Aviation tire fiber cord fabric calender
By introducing a cooling roller assembly and a transmission assembly into the aviation tire fiber cord calender, the synchronous rotation of the calendering roller and the cooling roller is achieved. The cooling water inside the hollow cooling roller is used to cool and shape the cord, which solves the problem of cord deformation after calendering and improves processing efficiency and cooling effect.
Patent Information
- Application Number
- CN202423268020.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-12-30
AI Technical Summary
Existing aircraft tire fiber cord calendering machines cannot effectively cool down after calendering, resulting in cord deformation and affecting subsequent processing.
An aerospace tire fiber cord calendering machine was designed, which includes a calendering roll assembly and a cooling roll assembly. The synchronous rotation of the calendering roll and the cooling roll is achieved through a transmission assembly, and the cooling water inside the hollow cooling roll is used to cool and shape the calendered cord.
It improves processing and cooling efficiency, prevents fabric deformation, and ensures smooth subsequent processing.
Smart Images

Figure CN223573611U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of tire production, in particular to a kind of aviation tire fiber cord calender. BACKGROUND
[0002] A kind of aviation tire fiber cord calender is designed for the special equipment of fiber cord calendering process in the production of aviation tire.
[0003] In prior art, the patent file with the announcement number CN219903044U discloses a kind of cord calender for tire production, including rack, rack is provided with a pair, rack is connected with contact plate between, each rack inner wall is connected with traction roller frame, traction roller frame is rotatably connected with traction roller A and traction roller B between traction roller A and traction roller B, it is provided with punching assembly between traction roller A and traction roller B, punching assembly rotatably connects traction roller frame, traction roller A and traction roller B periphery side are all provided with edge cutting mechanism.
[0004] It is found that the above device cannot cool the cord after calendering during use, which can easily cause the deformation of the cord and affect subsequent processing. UTILITY MODEL CONTENT
[0005] To solve the above technical problems, the utility model provides a kind of aviation tire fiber cord calender of improving cooling efficiency.
[0006] The utility model discloses a kind of aviation tire fiber cord calender, including bottom plate and support, the bottom plate top is provided with two groups of supports, further including calendering roller assembly, cooling roller assembly and transmission assembly, the two groups of supports are respectively provided with calendering roller assembly and cooling roller assembly between, transmission is carried out between calendering roller assembly and cooling roller assembly by transmission assembly;When using, raw material is calendered by calendering roller assembly, and then the raw material after calendering is cooled and shaped by cooling roller assembly, improves processing efficiency.
[0007] Preferably, calendering roller assembly includes drive motor, No. 1 rotating shaft, calendering roller main body and No. 1 gear, the two groups of No. 1 rotating shaft are rotatably arranged between the two groups of supports, one group of calendering roller main body is respectively arranged on each group of No. 1 rotating shaft, drive motor is installed on one group of support, and one end of one group of No. 1 rotating shaft is connected with the output end of drive motor, one group of No. 1 gear is respectively arranged on each group of No. 1 rotating shaft, and the two groups of No. 1 gear are engaged;Drive motor is started, so that the two groups of No. 1 rotating shaft are relatively rotated by the two groups of No. 1 gear, further make the two groups of calendering roller main body relatively rotate, when cord raw material passes between the two groups of calendering roller main body, the two groups of calendering roller main body cooperate with each other to calender cord raw material, improve processing efficiency.
[0008] Preferably, the cooling roller assembly comprises a hollow rotating shaft, a hollow cooling roller, a conveying pump, a No. 1 three-way pipe, a No. 1 rotary joint, a No. 2 three-way pipe, a No. 2 rotary joint and a No. 2 gear, both ends of the hollow cooling roller are provided with the hollow rotating shafts, the hollow rotating shafts are communicated with the hollow cooling roller, the hollow cooling roller is rotatably installed between the two groups of supports under the cooperation of the hollow rotating shafts, the bottom plate is provided with the conveying pump at the top end, the conveying pump is provided with the No. 1 three-way pipe at the output end, the two groups of output ends of the No. 1 three-way pipe are rotatably communicated with the input ends of the hollow rotating shafts at the front side of the hollow cooling roller through the No. 1 rotary joint, the output ends of the hollow rotating shafts at the rear side of the hollow cooling roller are rotatably communicated with the two groups of input ends of the No. 2 three-way pipe through the No. 2 rotary joint, the No. 1 rotating shaft and the hollow rotating shaft are driven by the transmission assembly, the hollow rotating shaft is provided with the No. 2 gear, and the two groups of No. 2 gears are meshed; the No. 1 rotating shaft drives a group of hollow rotating shafts to rotate through the rotating assembly, and the two groups of hollow cooling rollers are relatively rotated due to the meshing of the two groups of No. 2 gears, the conveying pump is started, so that the cooling water passes through the two groups of hollow cooling rollers and is discharged through the No. 2 three-way pipe, and when the calendered cord passes between the two groups of hollow cooling rollers, the cooling water in the hollow cooling roller cools and shapes the cord, thereby improving the cooling efficiency.
[0009] Preferably, the transmission assembly comprises a No. 1 chain wheel, a No. 2 chain wheel and a chain, the No. 1 rotating shaft is provided with the No. 1 chain wheel, the group of hollow rotating shafts is provided with the No. 2 chain wheel, and the No. 1 chain wheel and the No. 2 chain wheel are driven by the chain; the No. 1 rotating shaft drives the hollow rotating shaft to rotate under the cooperation of the No. 1 chain wheel, the No. 2 chain wheel and the chain, so that the two groups of calender roller bodies and the two groups of hollow cooling rollers are synchronously rotated, and the convenience is improved.
[0010] Preferably, the transmission assembly comprises a No. 1 chain wheel, a No. 2 chain wheel and a chain, the No. 1 rotating shaft is provided with the No. 1 chain wheel, the group of hollow rotating shafts is provided with the No. 2 chain wheel, and the No. 1 chain wheel and the No. 2 chain wheel are driven by the chain; the No. 1 rotating shaft drives the hollow rotating shaft to rotate under the cooperation of the No. 1 chain wheel, the No. 2 chain wheel and the chain, so that the two groups of calender roller bodies and the two groups of hollow cooling rollers are synchronously rotated, and the convenience is improved.
[0011] Preferably, the transmission assembly comprises a No. 1 chain wheel, a No. 2 chain wheel and a chain, the No. 1 rotating shaft is provided with the No. 1 chain wheel, the group of hollow rotating shafts is provided with the No. 2 chain wheel, and the No. 1 chain wheel and the No. 2 chain wheel are driven by the chain; the No. 1 rotating shaft drives the hollow rotating shaft to rotate under the cooperation of the No. 1 chain wheel, the No. 2 chain wheel and the chain, so that the two groups of calender roller bodies and the two groups of hollow cooling rollers are synchronously rotated, and the convenience is improved.
[0012] Preferably, the transmission assembly comprises a No. 1 chain wheel, a No. 2 chain wheel and a chain, the No. 1 rotating shaft is provided with the No. 1 chain wheel, the group of hollow rotating shafts is provided with the No. 2 chain wheel, and the No. 1 chain wheel and the No. 2 chain wheel are driven by the chain; the No. 1 rotating shaft drives the hollow rotating shaft to rotate under the cooperation of the No. 1 chain wheel, the No. 2 chain wheel and the chain, so that the two groups of calender roller bodies and the two groups of hollow cooling rollers are synchronously rotated, and the convenience is improved.
[0013] Compared with the prior art, the beneficial effects of the utility model are that: when in use, the raw materials are calendered through the calender roller assembly, and then the calendered raw materials are cooled and shaped through the cooling roller assembly, thereby improving the processing efficiency. BRIEF DESCRIPTION OF DRAWINGS
[0014] Figure 1 is the axonometric structure schematic view of the utility model;
[0015] Figure 2It is the explosion structure schematic diagram of the utility model;
[0016] Figure 3 It is the enlarged structure schematic diagram of the bottom plate and the calender roll main body and the like structure;
[0017] Figure 4 It is the enlarged structure schematic diagram of the delivery pump and the hollow cooling roll and the like structure;
[0018] Figure 5 It is Figure 4 The middle A part local enlarged structure schematic diagram.
[0019] Marked in the drawing: 1, bottom plate; 2, support; 3, drive motor; 4, No. 1 rotating shaft; 5, calender roll main body; 6, No. 1 gear; 7, hollow rotating shaft; 8, hollow cooling roll; 9, delivery pump; 10, No. 1 three-way pipe; 11, No. 1 rotary joint; 12, No. 2 three-way pipe; 13, No. 2 rotary joint; 14, No. 1 chain wheel; 15, No. 2 chain wheel; 16, chain; 17, No. 2 gear; 18, reinforcing plate. DETAILED DESCRIPTION
[0020] In order to facilitate understanding of the utility model, the utility model will be described more fully below with reference to the relevant drawings. The utility model can be realized in many different forms and is not limited to the embodiments described herein. On the contrary, the purpose of providing these embodiments is to make the disclosure of the utility model more thorough and comprehensive.
[0021] Example 1
[0022] As Figures 1 to 3 Indicated, a kind of aviation tire fiber cord calender of the utility model, including bottom plate 1 and support 2, the top of the bottom plate 1 is provided with two groups of support 2, still include calender roll assembly, cooling roll assembly and transmission assembly, two groups of support 2 between respectively are provided with calender roll assembly and cooling roll assembly, transmission is carried out between calender roll assembly and cooling roll assembly by transmission assembly;
[0023] As Figures 1 to 3 Indicated, calender roll assembly includes drive motor 3, No. 1 rotating shaft 4, calender roll main body 5 and No. 1 gear 6, two groups of No. 1 rotating shaft 4 are rotatably arranged between the two groups of support 2, one group of calender roll main body 5 is respectively arranged on each No. 1 rotating shaft 4, drive motor 3 is installed on one group of support 2, and the output end of drive motor 3 is connected with the one end of one group of No. 1 rotating shaft 4, one group of No. 1 gear 6 is respectively arranged on each No. 1 rotating shaft 4, and two groups of No. 1 gear 6 are engaged;
[0024] As Figure 2 、 Figure 4 and Figure 5As shown, the cooling roller assembly includes a hollow rotating shaft 7, a hollow cooling roller 8, a conveying pump 9, a first tee pipe 10, a first rotary joint 11, a second tee pipe 12, a second rotary joint 13, and a second gear 17. Hollow rotating shafts 7 are respectively installed at both ends of the hollow cooling roller 8, and the hollow rotating shafts 7 communicate with the hollow cooling roller 8. The hollow cooling roller 8 is rotatably mounted between two sets of supports 2 with the cooperation of the hollow rotating shafts 7. The conveying pump 9 is installed at the top of the base plate 1, and the output end of the conveying pump 9... A first tee pipe 10 is provided. The two sets of output ends of the first tee pipe 10 are rotatably connected to the input end of the hollow rotating shaft 7 on the front side of the hollow cooling roller 8 through the first rotary joint 11. The output end of the hollow rotating shaft 7 on the rear side of the hollow cooling roller 8 is rotatably connected to the two sets of input ends of the second tee pipe 12 through the second rotary joint 13. The first rotating shaft 4 and the hollow rotating shaft 7 are driven by a transmission assembly. The hollow rotating shaft 7 is equipped with a second gear 17, and the two sets of second gears 17 mesh.
[0025] In this embodiment, the drive motor 3 is started, causing the two sets of No. 1 rotating shafts 4 to rotate relative to each other through the two sets of No. 1 gears 6, and further causing the two sets of calendering roll bodies 5 to rotate relative to each other. When the fabric material passes between the two sets of calendering roll bodies 5, the two sets of calendering roll bodies 5 cooperate to calender the fabric material. The No. 1 rotating shaft 4 drives a set of hollow rotating shafts 7 to rotate through the rotating assembly. Due to the meshing of the two sets of No. 2 gears 17, the two sets of hollow cooling rolls 8 rotate relative to each other. The conveying pump 9 is started, so that the cooling water passes through the two sets of hollow cooling rolls 8 and is discharged through the No. 2 three-way pipe 12. When the calendered fabric passes between the two sets of hollow cooling rolls 8, the cooling water inside the hollow cooling rolls 8 cools and shapes the fabric.
[0026] Example 2
[0027] like Figures 1 to 3 As shown, the present invention provides an aviation tire fiber cord calendering machine, which includes a base plate 1 and a support 2. Two sets of supports 2 are provided at the top of the base plate 1. The machine also includes a calendering roller assembly, a cooling roller assembly and a transmission assembly. The calendering roller assembly and the cooling roller assembly are respectively arranged between the two sets of supports 2. The calendering roller assembly and the cooling roller assembly are driven by the transmission assembly.
[0028] like Figures 1 to 3 As shown, the calendering roll assembly includes a drive motor 3, a first rotating shaft 4, a calendering roll body 5, and a first gear 6. Two sets of first rotating shafts 4 are rotatably arranged between the two sets of brackets 2. Each set of first rotating shafts 4 is equipped with a set of calendering roll bodies 5. A drive motor 3 is installed on one set of brackets 2. The output end of the drive motor 3 is connected to one end of one set of first rotating shafts 4. Each set of first rotating shafts 4 is equipped with a set of first gears 6. The two sets of first gears 6 mesh.
[0029] like Figure 2 ,Figure 4 and Figure 5 As shown, the cooling roller assembly includes a hollow rotating shaft 7, a hollow cooling roller 8, a conveying pump 9, a first tee pipe 10, a first rotary joint 11, a second tee pipe 12, a second rotary joint 13, and a second gear 17. Hollow rotating shafts 7 are respectively installed at both ends of the hollow cooling roller 8, and the hollow rotating shafts 7 communicate with the hollow cooling roller 8. The hollow cooling roller 8 is rotatably mounted between two sets of supports 2 with the cooperation of the hollow rotating shafts 7. The conveying pump 9 is installed at the top of the base plate 1, and the output end of the conveying pump 9... A first tee pipe 10 is provided. The two sets of output ends of the first tee pipe 10 are rotatably connected to the input end of the hollow rotating shaft 7 on the front side of the hollow cooling roller 8 through a first rotary joint 11. The output end of the hollow rotating shaft 7 on the rear side of the hollow cooling roller 8 is rotatably connected to the two sets of input ends of the second tee pipe 12 through a second rotary joint 13. The first rotating shaft 4 and the hollow rotating shaft 7 are driven by a transmission assembly. A second gear 17 is provided on the hollow rotating shaft 7, and the two sets of second gears 17 mesh.
[0030] like Figure 2 and Figure 3 As shown, the transmission assembly includes a first sprocket 14, a second sprocket 15, and a chain 16. The first sprocket 14 is mounted on a set of first rotating shafts 4, and the second sprocket 15 is mounted on a set of hollow rotating shafts 7. The first sprocket 14 and the second sprocket 15 are driven by the chain 16.
[0031] It also includes a reinforcing plate 18, which is provided between the two sets of brackets 2.
[0032] In this embodiment, the drive motor 3 is started, causing the two sets of No. 1 rotating shafts 4 to rotate relative to each other through the two sets of No. 1 gears 6, and further causing the two sets of calendering roller bodies 5 to rotate relative to each other. When the fabric material passes between the two sets of calendering roller bodies 5, the two sets of calendering roller bodies 5 cooperate to perform calendering operation on the fabric material. The No. 1 rotating shaft 4 drives the hollow rotating shaft 7 to rotate under the cooperation of the No. 1 sprocket 14, the No. 2 sprocket 15 and the chain 16. Due to the meshing of the two sets of No. 2 gears 17, the two sets of hollow cooling rollers 8 rotate relative to each other. The conveying pump 9 is started, so that the cooling water passes through the two sets of hollow cooling rollers 8 and is discharged through the No. 2 three-way pipe 12. When the calendered fabric passes between the two sets of hollow cooling rollers 8, the cooling water inside the hollow cooling rollers 8 cools and shapes the fabric.
[0033] The drive motor 3, hollow cooling roller 8, and conveying pump 9 of the aviation tire fiber cord calender of this utility model are commercially available. Technical personnel in this industry only need to install and operate them according to the accompanying instruction manual, without requiring any creative work from those skilled in the art.
[0034] The above merely is the preferred implementation manner of the present application, and it should be noted that, for the ordinary skilled in the art, without departing from the technical principles of the present application, a number of improvements and modifications can be made, and these improvements and modifications should also be considered as the protection scope of the present application.
Claims
1. An aircraft tire fiber cord calender, comprising a base plate (1) and a support (2), the top end of the base plate (1) is provided with two groups of supports (2), characterized in that, It also comprises a calender roller assembly, a cooling roller assembly and a transmission assembly, the two groups of supports (2) are respectively provided with the calender roller assembly and the cooling roller assembly, and the calender roller assembly and the cooling roller assembly are driven by the transmission assembly.
2. An aircraft tire fabric calender as in claim 1 wherein, The calender roller assembly comprises a driving motor (3), a first rotating shaft (4), a calender roller main body (5) and a first gear (6), the two groups of first rotating shafts (4) are rotatably arranged between the two groups of supports (2), each group of first rotating shafts (4) is respectively provided with a group of calender roller main bodies (5), the driving motor (3) is installed on one group of supports (2), the output end of the driving motor (3) is connected with one end of one group of first rotating shafts (4), each group of first rotating shafts (4) is respectively provided with a group of first gears (6), and the two groups of first gears (6) are engaged.
3. An aircraft tire fabric calender as in claim 2 wherein, The cooling roller assembly comprises a hollow rotating shaft (7), a hollow cooling roller (8), a conveying pump (9), a first three-way pipe (10), a first rotary joint (11), a second three-way pipe (12), a second rotary joint (13) and a second gear (17), the two ends of the hollow cooling roller (8) are respectively provided with the hollow rotating shaft (7), the hollow rotating shaft (7) is communicated with the hollow cooling roller (8), the hollow cooling roller (8) is rotatably arranged between the two groups of supports (2) under the cooperation of the hollow rotating shaft (7), the bottom plate (1) is provided with the conveying pump (9) at the top end, the output end of the conveying pump (9) is provided with the first three-way pipe (10), the two groups of output ends of the first three-way pipe (10) are respectively rotatably communicated with the input ends of the hollow rotating shafts (7) on the front side of the hollow cooling roller (8) through the first rotary joints (11), the output ends of the hollow rotating shafts (7) on the rear side of the hollow cooling roller (8) are respectively rotatably communicated with the two groups of input ends of the second three-way pipe (12) through the second rotary joints (13), the first rotating shaft (4) and the hollow rotating shaft (7) are driven by the transmission assembly, the hollow rotating shaft (7) is provided with the second gear (17), and the two groups of second gears (17) are engaged.
4. An aircraft tire fabric calender as defined in claim 3 wherein, The transmission assembly comprises a first chain wheel (14), a second chain wheel (15) and a chain (16), the first rotating shaft (4) is provided with the first chain wheel (14), the hollow rotating shaft (7) is provided with the second chain wheel (15), and the first chain wheel (14) and the second chain wheel (15) are driven by the chain (16).
5. An aircraft tire fabric calender as defined in claim 1 wherein, It also comprises a reinforcing plate (18), and the two groups of supports (2) are provided with the reinforcing plate (18).
6. An aircraft tire fabric calender as defined in claim 1 wherein, It also comprises adjustable feet, and the bottom plate (1) is provided with a plurality of groups of adjustable feet at the bottom end.
7. An aircraft tire fabric calender as defined in claim 4 wherein, It also comprises a protective cover, the supports (2) are provided with the protective cover, and the first gear (6), the first chain wheel (14), the second chain wheel (15), the chain (16) and the second gear (17) are all arranged on the inner side of the protective cover.
Citation Information
Patent Citations
Cord fabric calender for tire production
CN219903044U