202, and the rotating gear ring 1202 is meshed with the corresponding L-shaped tooth plate 1212, so that the L-shaped tooth plate 1212 translates on the surface of the L-shaped pad 1208, and then The lever 1213 of the L-shaped tooth plate 1212 moves and cooperates with the vertical groove 1211 to pull the L-shaped pressing block 1210 to deflect on the surface of the rotating rod 1209, so that the L-shaped pressing block 1210 presses the corresponding L-shaped pressing plate 1214 to move. During the transportation of the ceramic fiber paper, the two ball-headed gluing rods 1215 respectively apply glue to both sides of the ceramic fiber paper, and the side positions of the two ceramic fiber papers are sealed during the relative movement of the two L-shaped pressing plates 1214 on the same side. At the same time, during the rotation of the forming roller 7, the main transmission rod 1004 and the transmission cylinder 1005 are rotated synchronously through the main synchronous belt 1008, and the slave transmission rod 1009 and the main transmission rod 1004 are rotated synchronously through the slave synchronous belt 1010, so that the slave transmission rod 1009 rotates with the synchronous gear 1011. At this time, the rotating transmission cylinder 1005 slides with the L-shaped transmission rod 1007 on the glue coating plate 9 through the corrugated groove 1006, so that the glue coating plate 9 reciprocates on the surface position of the smoothing tooth plate 1101, and the L-shaped telescopic glue coating rod on the glue coating plate 9 is used to glue the middle part of the ceramic fiber paper. At the same time, as the glue coating plate 9 reciprocates, the smoothing gear 1103 on the glue coating plate 9 is meshed with the smoothing tooth plate 1101 for transmission, so that the smoothing gear 1103 rotates synchronously with the eccentrically set T-shaped smoothing disk 1105; When a block-shaped protrusion appears on the surface of the ceramic fiber paper, the contact position between the L-shaped seesaw 1107 and the ceramic fiber paper is compressed. Under the principle of lever, the L-shaped seesaw 1107 deflects through the waist groove 1108 and the push rod 1109, so that the push rod 1109 moves with the cone sleeve 1112 toward the L-shaped pin 1115. When the cone sleeve 1112 passes the position of the L-shaped pin 1115, the L-shaped pin 1115 presses the cone sleeve 1112 and the push rod 1115. 09 is limited, at this time, the moving gear 1110 on the push rod 1109 is meshed with the corresponding gear rod 1111 and the synchronous gear 1011 for transmission, and then the gear rod 1111 is meshed with the side wall of the glue coating plate 9, so that the glue coating plate 9 with the movable smoothing tooth plate 1101 moves toward the ceramic fiber paper at the side wall position of the glue liquid box 5, and the T-shaped smoothing disc 1105 rotating on the glue coating plate 9 smoothes the block-shaped protrusions on the surface of the ceramic fiber paper; At the same time, during the movement of the push rod 1109, the pressure rod 1113 on the push rod 1109 moves to the position of the conical pressure plate 1117, so that the conical pressure plate 1117 is pressed and moves with the limiting tooth 1118 toward the L-shaped rack 1120, so that the limiting tooth 1118 cooperates with the oblique tooth block 1123 on the L-shaped rack 1120 and limits the reset movement of the L-shaped rack 1120. During the rotation of the gear rod 1111, the single-tooth gear 1125 is periodically meshed with the surface of the L-shaped rack 1120 for transmission. When the inclined surface on the L-shaped rack 1120 moves to the position of the L-shaped pin rod 1115 inside the pin sleeve 1114, After being compressed, the L-shaped pin rod 1115 slides inside the pin sleeve 1114 and releases the contact with the cone sleeve 1112, so that the compression spring elastically recovers and moves the cross bar 1106 and the L-shaped rocker plate 1107 back to the original position. Then the moving gear 1110 releases the meshing with the gear rod 1111 and the synchronous gear 1011, so that the smoothing tooth plate 1101 moves the glue coating plate 9 back to the glue tank 5, thereby ensuring that after the block-like protrusions on the surface of the ceramic fiber paper are detected, the T-shaped smoothing disk 1105 on the glue coating plate 9 can perform regular processing on the block-like protrusions, thereby reducing the disturbance caused by the T-shaped smoothing disk 1105 to the transported ceramic fiber paper.

[0044] The above shows and describes the basic principles, main features and advantages of the present invention. Technical personnel in this industry should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are only preferred examples of the present invention and are not used to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention may have various changes and improvements, which fall within the scope of the present invention to be protected. The scope of protection of the present invention is defined by the attached claims and their equivalents.

Claims

1. A ceramic fiber paper efficient and stable forming machine, comprising a main support (1), characterized in that: The main bracket (1) is provided in two pieces, an unwinding roller (2) is symmetrically rotatably connected between the two main brackets (1), a slave bracket (3) is symmetrically arranged on the right side of the main bracket (1), a guide roller (4) is symmetrically rotatably connected between the two slave brackets (3), a glue tank (5) is fixedly connected between the middle parts of the two slave brackets (3), a forming bracket (6) is symmetrically arranged on the right side of the slave bracket (3), and a forming roller (7) is symmetrically rotatably connected between the two forming brackets (6); The support plates (8) are symmetrically fixedly connected to the side of the support (3) close to the forming support (6), the two support plates (8) are symmetrically arranged up and down, the two support plates (8) correspond to the two guide rollers (4) one by one, the surface of the glue box (5) is symmetrically movably connected to the glue coating plate (9), and the transmission mechanism (10) matched with the glue coating plate (9) is movably connected between the guide roller (4) and the surface corresponding to the support plate (8); A smoothing mechanism (11) that cooperates with a transmission mechanism (10) is movably connected between the surface of the support plate (8) and the corresponding glue coating plate (9), and an edge sealing mechanism (12) is movably connected between the surface of the forming roller (7) and the side wall of the adjacent forming bracket (6); The transmission mechanism (10) comprises a transmission motor (1001), the transmission motor (1001) is fixedly connected to the surface of the rear forming bracket (6), the rotating end of the transmission motor (1001) passes through the corresponding forming bracket (6) and is fixedly sleeved with a transmission gear (1002), one end of the two forming rollers (7) close to the transmission motor (1001) is fixedly sleeved with a transmission gear (1003), the two transmission gears (1003) are meshed, and the top of the transmission gear (1002) is meshed with the bottom of the adjacent transmission gear (1003); The surface of the support plate (8) is rotatably connected to a main transmission rod (1004), the surface of the main transmission rod (1004) is fixedly sleeved with a transmission cylinder (1005), the surface of the transmission cylinder (1005) is provided with a corrugated groove (1006), both sides of the glue coating plate (9) are fixedly connected to L-shaped transmission rods (1007), one end of the L-shaped transmission rod (1007) is slidably connected to the inside of the corrugated groove (1006), and a main synchronous belt (1008) is movably connected between the main transmission rod (1004) and the end of the forming roller (7) on the same side; The surface of the support plate (8) is rotatably connected to a slave transmission rod (1009), a slave synchronous belt (1010) is movably connected between the surface of the slave transmission rod (1009) and the surface of the adjacent main transmission rod (1004), and one end of the slave transmission rod (1009) passes through the support plate (8) and is fixedly sleeved with a synchronous gear (1011) that cooperates with the smoothing mechanism (11).

2. The ceramic fiber paper efficient and stable forming machine according to claim 1, characterized in that: The ends of the main transmission rod (1004) and the forming roller (7) are both fixedly sleeved with main synchronous wheels, and the main synchronous belt (1008) is movably connected between the two main synchronous wheels; The middle part of the main transmission rod (1004) and the end part of the slave transmission rod (1009) are both fixedly sleeved with slave synchronization wheels, and the slave synchronization belt (1010) is movably connected between the two slave synchronization wheels.

3. The ceramic fiber paper efficient and stable forming machine according to claim 2, characterized in that: The smoothing mechanism (11) comprises a smoothing tooth plate (1101), wherein two smoothing tooth plates (1101) are provided, and the two smoothing tooth plates (1101) are symmetrically and movably connected to the surface of the glue liquid box (5), and the side of the smoothing tooth plate (1101) away from the glue liquid box (5) is slidably connected to the surface of the glue coating plate (9); The surface of the glue coating plate (9) is provided with mounting holes (1102), the mounting holes (1102) are set to be eighteen in number, and every nine mounting holes (1102) are set to be a group, and two groups of mounting holes (1102) are staggered and opened on the surface of the glue coating plate (9), the smoothing tooth plate (1101) is arranged between the two groups of mounting holes (1102), the interior of the mounting hole (1102) is rotatably connected with a smoothing gear (1103), the side wall of the smoothing gear (1103) is meshed with the side wall of the smoothing tooth plate (1101), the side of the glue coating plate (9) away from the glue liquid tank (5) is provided with a groove (1104), the surface of the smoothing gear (1103) is eccentrically fixedly connected with a T-shaped smoothing disk (1105), and the T-shaped smoothing disk (1105) is arranged inside the groove (1104); A cross bar (1106) is fixedly connected between two support plates (8) on the same horizontal line, and an L-shaped seesaw (1107) is rotatably connected to the surface of the cross bar (1106), waist-shaped grooves (1108) are provided on both sides of the L-shaped seesaw (1107), and a push rod (1109) is movably connected inside the waist-shaped groove (1108), and the middle part of the push rod (1109) is slidably connected to the surface of the adjacent support plate (8), and one end of the push rod (1109) away from the L-shaped seesaw (1107) is rotatably connected to a moving gear (1110) that matches the synchronous gear (1011), and the surface of the support plate (8) is rotatably connected to a gear rod (1111) that matches the moving gear (1110), and the side wall of the rubber coating plate (9) is meshed with the side wall of the adjacent gear rod (1111); A cone sleeve (1112) is fixedly connected to one side of the push rod (1109) close to the L-shaped seesaw (1107); a pressure rod (1113) is fixedly sleeved to one side of the push rod (1109) close to the moving gear (1110); a pin sleeve (1114) is fixedly connected to the side wall of the support plate (8); an L-shaped pin rod (1115) matching the cone sleeve (1112) is vertically slidably connected inside the pin sleeve (1114); a surface of the L-shaped pin rod (1115) overlaps with a surface of the push rod (1109); and a compression spring (1116) is fixedly connected between the top of the L-shaped pin rod (1115) and the inner top surface of the pin sleeve (1114); The surface of the support plate (8) is vertically slidably connected to a conical pressure plate (1117) that matches the pressure rod (1113); the top of the conical pressure plate (1117) is fixedly connected to a limiting tooth (1118); the side wall of the support plate (8) is fixedly connected to an L-shaped sliding rod (1119); the surface of the L-shaped sliding rod (1119) is slidably connected to an L-shaped rack (1120) that matches the L-shaped pin rod (1115); the side wall of the L-shaped rack (1120) is connected to the L-shaped sliding rod (1119); 1119), a return spring (1121) is fixedly connected between the surfaces of the L-shaped rack (1120), fourteen movable grooves (1122) are equidistantly provided on one side of the L-shaped rack (1120), a bevel tooth block (1123) is slidably connected inside the movable groove (1122), a connecting spring (1124) is fixedly connected between the surface of the bevel tooth block (1123) and the inner wall of the movable groove (1122), and the side wall of the limiting tooth (1118) overlaps the side wall of the adjacent bevel tooth block (1123); A single-tooth gear (1125) is fixedly sleeved on the surface of the gear rod (1111), and the surface of the single-tooth gear (1125) meshes with the surface of the adjacent L-shaped rack (1120).

4. The ceramic fiber paper efficient and stable forming machine according to claim 3, characterized in that: The surface of the glue box (5) is symmetrically provided with countersunk holes, the surface of the smoothing tooth plate (1101) is symmetrically fixedly connected with T-shaped rods, the two T-shaped rods are respectively slidably connected inside the two countersunk holes, and a return spring is movably connected between the surface of the T-shaped rod and the inner wall of the countersunk hole; The smoothing tooth plate (1101) is symmetrically provided with a T-shaped slide groove on one side away from the glue liquid box (5), and the surface of the glue coating plate (9) is symmetrically fixedly connected with a T-shaped slider, and the two T-shaped sliders are respectively slidably connected inside the two T-shaped slide grooves.

5. The ceramic fiber paper efficient and stable forming machine according to claim 4, characterized in that: Both sides of the L-shaped seesaw (1107) are provided with hinge grooves, the waist-shaped groove (1108) is provided at the inner wall of the hinge groove, the waist-shaped groove (1108) is slidably connected to a hinge rod, and one end of the push rod (1109) close to the L-shaped seesaw (1107) is rotatably connected to the surface of the hinge rod; The surface of the push rod (1109) is movably sleeved with a guide sleeve, the side wall of the guide sleeve is fixedly connected to the side wall of the adjacent support plate (8), the surface of the push rod (1109) is fixedly sleeved with a retaining ring, and an adjustment spring is movably connected between the side wall of the retaining ring and the side wall of the guide sleeve.

6. The ceramic fiber paper efficient and stable forming machine according to claim 5, characterized in that: The edge sealing mechanism (12) comprises an adjustment ring (1201), wherein two adjustment rings (1201) are provided, and the two adjustment rings (1201) are symmetrically and fixedly sleeved on two sides of the forming roller (7), and the outer rings of the adjustment rings (1201) are movably sleeved with a toothed ring (1202), and the surface of the toothed ring (1202) is movably connected to the surface of the forming roller (7); An annular groove (1203) is provided in the middle of the inner ring of the gear ring (1202); a main pad (1204) is symmetrically fixedly connected to the inner wall of the annular groove (1203); a secondary pad (1205) is symmetrically fixedly connected to the middle of the outer ring of the adjustment ring (1201); the two secondary pads (1205) correspond to the two main pads (1204) in a one-to-one manner; and an arc spring (1206) is fixedly connected between the side wall of the main pad (1204) and the side wall of the corresponding secondary pad (1205); The side walls of the forming bracket (6) are symmetrically fixedly connected with L-shaped pads (1208), the two L-shaped pads (1208) correspond to the two forming rollers (7) one by one, the side walls of the L-shaped pads (1208) are equidistantly rotatably provided with three rotating rods (1209), one end of the rotating rod (1209) is rotatably connected with an L-shaped pressing block (1210), and a vertical groove (1211) is provided on the surface of the L-shaped pressing block (1210); The surface of the L-shaped pad (1208) is slidably connected to an L-shaped toothed plate (1212), one side of the L-shaped toothed plate (1212) meshes with the surface of the adjacent toothed ring (1202), and the side of the L-shaped toothed plate (1212) away from the toothed ring (1202) is equidistantly fixedly connected to three shifting rods (1213), and the three shifting rods (1213) are slidably connected to the inside of the three vertical grooves (1211) respectively; The surfaces of the two L-shaped pads (1208) on the same side are both slidably connected to an L-shaped pressure plate (1214), the two L-shaped pressure plates (1214) are symmetrically arranged, the three L-shaped pressure blocks (1210) are arranged on the side walls of adjacent L-shaped pressure plates (1214), the side walls of the glue box (5) are symmetrically fixedly connected to ball-head glue coating rods (1215), and the ball-head glue coating rods (1215) are arranged between two adjacent L-shaped pressure plates (1214).

7. The ceramic fiber paper efficient and stable forming machine according to claim 6, characterized in that: A moving groove is provided on the surface of the L-shaped pad (1208), a moving block is fixedly connected to the surface of the L-shaped tooth plate (1212), the moving block is slidably connected inside the moving groove, and a restoring spring is fixedly connected between the side wall of the moving block and the inner wall of the moving groove; The opposing surfaces of the two L-shaped pads (1208) on the same side are fixedly connected to guide rods, and the side walls of the L-shaped pressure plates (1214) are symmetrically fixedly connected to ring sleeve rods, which are movably sleeved on the surfaces corresponding to the guide rods, and the surfaces of the guide rods are movably sleeved with guide springs that cooperate with the ring sleeve rods.

8. The ceramic fiber paper efficient and stable forming machine according to claim 7, characterized in that: An L-shaped telescopic glue coating rod is fixedly connected to the surface of the glue coating plate (9), and a spring tube is fixedly connected between the surface of the L-shaped telescopic glue coating rod and the surface of the glue liquid box (5).

Citation Information

Patent Citations

  • Double-layer ceramic fiber paper pressing device

    CN220840699U