Carbon Fiber Washer
20170298980 · 2017-10-19
Inventors
- Yi-Ching Cheng (Taichung City, TW)
- Chun-Han Lai (Taichung City, TW)
- Po-Chen Sung (Taichung City, TW)
- Chang-Mou Wu (Taichung City, TW)
- Wen-You Lai (Taichung City, TW)
- Po-Chun Lin (Taichung City, TW)
Cpc classification
D06M15/37
TEXTILES; PAPER
D01F9/21
TEXTILES; PAPER
B32B2250/20
PERFORMING OPERATIONS; TRANSPORTING
B32B5/26
PERFORMING OPERATIONS; TRANSPORTING
F16B43/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B32B2262/106
PERFORMING OPERATIONS; TRANSPORTING
B32B2255/02
PERFORMING OPERATIONS; TRANSPORTING
B32B19/06
PERFORMING OPERATIONS; TRANSPORTING
D06M15/63
TEXTILES; PAPER
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
B32B2581/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
F16B43/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
B32B5/02
PERFORMING OPERATIONS; TRANSPORTING
D06M15/37
TEXTILES; PAPER
D03D13/00
TEXTILES; PAPER
B32B5/26
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A carbon fiber washer is provided and includes a carbon fiber fabric made of a plurality of fiber bundles being woven, in which each of the plurality of fiber bundles is made of discontinuous fibers; the advantage of the carbon fiber washer of the present invention includes high temperature and fatigue resisting, and weather proofing. The structure of the carbon fiber washer is stable due to the use of discontinuous fibers; breakages of discontinuous fibers do not affect other unbroken discontinuous fibers, so that the structure of the carbon fiber washer would not be loosened or delaminated and the service life can be prolonged accordingly.
Claims
1. A carbon fiber washer, comprising a carbon fiber fabric made of a plurality of woven fiber bundles, wherein each fiber bundle is formed of a plurality of discontinuous fibers.
2. The carbon fiber washer as claimed in claim 1, wherein the carbonization ratio of the carbon fiber fabric ranges from 10% to 95%.
3. The carbon fiber washer as claimed in claim 1, wherein a bonding material is in between two or more of the carbon fiber fabrics, the bonding material partially infiltrates or impregnates the spaces between the discontinuous fibers, the outer surface of the carbon fiber washer includes at least a portion not infiltrated with the bonding material.
4. The carbon fiber washer as claimed in claim 3, wherein the carbonization ratio of the carbon fiber fabric ranges from 10% to 95%.
5. The carbon fiber washer as claimed in claim 3, wherein the impregnation ratio of the bonding material being infiltrated into the carbon fiber fabrics ranges from 40% to 80%.
6. The carbon fiber washer as claimed in claim 5, wherein the bonding material is thermal-plastic or thermal-setting resin, and the discontinuous fiber is formed by carbonizing acrylic fiber.
7. The carbon fiber washer as claimed in claim 6, wherein the thermal-plastic resin is polyester or polysulfone resin, and the thermal-setting resin is epoxy or phenolic resin.
8. The carbon fiber washer as claimed in claim 1, wherein a stacking structure is formed by two of the carbon fiber fabrics with a supporting material, and the two carbon fibers are located at the outer side of the stacking structure.
9. The carbon fiber washer as claimed in claim 3, wherein the carbon fiber washer further including a supporting material disposed between two of the bonding materials, each of the bonding materials is disposed between one of the carbon fiber fabrics and the supporting material, and the outmost layers of the carbon fiber washer are the two of the carbon fiber fabrics.
10. The carbon fiber washer as claimed in claim 8, wherein the supporting material is carbon fiber fabric, thin fiber fabric, basalt fiber fabric, or glass fiber fabric or the combination thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings.
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0026] The structure and technical features of the present invention will now be described in considerable detail with reference to some embodiments and the accompanying drawings thereof, so that the present invention can be easily understood.
[0027] A carbon fiber washer is provided according to the present invention and includes a carbon fiber fabric 11 made of a plurality of fiber bundles 111 being woven, and each of the plurality of fiber bundles is made of a plurality of discontinuous fibers 1111. Preferably, the fiber bundles 111 are woven in both latitude and longitude directions as shown in the SEM images of
[0028] A method for producing a carbon fiber fabric 11 is further provided and includes the following steps:
[0029] (1) Providing a plurality of non-carbonized discontinuous fibers and twisting, bundling the discontinuous fibers into lines, in which the discontinuous fibers can be acrylic fibers.
[0030] (2) Interlacing and weaving the bundled non-carbonized discontinuous fibers by different methods to form a non-carbonized fiber fabric having various kinds of weaving patterns; the weaving method mentioned above is not limited to any specific way. Nonetheless, shuttleless weaving, such as plain weaving, is preferable; when the carbon fiber washer is formed by shuttleless weaving, the transmission of transverse shear stress generated during operation can be cut-off, thereby preventing damages.
[0031] (3) Carbonizing the non-carbonized fiber fabric by applying a temperature ranging from 400°˜3500° C. for forming the carbon fiber fabric 11, where, preferably, the carbonization ratio of the carbon fiber fabric can be ranged from 10% to 95%.
[0032] Referring to
[0033] In light of mass-producing the carbon fiber washer of the present invention, the materials of the carbon fiber washer including the carbon fiber fabrics 11 and the bonding material 20 can be prepared as rolls, such that a roll-to-roll process can be performed to produce carbon fiber washers having laminated structures. The material of the bonding material 20 can be selected according to the surface property of the bonding object. High pressure and high temperature are applied during the bonding process, thereby strengthening the structure of the laminated carbon fiber washer. The laminated structure having the carbon fiber fabrics 11 and the bonding materials 20 will be formed in rolls, and then further cutting processes such as stamping and cropping can be applied to cut out the carbon fiber washers 10.
[0034] The second preferred embodiment of the present invention as shown in
[0035] The followings are results showing benefits of the present invention, such as abrasion resisting, self-lubricating and thermal conducting. Referring to Table 1 and Table 2 below, illustrating physical properties of samples produced from the method for producing the carbon fiber washer of the present invention.
TABLE-US-00001 TABLE 1 Carbonization Warp temperature Thickness Basis weight density Sample code (° C.) (mm) (g/m.sup.2) (/inch) CF-1001-T ~1085 0.6 260 46 CF-1003-T ~1075 0.48 150 50 CF-1001-Z 1080~1090 0.55 300 46 CF-1003-Z 1070~1090 0.48 170 50
TABLE-US-00002 TABLE 2 Latitude density Number of Thermal conductivity Sample code (/inch) Laminas (W/cm .Math. ° C.) CF-1001-T 28 5 4.98 CF-1003-T 28 3 4.54 CF-1001-Z 28 5 4.64 CF-1003-Z 28 3 4.47
[0036] The thermal conductivities of the samples are around 5 (W/cm.Math.° C.), proving that the heats generated from physical frictions and abrasions during operation can be rapidly conducted and dissipated, thereby preventing damages caused by high temperatures of either the operating machine or the fibers. Please refer to
[0037] Referring to Table 3 below, the dynamic and static friction coefficients, abrasions, and the heat distortion temperatures of the samples are tested under the ASTM D1894, ASTM D3884, and ASTM D648 standard test methods. According to the testing results showing the static and dynamic friction coefficients of the samples, the carbon fiber structure woven with discontinuous fibers of the present invention indeed provides self-lubricating effects. Additionally, the carbon fiber washer 10 formed with discontinuous fibers is high temperature and abrasion resisting according to the test results below.
TABLE-US-00003 TABLE 3 Static Dynamic friction friction Abrasion Heat distortion Sample code coefficient coefficient (g) temperature (° C.) CF-1001-T 0.41 0.41 0.3318 157.0 CF-1003-T 0.27 0.27 0.0468 161.1 CF-1001-Z 0.27 0.27 0.1521 172.6 CF-1003-Z 0.41 0.41 0.2568 157.8
[0038] According to the test results above, the structure woven from discontinuous carbon fibers of the present invention is not only self-lubricating, abrasion and high temperature resisting, but with outstanding structural stability; while a part of the carbon fibers are broken, those broken carbon fibers will not affect the stability of the entire woven fiber structure, so that the structure will not be easily loosened or delaminated, so as to prolong the service life of the carbon fiber washer of the present invention.
[0039] Referring to Table 4 below showing abundance of elements under different carbonization ratios of sample code CF-1001-Z of the present invention carbonized with different carbonization temperatures. Carbon fiber washers carbonized under lower temperatures have more functional groups to be more easily bonding with bonding materials like resins, so that the structure will not be easily delaminated.
TABLE-US-00004 TABLE 4 Nitrogen Carbon Hydrogen Sample Carbonization Carbonization abundance abundance abundance code temperature° C. ratio N % C % H % CF-1001-Z 1080~1090 85 6.604 84.505 1.056 CF-1001-Z 850 70 12.808 69.986 1.768
[0040] The carbon fiber washer of the present invention can be widely applied to various fields according to its carbonization ratios. For instance, highly carbonized carbon fiber washers (carbonization ratio ranged between60%˜90%) can be implemented into automobile transmissions as gaskets, fishing reels, or other machines or apparatuses having highly rotating gears. Additionally, mid-carbonized carbon fiber washer (carbonization ratio ranged between 30%˜60%) can be implemented into machines having gears operating in lower rotating speed, such as food-grade processing machines, rather than using lubricating oils which may remain in the foods during the process. Low carbonized carbon fiber washers (carbonization ratio ranged between 10%˜30%) can not just be working with low speed gears, but be used as screw washers.