Conveyor belt
The conveyor belt design addresses wear and conductivity issues by using a core body and surface canvas made from the same resin material, enhancing adhesion and durability, and maintaining conductivity through higher melting point threads and coatings.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-09-30
- Publication Date
- 2026-04-09
AI Technical Summary
Conventional conveyor belts used for transporting heavy objects suffer from significant wear due to friction and sliding, leading to deterioration of the core material, and conductive coatings applied to improve conductivity also wear down quickly.
A conveyor belt design comprising a core body, a surface canvas with resin weft and warp threads of higher melting point, and conductive coatings, where the core and surface canvas are made from the same resin material to enhance adhesion and durability, and the conductive coating is applied to the surface canvas.
The design reduces wear due to friction and sliding while maintaining conductivity by using resin materials with higher melting points and enhancing adhesion, thereby improving durability and reducing conductivity loss.
Smart Images

Figure 2026062016000001_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a conveyor belt.
Background Art
[0002] For the conveyor belt used in a roller conveyor, for example, a canvas containing warp and weft is used, and a resin material or a rubber material is used as a treatment agent for the canvas to provide durability.
[0003] In particular, for the conveyor belt used for transporting heavy objects, since the load on the conveyor belt by the object to be transported is large, abrasion resistance is required. The surface canvas of the transport surface wears out due to heat generation by friction and sliding of the material, and the core base material is exposed, resulting in a loss of transport capacity.
[0004] When there is a stopper mechanism in the roller conveyor, there is a problem that the conveyor belt is easily damaged due to heat generation caused by sliding between the bottom surface of the object to be transported and the conveyor belt.
[0005] Patent Document 1 discloses a winding transmission device that winds a transmission belt around a drive pulley and transmits power to a driven pulley. The transmission belt is described as having a wrapping belt made of a canvas in which natural fibers form warp threads and synthetic fibers form weft threads.
[0006] Patent Document 2 discloses a curved belt that includes a first conductive member disposed along a first direction and a second conductive member disposed along a second direction intersecting the first direction in the canvas. The first and second conductive members remove static electricity charged on the belt over the entire belt.
[0007] Patent Document 3 discloses a flat belt comprising a core canvas, a first resin layer and a first outer canvas sequentially laminated on one surface of the core canvas, a first rubber layer laminated on the first outer canvas with adhesive, a second resin layer and a second outer canvas sequentially laminated on the other surface of the core canvas, and a second rubber layer laminated on the second outer canvas with adhesive, wherein the sum of the thickness of the first rubber layer and the thickness of the second rubber layer is 15 to 65% of the main body thickness of the flat belt. [Prior art documents] [Patent Documents]
[0008] [Patent Document 1] Japanese Unexamined Patent Publication No. 58-109753 [Patent Document 2] Japanese Patent Publication No. 2008-239314 [Patent Document 3] Japanese Patent Publication No. 2016-088681 [Overview of the project] [Problems that the invention aims to solve]
[0009] When natural fibers are used in the weft threads, as in the transmission belt described in Patent Document 1, the natural fibers become fuzzy and dirty during use, making it difficult to improve abrasion resistance while solving the above problem.
[0010] Conventional conveyor belts, especially when used to transport heavy objects, suffer from significant wear due to friction and sliding with the transported object, leading to belt deterioration such as exposure of the core. Furthermore, if a conductive coating is applied to the surface canvas of the conveyor belt to impart conductivity, the conductive coating wears down due to friction and sliding with the transported object, resulting in a decrease in conductivity.
[0011] The present invention aims to provide a conveyor belt that can reduce wear due to friction and sliding with the conveyed object and suppress the decrease in conductivity when a conductive coating is provided. [Means for solving the problem]
[0012] The conveyor belt of the present invention comprises a core body, a surface canvas bonded to one side of the core body, a back canvas bonded to the other side of the core body, and a conductive coating formed on at least the surface of the surface canvas, wherein the surface canvas comprises weft threads and warp threads made of a resin material with a higher melting point than the weft threads. [Effects of the Invention]
[0013] The present invention provides a conveyor belt that can reduce the amount of wear due to friction and sliding with the object being conveyed, and suppress the decrease in conductivity when a conductive coating is provided. [Brief explanation of the drawing]
[0014] [Figure 1] This is a cross-sectional view of a belt according to an embodiment of the present invention. [Figure 2] This is a schematic diagram of a sliding test apparatus according to an embodiment of the present invention. [Figure 3] This graph shows the measurement results according to an embodiment of the present invention. [Modes for carrying out the invention]
[0015] Embodiments of the present invention will be described below. However, the embodiments described below are merely illustrative and can be modified as appropriate to those skilled in the art.
[0016] <Embodiment> (Construction of the conveyor belt 10) FIG. 1 is a cross-sectional view of a conveyor belt 10 according to the present embodiment. The conveyor belt 10 of the present embodiment includes a core body 11, a surface canvas 12 adhered to one surface of the core body 11, and a conductive film 13 formed on the surface of the surface canvas 12. The surface of the conveyor belt 10 on which the surface canvas 12 and the conductive film 13 are provided is a conveyance surface 10A for conveying an object to be conveyed. The conveyor belt 10 further includes a back canvas 14 adhered to the other surface of the core body 11, and a conductive film 15 formed on the surface of the back canvas 14. The surface of the conveyor belt 10 on which the back canvas 14 and the conductive film 15 are provided is a surface on the opposite side of the conveyance surface 10A and is a surface 10B that contacts a conveyance pulley.
[0017] The core body 11 is made of an aliphatic polyamide such as PA6 (polyamide obtained by ring-opening polymerization of ε-caprolactam), and specifically, it is made of PA6. The core body 11 is a base material obtained by extruding a resin material to be the core body 11 into a sheet shape by an extruder and stretching or rolling it in a uniaxial direction. For example, it is preferable that the conveyor belt 10 has a long shape in one direction and the longitudinal direction of the conveyor belt 10 coincides with the uniaxial direction. The thickness of the core body 11 is not particularly limited, but for example, it is 0.2 mm or more and 4.0 mm or less.
[0018] The surface canvas 12 has weft yarns and warp yarns made of a resin material having a higher melting point than the weft yarns. For example, it is a canvas in which the weft yarns and the warp yarns are woven in a plain weave, or it may be a canvas woven in a twill weave. The thickness of the surface canvas 12 is not particularly limited, but preferably it is 0.1 mm or more. The surface canvas 12 is adhered to the core body 11 using an adhesive or by heat crimping or the like.
[0019] The weft yarns constituting the surface canvas 12 are made of an aliphatic polyamide such as PA6. The weft yarns constituting the surface canvas 12 are preferably made of the same material as the core body 11, whereby the adhesion between the core body 11 and the surface canvas 12 can be enhanced. When the core body 11 is made of PA6, the weft yarns constituting the surface canvas 12 are preferably made of PA6. The weft yarns constituting the surface canvas 12 are multifilaments. The weft yarns constituting the surface canvas 12 may be twisted or may not be twisted. By forming the weft yarns constituting the surface canvas 12 and the core body 11 from the same resin, the adhesion between the surface canvas 12 and the core body 11 can be enhanced.
[0020] The warp yarns constituting the surface canvas 12 are made of a resin material having a higher melting point than the weft yarns. For the warp yarns constituting the surface canvas 12, synthetic resins such as aliphatic polyamides such as PA66 (a polyamide formed by polymerizing hexamethylenediamine and adipic acid), semi-aromatic polyamides such as PA6T (a polyamide formed by polymerizing hexamethylenediamine and terephthalic acid), and wholly aromatic polyamides such as para-aramid (for example, a polyamide formed by polymerizing p-phenylenediamine and terephthalic acid) can be used. Regarding the melting points of the above resins, PA6 is 220 °C, while PA66 is 264 °C, PA6T is 306 °C, and the para-aramid has a decomposition temperature of about 500 °C. The warp yarns constituting the surface canvas 12 are multifilaments. The warp yarns constituting the surface canvas 12 may be twisted or may not be twisted.
[0021] The surface canvas 12 and the back canvas 14 may be resin-treated. The resin treatment may be omitted. A configuration in which either the surface canvas 12 or the back canvas 14 is resin-treated may also be used. The resin treatment can be performed by, for example, a coating treatment such as application of an adhesive, or an impregnation or dipping treatment such as dipping. As the adhesive, various adhesives such as isocyanate-based, nylon-based, epoxy-based, urethane-based, and acrylic-based adhesives can be used. When the resin treatment is performed, the durability such as abrasion resistance and the strength of the conveyor belt can be enhanced.
[0022] The conductive film 13 is formed by applying a conductive coating agent containing a conductive substance such as carbon.
[0023] The backing canvas 14 has weft and warp threads, and is, for example, a canvas woven in a plain weave, or a canvas woven in a twill weave. The thickness of the backing canvas 14 is not particularly limited, but is preferably 0.1 mm or more. The backing canvas 14 is bonded to the core body 11 using an adhesive or by heat pressing.
[0024] The weft and warp threads constituting the backing canvas 14 are made of an aliphatic polyamide such as PA6, and preferably from the same material as the core 11. The weft and warp threads constituting the backing canvas 14 are multifilaments. The weft and warp threads constituting the backing canvas 14 may or may not be twisted. By forming the weft and warp threads constituting the backing canvas 14 and the core 11 from the same resin, the adhesion between the backing canvas 14 and the core 11 can be improved.
[0025] The conductive coating 15 is similar to the conductive coating 13 and is formed by applying a conductive coating agent containing a conductive substance such as carbon.
[0026] In the conveyor belt 10 of this embodiment, the total thickness of the conveyor belt 10, which includes the core 11, surface canvas 12, conductive coating 13, back canvas 14, and conductive coating 15, is, for example, 0.8 mm or more and 7.0 mm or less.
[0027] The conveyor belt 10 of this embodiment is preferably applicable to the conveyance of heavy objects such as batteries.
[0028] Preferably, the melting point of the weft threads constituting the surface canvas 12 is lower than the melting point of the portion of the conveyor belt that contacts the conveyor belt 10 with the object being conveyed, and the melting point of the warp threads constituting the surface canvas 12 is equal to or greater than the melting point of the portion of the conveyor belt that contacts the conveyor belt with the object being conveyed. For example, the object being conveyed by the conveyor belt 10 is a pallet containing heavy objects. The pallet is made of resin, and the bottom surface of the pallet contacts the conveyor belt 10. The pallet is made of the same PA66 as the warp threads constituting the surface canvas 12. By having the melting point of the weft threads constituting the surface canvas 12 lower than the melting point of the resin constituting the pallet, and the melting point of the warp threads constituting the surface canvas 12 equal to or greater than the melting point of the resin constituting the pallet, the amount of wear due to friction and sliding with the object being conveyed can be reduced.
[0029] (Method for manufacturing the conveyor belt 10) The core 11 is formed by extruding a resin material into a sheet using an extruder, and then stretching or rolling it in a uniaxial direction. Next, the surface canvas 12 and the back canvas 14 are formed. The surface canvas 12 is formed by weaving, for example, plain weave or twill weave, from weft threads and warp threads made of a resin material with a higher melting point than the weft threads. The back canvas 14 is formed by weaving, for example, plain weave or twill weave, from weft threads and warp threads. Next, the surface of the surface canvas 12 and the back canvas 14, or both, are treated with resin. Resin treatment is optional, but performing resin treatment can increase the durability, such as abrasion resistance, and strength of the conveyor belt. Next, a conductive coating agent is coated on the surface of the surface canvas 12 and the surface of the back canvas 14, for example, by knife coating, to form a conductive film 13 and a conductive film 15. Next, one side of the core 11 is bonded to the back surface of the surface canvas 12, and the other side of the core 11 is bonded to the back surface of the back canvas 14 using adhesive or heat pressing. In this way, the conveyor belt 10 can be manufactured.
[0030] (Function and effect of conveyor belt 10) By using a surface canvas 12 having weft threads and warp threads made of a resin material with a higher melting point than the weft threads, the amount of wear due to friction and sliding with the object being conveyed can be reduced, and when a conductive coating is provided, the heat generated by conductive substances such as carbon added to the conductive coating can easily cause wear and reduce conductivity, which can be suppressed.
[0031] By forming the weft threads constituting the surface canvas 12 and the core 11 from the same resin, the adhesion between the surface canvas 12 and the core 11 can be improved, thereby enhancing durability.
[0032] <Examples> The surface canvas 12 was a plain weave canvas with a thickness of 0.45 mm, made of PA6 with 72 filaments and twisted weft threads, and made of PA66 with 72 filaments and twisted warp threads. The back canvas 14 was a plain weave canvas with a thickness of 0.35 mm, made of PA6 with 72 filaments and twisted weft and warp threads. A conductive coating agent was supplied to the surface of the surface canvas 12 and the surface of the back canvas 14 to form conductive films 13 and 15. Adhesive was applied to a core body 11 made of PA6 with a thickness of 1.0 mm, and the back surface of the surface canvas 12 was bonded to one side and the back surface of the back canvas 14 to the other side, thereby manufacturing the conveyor belt of Sample 1 according to Example 1. The conveyor belt of Sample 1 was an endless belt with a thickness of approximately 1.8 mm, a width of 30 mm, and a length of 6083 mm.
[0033] The conveyor belt of Example 2 was manufactured in the same manner as the conveyor belt of Sample 1, except that the warp threads constituting the surface canvas 12 were made of PA66, with 72 filaments and twisted, and the surface canvas 12 and the back canvas 14 were subjected to a resin treatment called dipping.
[0034] A comparative example, Sample 3, was manufactured in the same manner as the conveyor belt of Sample 1, except that the weft and warp threads constituting the surface canvas 12 were made of PA6, with 72 filaments and twisted.
[0035] Figure 2 is a schematic diagram of the sliding test apparatus 20 according to this embodiment. The sliding test apparatus 20 is a device for performing a sliding test on a conveyor belt 21. The sliding test apparatus 20 has a pair of conveyor pulleys 22A and 22B, a support plate 23, and a stopper 24. The sliding surface of the support plate 23 is constructed by coating the surface of an aluminum support with polyethylene resin.
[0036] The sliding test using the sliding test device 20 is performed as follows: A conveyor belt 21 is wrapped around a pair of conveyor pulleys 22A and 22B so that the elongation rate is 2.0%. A support plate 23 is placed below the conveyor belt 21. Five pallets 30 (only one is shown in the drawing) are placed on the conveying surface of the conveyor belt 21. The pallets 30 are made of PA66, have a box-like structure with a width of 320 mm and a length of 320 mm, and can hold a total of up to 150 kg of conveyed goods 31 inside. The conveyor belt 21 is driven in the direction of arrow A by the drive of the conveyor pulleys 22A and 22B, and the conveyed goods 31 contained in the pallets 30 are conveyed in the direction of arrow A. A stopper 24 is provided on the conveying path, and the conveyor belt 24 stops the conveyed goods 31 contained in the pallets 30 from being transported. Even when the conveyance is stopped by the stopper 24, the conveyor belt 21 continues to be driven, so that friction occurs as the conveying surface of the conveyor belt 21 slides against the bottom surface of the pallet 30 while the weight of the conveyed object 31 is applied.
[0037] The conveyor belt of Sample 1 was attached to the sliding test apparatus 20, and a total of 150 kg of conveyed goods 31 were placed in five pallets 30. The conveyor belt 21 was driven at a speed of 32.0 m / min, and while stopping the conveyance with a stopper 24, the conveying surface of the conveyor belt 21 was slid between the conveying surface and the bottom surface of the pallets 30 to perform a sliding test. The duration of the sliding test was 144 hours. The change in the weight of the conveyor belt and the surface electrical resistance [Ω] before and after the sliding test were investigated.
[0038] The conveyor belts of Sample 2 and Sample 3 were also attached to the sliding test apparatus 20 and subjected to sliding tests in the same manner as described above. The test duration for the sliding tests was 144 hours for Sample 2 and 120 hours for Sample 3. As with Sample 1, the change in weight of the conveyor belts before and after the sliding test, and the surface electrical resistance values [Ω] before and after the sliding test were examined. The results are shown in Table 1. Note that the change in weight is shown as a ratio with the change in weight of Sample 3 set to 1.00.
[0039] [Table 1]
[0040] Figure 3 is a graph showing the weight change ratio and the measured surface electrical resistance [Ω] before and after the sliding test in the above sliding test. In Figure 3, the bar graph shows the weight change ratio. The dashed line graph shows the surface electrical resistance [Ω] before the sliding test, and the solid line graph shows the surface electrical resistance [Ω] after the sliding test. As shown in Figure 3, when the weight change of sample 3 is set to 1.00, the weight change ratio of the conveyor belt of sample 1 is 0.21, and the weight change ratio of the conveyor belt of sample 2 is 0.20, both of which were smaller than the weight change of sample 3. In addition, the surface electrical resistance of the conveyor belt of sample 1 was 9.8 × 10⁻⁶ before the sliding test. 3 The value is [Ω], and the surface electrical resistance after the sliding test is 1.9 × 10⁻⁶. 4 The surface electrical resistance was [Ω], and it maintained a small surface electrical resistance value before and after the sliding test. The conveyor belt of sample 2 had a surface electrical resistance value of 3.9 × 10 before the sliding test. 5 [Ω], and the surface electrical resistance value after the sliding test is 4.4 × 10 5 The surface electrical resistance was [Ω], which was greater than that of Sample 1, but the change in surface electrical resistance before and after the sliding test was small, similar to that of Sample 1. The conveyor belt of Sample 3 had an electrical resistance of 1.2 × 10 before the sliding test. 4 [Ω], and the electrical resistance value after the sliding test is the upper limit of measurement, 1.0 × 10 7 The value was above [Ω], indicating a significant change in electrical resistance before and after the sliding test.
[0041] From the above, it was confirmed that the conveyor belt of this embodiment reduced the amount of wear due to friction and sliding with the conveyed object, and suppressed the decrease in conductivity. [Explanation of symbols]
[0042] 10 belts 11 mind-body 12 Surface canvas 13 Conductive coating 14 Canvas on the reverse side 15. Conductive coating
Claims
1. Mind and body, A surface canvas attached to one side of the aforementioned core, The back canvas attached to the other side of the core body, It has at least a conductive coating formed on the surface of the surface canvas, The surface canvas has weft threads and warp threads made of a resin material with a higher melting point than the weft threads. Conveyor belt.
2. The aforementioned weft thread is made of the same material as the aforementioned core. The conveyor belt according to claim 1.
3. The core and the weft are made of aliphatic polyamide. The warp threads are made of aliphatic polyamide, semi-aromatic polyamide, or fully aromatic polyamide, which have a higher melting point than the weft threads. The conveyor belt according to claim 2.
4. The aforementioned core and the aforementioned weft thread consist of PA6. The aforementioned warp threads are made of PA66. The conveyor belt according to claim 3.
5. The melting point of the warp threads is equal to or greater than the melting point of the portion of the conveyor belt that contacts the object being conveyed with the conveyor belt. The conveyor belt according to claim 1.
6. The aforementioned surface canvas is resin-treated. The conveyor belt according to claim 1.
Citation Information
Patent Citations
Belt transmission gear
JP1983109753A
Curve belt
JP2008239314A
Flat belt
JP2016088681A