1. Field of the Invention
This invention relates to a solar heat collector, in particularly to a solar heat collector having heat pipe.
2. Description of Related Art
Under the rising conscience of environmental protection and the threat of energy crisis, safer and less-polluting solar radiation energy is widely accepted by people. However, how to effectively and fully convert the solar radiation energy is the long term issue needed to solve. In available applications of solar radiation energy, solar heat collector is a product successfully commercialized and having economic interest. In order to improve the conversion efficiency of the solar radiation, the heat pipe had been successfully used in the solar hear collector as a heat conductive element.
When assembling the solar heat collector 1a, a plurality of openings 11a are needed to be formed on the heat exchanger 10a. Then, the branch tubes 20a are welded into the openings 11a. Finally, conductive material 40a is coated on the inner surface of the branch tubes 20a, so as to tightly connect the heat pipes 30a in the openings 11a.
However, the assembling method of the above solar heat collector 1a is complicated and wastes a lot of time. Besides, the heat of the heat pipes 30a is not directly exchanged to the water in the heat exchanger 10a, but transferred through the branch tube 20a to the heat exchanger 10a. Thus, the heat transferring thereof is less efficiency and needs to be improved.
Accordingly, in order to achieve the above objective, the inventor comprehensive studies and uses appropriate theories to provide the present invention, which is reasonable designed and capable of improving the above problem.
The objective of the present invention is to provide a solar heat collector, capable of simplifying the assembling method thereof and improving the of heat collecting efficiency.
For achieving the above objective, the present invention provides a solar heat collector having heat pipe, including a heat exchanger, a connecting barrel and at least one heat pipe. The heat exchanger has a shell and an accommodating space surrounded by the shell. The outer surface of the shell has an opening recess not passing through the shell. The inner surface of the opening recess has a plurality of first screw threads. The opening recess has at least one through hole connecting to the accommodating space. The connecting barrel includes a pipe tube having a tunnel. The pipe tube has a plurality of second screw threads for threadedly connecting with the opening recess. The heat pipe includes a main body and a working fluid disposed in the main body. An end of the heat pipe is inserted through the tunnel and the through hole and located in the accommodating space, wherein cool water flowing into the heat exchanger takes away the heat of the heat pipe and the heat exchange process of the heat pipe proceeds by the phase change of working fluid.
For achieving another objective, the present invention provides a solar heat collector having heat pipe, including heat collecting plate for fixedly mounting the heat pipe. The heat receiving area of the solar heat collector can be increased and thus improves the heat collecting efficiency.
For achieving another objective, the present invention provides a solar heat collector having heat pipe, including a sealing ring arranged between the opening recess of the heat exchanger and the pipe tube of the connecting barrel. It forms a hermetic seal between the opening recess and the pipe tube. The connecting barrel is tightly connected to the heat exchanger.
For achieving another objective, the present invention provides a solar heat collector having heat pipe, including a chamfer formed on the opening recess or the pipe tube of the connecting barrel. The sealing ring can be compressed toward the heat pipe. The connecting barrel is tightly connected in the opening recess. It forms a hermetic seal between the opening recess and the pipe tube.
In comparison to the prior art, the solar heat collector of the invention provides a opening recess on the shell of the heat exchanger, and screw threads on the inner surface of the opening recess. The connecting barrel can be threadedly connected to the opening recess. An end of the heat pipe can be inserted into the heat exchanger through the connecting barrel. Therefore, the connection of the heat pipe can be simplified. Besides, in comparison to the conventional heat conduction that the heat has to transfer through the branch tube, the heat pipe of the invention directly contacts with the water in the heat exchanger, so the conductive efficiency is higher and the collective efficiency is better, which both increase the practicability of the invention.
A detailed description of the present invention will be made with reference to the accompanying drawings.
In this embodiment, the heat collecting frame 10 is of triangle shaped, but not limited thereto. The heat exchanger 20 and the heat pipe 40 are fixedly mounted on the heat collecting frame 10. The heat exchanger 20 is arranged on the upper side of the heat collecting frame 10.
The connecting barrel 30 includes a pipe tube 31 having a tunnel 300 and a rotatable head 32 connecting to the pipe tube 31. The tunnel 300 is located at the center of the pipe tube 31 and the rotatable head 32. The tunnel 300 passes through the pipe tube 31 and the rotatable head 32. The diameter of the tunnel 300 is slightly larger than the diameter of the heat pipe 40. The pipe tube 31 has a chamfer 311 at the peripheral of the tunnel 300. The chamfer 311 is oblique from the inner surface of the pipe tube 31 to the outer surface of the pipe tube 31. The outer surface of the pipe tube 31 has a plurality of second screw threads 33 for threadedly connecting with the first screw threads 23 of the opening recess 22. Thus, the pipe tube 31 of the connecting barrel 30 can be threadedly connected to the opening recess 22. In practical use, the first screw threads 23 are inner screw threads and the second screw threads 33 are outer screw threads.
As
Furthermore, the heat collector 1 may further includes a sealing ring 60 arranged between the opening recess 22 and the pipe tube 31. The thickness of the sealing ring 60 is slightly larger than the chamfer 311 of the pipe tube 31. In this embodiment, the inner diameter of the sealing ring 60 is substantially equal to the diameter of the heat pipe 40. While assembling, the sealing ring 60 is arranged around the heat pipe 40, and then the heat pipe 40 with the sealing ring 60 is arranged into the connecting barrel 30. The rotatable head 32 can be rotated to drive the first screw thread 23 with the sealing ring 60 into the second screw thread 33. When approaching the bottom of the opening recess 22, the sealing ring 60 is compressed toward the heat pipe 40 by the chamfer 311. It forms a hermetic seal between the opening recess 22 and the pipe tube 31. In this time, the connecting barrel 30 is tightly connected in the opening recess 22 of the heat exchanger 20.
In this embodiment, the opening recess 22 has an inner chamfer 221 oblique formed from the bottom side of the opening recess 22 toward the accommodating space 200. When the connecting barrel 30 is driven to the bottom of the opening recess 22, the sealing ring 60 is compressed toward the heat pipe 40 by the pipe tube 31. The connecting barrel 30 is tightly connected in the opening recess 22. It forms a hermetic seal between the opening recess 22 and the pipe tube 31.
Although the present invention has been described with reference to the foregoing preferred embodiments, it will be understood that the invention is not limited to the details thereof. Various equivalent variations and modifications can still occur to those skilled in this art in view of the teachings of the present invention. Thus, all such variations and equivalent modifications are also embraced within the scope of the invention as defined in the appended claims.
Number | Date | Country | Kind |
---|---|---|---|
201110340419.8 | Nov 2011 | CN | national |
201110407457.2 | Dec 2011 | CN | national |