1. Field of the Invention
This present invention relates to a flexible electrical heating element, more particularly to a flexible electrical heating element and manufacturing method thereof.
2. Description of the Prior Arts
Conventional electrical heating products are usually built by stiff, fragile and inflexible heating element such as metal wires, carbon heater and ceramic radiator. They bring inconvenience and are dangerous to the user caused by non-uniformly localized heating, user un-friendliness and the ease for electrical breakdown when in the situation of inappropriate bending during service. The heating element made from conventional carbon fiber though get rid of the problems stated above, the carbonization process for manufacturing carbon fiber is environmental unfriendly and expensive.
In order to improve drawbacks stated in the Prior Arts, this invention proposes a flexible electrical heating element comprising a substrate as an insulating material which could be a polymeric fiber fabric or a glass fiber fabric, a metal interlayer coating deposited on the fabric substrate, and a carbon film deposited as the out most layer with far-infrared emission capability, wherein the flexible electrical heating element utilizing a vacuum coating technique to successively deposit the metal interlayer coating and the far-infrared emissive carbon film. Moreover, this invention proposes a method of manufacturing a flexible electrical heating element utilizing the vacuum coating technique comprising the following steps:
a. substrate cleaning,
b. depositing the metal interlayer coating onto the substrate,
c. depositing the far-infrared emissive carbon film by using hydrocarbon gas onto the metal interlayer coating,
d. the flexible electrical heating element manufactured.
An advantage of this invention is utilizing the vacuum coating clean process to evenly deposit the metal interlayer coating and the far-infrared emissive carbon film onto a flexible insulating material, particularly in form of fabric. The uniformly covered metal interlayer coating provides area heating and carbon film emits far-infrared. The flexible insulating substrate performs as the support to further prevent fracture, damage or unexpected disaster for inappropriate bending during service. In addition, the flexible electrical heating element is capable of revitalizing human tissues beneficial from the far-infrared emitted by the carbon film. Moreover, based on the demands, an antibiotic, electromagnetic shielding or any other functions can be built in by depositing additional functional coatings onto the carbon film by utilizing the vacuum coating technique successively. By utilizing the vacuum coating technique, it reduces manufacturing cost and avoids the complexity brought by the conventional manufacturing process to increase additional functions of the flexible electrical heating element.
Hereinafter, embodiments of this invention will be explained in detail with reference to the drawings; however, this invention is not limited thereto.
Refer to
a. substrate 10 cleaning,
the substrate 10 which can be the insulating material comprising the flexible board, the fiber bundles, the fiber fabric or the non-woven fabric, the preferred choice can be a polymeric fiber fabric or a glass fiber fabric,
b. depositing the metal interlayer coating 101 onto the substrate 10,
the refractory metals used in the metal interlayer coating 101 deposition comprising niobium (Nb), molybdenum (Mo), tantalum (Ta), tungsten (W), rhenium (Re), titanium (Ti), vanadium (V), chromium (Cr), zirconium (Zr), hafnium (Hf), ruthenium (Ru), osmium (Os) or iridium (Ir),
c. depositing the far-infrared emissive carbon film 102 by using hydrocarbon gas onto the metal interlayer coating 101,
the hydrocarbon gas comprising acetylene (C2H2), methane (CH4) or ethane (C2H6) and the preferred choice which can be acetylene (C2H2),
d. the flexible electrical heating element 1 manufactured.
In step a., the substrate 10 is put into the CAPD to be cleaned by removing the surface contaminant for improving coating adhesion in accordance with the parameters of ion bombardment in the TABLE 1. In step b., the metal interlayer coating 101 is deposited by the refractory metals as a target on the substrate 10, and tungsten (W), titanium (Ti) or chromium (Cr) as preferred refractory metals. In step c., the far-infrared emissive carbon film 102 by applying the hydrocarbon gas; afterwards, the flexible electrical heating element 1 is manufactured.
Adjustment of the coating parameters for the hydrocarbon gas can affect the heating efficiency (in terms of temperature rise) and the far-infrared emissivity. Hence, based on demands, this invention can adjust coating parameters to manufacture the flexible electrical heating element 1 in a low-cost method.
This and other modification, as will occur to those skilled in the art, may be made in the exemplary embodiments shown without departing from the spirit of the invention and the exclusive use of all modification as come within the scope of the appended claims is contemplated.
Number | Date | Country | Kind |
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101138689 | Oct 2012 | TW | national |