In this specification, the term “core” will represent a metal strand for conducting electricity or an optical fiber for transmitting an optical signal. The term “sheath” refers to a coating around a core or another sheath.
The present invention relates to a cable for a concentrating photovoltaic module and, more particularly, to a cable including refractory and penetrable or reflective sheaths so that optical energy does not accumulate in the cable, thus preventing the cable from burning
The performance of a concentrating photovoltaic module is related to the quality of cables used therein. The quality of a cable is related to both of cores and sheaths thereof. The refractoriness of and optical absorption by the sheaths are factors to be considered.
For converting sunlight into electricity, a concentrating photovoltaic module includes concentrating panels to concentrate the sunlight onto solar cells. Thus, there are spots of light. The spots of light are supposed to fall on the solar cells. Because of the failure or imprecision of a sunlight-tracing device, the spots of light might however fall on and burn parts of the concentrating photovoltaic module except the solar cells. Cables are most vulnerable among the parts.
In general, when encountering light, an object allows the light to penetrate, reflects the light or absorbs the light. By allowing the light to penetrate, the object lets optical energy go. By reflecting the light, the object bounces the optical energy off. By absorbing the light, the object absorbs the optical energy.
In the concentrating photovoltaic module, a cable includes at least two colored sheaths each for wrapping a core. When the concentrating photovoltaic module converts sunlight into electricity, the colored sheaths absorb more of the optical energy of the sunlight than sheaths of white or metallic colors. Should the spots of light fall on a cable, the sheaths would absorb and convert a large portion of the optical energy into heat that could burn the sheaths and cause short circuit between the cores or between the cores and metal parts, thus affecting the operation of the concentrating photovoltaic module.
As discussed above, the colors of the sheaths are too dark and the surfaces of the sheaths are too rough to dissipate heat after encountering the sunlight. The accumulation of heat in the sheaths cannot be avoided so that the burning of the sheaths cannot be prevented. Hence, the short circuit between the cores or between the cores and the other metal parts cannot be avoided. Hence, the normal operation of the concentrating photovoltaic module is not guaranteed.
The present invention is therefore intended to obviate or at least alleviate the problems encountered in prior art.
It is the primary objective of the present invention to provide a cable in which heat does not accumulate.
In a first aspect of the present invention, the cable includes at least one core wrapped with a refractory and penetrable sheath.
It a second aspect of the present invention, the cable includes at least one core wrapped with a refractory and reflective sheath.
Other objectives, advantages and features of the present invention will become apparent from the following description referring to the attached drawings.
The present invention will be described via the detailed illustration of seven embodiments referring to the drawings.
As noted above, in this specification, the term “core” will represent a metal strand for conducting electricity or an optical fiber for transmitting an optical signal. The term “sheath” refers to a coating around a core or another sheath.
The sheath 11 is made of isolating and refractory material. The isolating and refractory material must survive a temperature of at least 140 degrees Celsius. Furthermore, the isolating and refractory material may be a penetrable material such as transparent silicone and transparent plastics. The penetration rate of the isolating, refractory and penetrable material is at least 90%. Alternatively, the isolating and refractory material may be a reflective material such as tin, aluminum and a white and smooth material. The reflection rate of the isolating, refractory and reflective material is at least 95%.
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As discussed above, after falling on the cable, at least 90% of the sunlight leaves the cable of the present invention. That is, only a small portion of the sunlight is absorbed and converted into heat by the sheath. The heat can easily be dissipated from the sheath. Hence, the sunlight increases the temperature the cable of the present invention to a small extent. Being refractory, the sheath can survive such a small increase in the temperature. Therefore, the sheath is durable, and so is the cable.
The present invention has been described via the detailed illustration of the embodiments. Those skilled in the art can derive variations from the embodiments without departing from the scope of the present invention. Therefore, the embodiments shall not limit the scope of the present invention defined in the claims.
Number | Name | Date | Kind |
---|---|---|---|
3999283 | Dean et al. | Dec 1976 | A |
4152535 | Deminet et al. | May 1979 | A |
4169739 | Lindmayer | Oct 1979 | A |
4194949 | Stark | Mar 1980 | A |
4210121 | Stark | Jul 1980 | A |
4746370 | Woolf | May 1988 | A |
20010001424 | Sasaoka | May 2001 | A1 |
20010034982 | Nagao et al. | Nov 2001 | A1 |
20020078991 | Nagao et al. | Jun 2002 | A1 |
20030201009 | Nakajima et al. | Oct 2003 | A1 |
20050032416 | Peress et al. | Feb 2005 | A1 |
Number | Date | Country | |
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20110170834 A1 | Jul 2011 | US |