This application claims the priority benefit of China application serial no. 201410581494.7, filed on Oct. 27, 2014. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
1. Field of the Invention
The disclosure generally relates to a solar thermal collector and manufacturing method thereof.
2. Description of Related Art
In recent years, there have been many developments that adopt solar energy as an energy source, for example, the energy of solar radiation is converted into electrical energy or the thermal energy for variety of applications. When considering a solar thermal collector, an operation principle is to absorb the radiant energy of the sunlight and transfer into thermal energy, then using the thermal energy to heat up water or a heat transfer medium for subsequent applications. The solar thermal collector is generally configured with a solar selective coating for absorbing solar radiant energy and converting the solar radiant energy into thermal energy.
There are different types of solar thermal collectors. Some of the solar thermal collectors absorb the solar radiant energy through an absorbing plate, which is generally coated with a solar selective coating on one side of the absorbing plate to convert the solar radiant energy into thermal energy. Then the thermal energy is transmitted to heat collecting tubes, which are distributed and welded to another side of the absorbing plate, so as to heat up the heat-transfer medium flowing within the heat collecting tubes.
However, according to the above description, it is known that after the solar radiant energy is converted to thermal energy by the solar selective coating, the thermal energy has to go through a long distance, by means of thermal conduction, to cross the absorbing plate, the welding junctions, and through the wall of the heat conducting tubes before it can be transmitted to the heat transfer medium within the heat conducting tubes. In other words, the transmission path of the thermal energy from the solar selective coating to the heat transfer medium is relatively long and the contact surface of thermal conduction is relatively small, therefore, the heat conductivity and thermal efficiency of this type of collector is limited.
To solve the above-mentioned problems, in some conventional solar thermal collectors, two plates are welded together after forming mirrored grooves on each of the two plates, so as to form the heat collecting tubes through the mirrored grooves on the plates. The solar selective coating is coated on an outer surface of one of the plates. As a result, the selective coating is coated on the outer wall of the heat collecting tubes. In specific, the selective coating and heat collecting tubes share the same wall. After the solar selective coating converts the solar radiant energy into thermal energy, the thermal energy can be transmitted to the heat transfer medium in the heat collecting tube merely through the wall of the heat collecting tube and the contact surface of thermal conduction includes most part of solar selective coating area, rather than just the welding junctions. As such, the transmission path of the thermal energy from the solar selective coating to the heat-transfer medium is shortened and the contact surface is enlarged, so as to improve the heat conductivity and thermal efficiency of the collector. However, the welding process of the two pre-formed plates may create an alignment issue between the two plates. Misalignment between the two plates affects the quality of the solar thermal collector, but to precisely align the two plates during the welding process may reduce the process speed and increase production cost.
Accordingly, the disclosure is directed to a solar thermal collector and manufacturing method thereof, which simplifies the manufacturing process and improves quality of the solar thermal collector.
Overall, the disclosure provides a manufacturing method of a solar thermal collector includes the following steps. First, a first slab and a second slab stacked together are provided, and the first slab and the second slab are welded together along a plurality of rails, such that the first slab and the second slab are connected to each other through the rails to form a plurality of stripe-shaped connecting portions. Then, a high pressure medium is filled between the first slab and the second slab, such that the first slab and the second slab, except for the stripe-shaped connecting portions, are pushed away from each other by pressure provided from the high pressure medium, so as to form a plurality of channels divided by the stripe-shaped connecting portions. A solar selective coating is formed on an outer surface of the first slab.
In specific, the disclosure provides a solar thermal collector including a first slab, a second slab, a plurality of channels and a solar selective coating. The second slab is stacked onto the first slab. The first slab and the second slab are connected to each other through a plurality of rails to form a plurality of stripe-shaped connecting portions. The channels are formed by filling a high pressure medium between the first slab and the second slab for the first slab and the second slab, except for the stripe-shaped connecting portions, to be pushed away from each other by pressure provided from the high pressure medium. The solar selective coating is disposed on an outer surface of the first slab.
According to one or more embodiments, the method of welding the first slab and the second slab includes laser welding or ultrasonic welding.
According to one or more embodiments, the high pressure medium includes liquid or gas.
According to one or more embodiments, the manufacturing method of the solar thermal collector further includes: before filling the high pressure medium and after welding the first slab and the second slab together, the first slab and the second slab are disposed in a mold, such that the first slab and the second slab are confined by the mold after filling the high pressure medium.
According to one or more embodiments, the step of forming the solar selective coating on the outer surface of the first slab is performed before filling the high pressure medium.
According to one or more embodiments, the step of forming the solar selective coating on the outer surface of the first slab is performed after filling the high pressure medium.
According to one or more embodiments, a material of the first slab and the second slab comprises metal or plastic.
According to one or more embodiments, the first slab and the second slab are respectively flat plates.
According to one or more embodiments, one of the first slab and the second slab is a semi-shaped slab or a fully shaped slab.
According to one or more embodiments, the first slab is a metal slab, and the second slab is a plastic slab.
According to one or more embodiments, the step of welding the first slab and the second slab along the rails is performed on an outer surface of the second slab.
According to one or more embodiments, a plurality of first welding marks formed on the outer surface of the first slab by welding are smoother than a plurality of second welding marks formed on the outer surface of the second slab by welding.
Based on the above, in the solar thermal collector and the manufacturing method thereof provided by the disclosure, the first slab and the second slab stacked together are first welded along the rails, and then a plurality of channels are formed between the first slab and the second slab by filling the high pressure medium.
Because the first slab and the second slab do not have to be precisely aligned with each other when being welded together, the misalignment problem of the channels during welding process can be avoided. Accordingly, the solar thermal collector and the manufacturing method thereof provided by the disclosure can simplify the manufacturing process and improve yield.
The accompanying drawings are included to provide a further understanding of the disclosure, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the disclosure and, together with the description, serve to explain the principles of the disclosure.
Reference will now be made in detail to the preferred embodiments of this disclosure, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
Firstly, referring to
Referring to
Moreover, in this embodiment, the step of welding the first slab 110 and the second slab 120 together, along the rails 150, may be performed on an outer surface of the second slab 120. As such, a surface of a plurality of first welding marks formed by welding along the stripe-shaped connecting portions 152 on the outer surface of the first slab 110 is smoother than a surface of a plurality of second welding marks formed by welding along the stripe-shaped connecting portions 152 on the outer surface of the second slab 120, which means the outer surface of the first slab 110 is relatively smoother than the outer surface of the second slab 120. Accordingly, the first slab 110 and the second slab 120 may be welded together from the outer surface of the second slab 120, so as to maintain surface smoothness of the outer surface of the first slab 110. As such, the embodiment maintains the outer surface smoothness of the first slab 110, so as to help improve the surface quality of the subsequently formed solar selective coating 140.
Next, referring to
Next, referring to
In addition, the first slab 110 and the second slab 120 are disposed in the mold 102 before the high pressure medium is filled between the first slab 110 and the second slab 120, but after welding the first slab 110 and the second slab 120 together. The first slab 110 and the second slab 120 are corresponding to the grooves 102a of the mold 102. Therefore, after filling the high pressure medium, the first slab 110 and the second slab 120, except for the stripe-shaped connecting portions 152, are confined by the grooves 102a of the mold 102. As a result, the cross sectional shape of each channels 130 is correlated to the shape of each groove 102a.
Afterward, referring to
Besides the manufacturing process described above, the manufacturing method of the solar thermal collector provided by the disclosure includes other adaptable manufacturing process. For instance, the step of forming the solar selective coating 140 may be adjusted to be performed before the step of disposing the welded first slab 110 and second slab 120 in the mold 102, and the step of filling the high pressure medium. In other words, in this embodiment, since the first slab 110 and the second slab 120 are flat plates before being disposed in a mold 102 and filling the high pressure medium, the solar selective coating 140 can be formed on the outer surface of the first slab 110 at the time when the first slab 110 is still a flat plate. In another embodiment, the solar selective coating 140 may be formed on the first slab 110 even before welding the first slab 110 and the second slab 120. Accordingly, the order of performing the step of forming the solar selective coating 140 may be adjusted according to actual requirements. To be more specific, the step of forming the solar selective coating 140 may be adjusted to be performed before the step of welding the first slab 110 and the second slab 120, adjusted to be performed between the step of welding the first slab 110 and the second slab 120 and the step of filling the high pressure medium to from the channels 130, or adjusted to be performed after the step of filling the high pressure medium to from the channels 130. The disclosure does not limit the order of performing the step of forming the solar selective coating 140.
On the other hand, referring to
Furthermore, in another embodiment, the materials of the first slab 110 and the second slab 120 are not limited to be the same. For example, referring to
Furthermore, in the embodiment of
Referring back to
In summary of the solar thermal collector and the manufacturing method thereof provided by the disclosure, the first slab and the second slab stacked together are first welded along the rails, and then a plurality of channels are formed between the first slab and the second slab by filling the high pressure medium. Therefore, when comparing with the conventional technique of welding pre-made heat-conducting tubes onto the solar-absorbing plate, the solar thermal collector of this disclosure has relatively large contact surface of thermal conduction and can transmit the thermal energy from the solar selective coating to the heat-transfer medium merely through the wall between the solar selective coating and heat-transfer medium.
Since the contact surface is significantly enlarged and the transmission path of the thermal energy from the solar selective coating to the heat transfer medium is significantly shortened, the heat conductivity and thermal efficiency of the proposed collector is improved. In addition, when comparing with the conventional technique of firstly forming mirrored grooves on each of the two slabs and then welding the two slabs together, the proposed manufacturing method of the solar thermal collector can resolve the misalignment issue between the two slabs and, as a result, increase the welding speed, reduce the manufacturing cost, and improve the production yield of the solar thermal collector.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the disclosure without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
---|---|---|---|
201410581494.7 | Oct 2014 | CN | national |