The invention relates to a twin-tube type, water-cooling ozone generation tube assembly. More particularly, the invention relates to an ozone generation tube assembly including multiple ozone generation tube modules, wherein each tube module has an inner tube and an outer tube, and both the inner and outer tubes are cooled by water.
Ozone is usually applied to treat the water to be used in semiconductor industries, aquatic product industries, swimming pools, households, etc. In a typical process of ozone production, oxygen-containing gas is guided through a high voltage discharge zone in an ozone generation tube, across which a high voltage is applied. The oxygen will be ionized while passing through the ozone generation tube.
U.S. Pat. No. 4,101,783 discloses similar features of producing ozone in an ozone generation tube. As shown in
In the discharge reaction, a large amount of heat energy is generated. The ozone generation tube, which provides the chamber for the discharge reaction to take place in, has to endure the heat thus generated. In many circumstances, the production rate of ozone should be large enough to meet the practical need. Thus, more heat would be generated in the ozone generation tube. The heat often causes the tube to rise to a very high temperature, which may damage the tube or reduce the lifespan of the tube. Heat reduction is thus a significant issue for an ozone generation system used for a higher rate of ozone generation.
Water cooling is usually used to reduce the heat produced in the ozone generation tube in the ozone generation industry. However, the state of the art only relates to cooling the outer tube of the ozone generator. It is known that the temperature in the inner tube is also very high in the discharge process. Accordingly, it is an object of the present invention to improve the cooling effect of the inner ozone generation tube by cooling it where temperature is high enough to damage the tube.
It is also an object of the present invention to provide means to produce a higher ozone generation rate having a sufficient cooling effect.
The present invention provides a twin-tube ozone generation tube, where both the inner tube and the outer tube are water cooled to effectively reduce the heat generated therein.
To achieve the object of effectively cooling the ozone generation tube, the ozone generation system of the present invention further contains a tube holder, which not only holds the ozone generation tube in place but also provides a chamber so that cooling water may pass through and thereby carry away the heat transferred from the tube to the tube holder.
To achieve the object of providing a higher ozone production rate, the ozone generation tubes according to the present invention can be assembled together by stacking the tube holders in a desired manner.
The specific measures for achieving the objects of the present invention will become apparent to those skilled in the art by making reference to the drawings of the present invention and the following detailed descriptions of the preferred embodiment.
Referring to
The tube module 80 comprises an aluminum tube 10, a tubular electrode 30, an inner quartz tube 50, and an outer quartz tube 60. The aluminum tube 10, which is the innermost ring of the tube module 80, has a water inlet 12 and a water outlet 14. The aluminum tube 10 is enclosed in the tubular electrode 30 and an annular gap is formed between the aluminum tube 10 and the tubular electrode 30. The annular gap is filled with an insulation layer 20 so that the aluminum tube 10 and the tubular electrode 30 are kept electrically insulated from each other. The insulation layer 20 also serves to fix the aluminum tube 10 in the tubular electrode 30. The insulation layer 20 may be made of materials selected from rubber. The inner quartz tube 50 is arranged to enclose the tubular electrode 30 and the outer quartz tube 60 is arranged to enclose the inner quartz tube 50 so that an annular space 52 is formed. The annular space 52 is closed at both its ends by sealing the ends of the inner quartz tube 50 and the outer quartz tube 60. A gas inlet 54 is provided at one end of the outer quartz tube 60 and a gas outlet 56 is provided at the other end of the outer quartz tube 60.
A tube holder 70 is provided to enclose the tube module 80. The tube holder 70 has at least one water inlet 72 and at least one water outlet 74.
During operation, a high voltage of 30,000V to 40,000V is applied across the tubular electrode 30 and the tube holder 70, and the tubular electrode 30 serves as the anode and the tube holder 70 serves as the cathode or ground electrode. The tubular electrode 30 is in contact with the inner side of the inner quartz tube 50. To increase conductivity between inner quartz tube 50 and the tubular electrode 30, the inner side of the inner quartz tube 50 is plated with a metal coating 40. Due to the high voltage applied across the two quartz tubes 50, 60, a high heat energy, and thus a high temperature, would be produced in the quartz tubes.
It is known that metal coating may not endure high temperature. As shown in the figures, cooling water is supplied via the water inlet 12. Thus, the heat generated in the inner quartz tube 50 can be carried away by the cooling water flowing out of the tube 50 via water outlet 14. The surface of the tube 50 will thus remain at a relatively lower temperature so that the metal coating thereon will not be damaged. The coating can be chosen from a variety of materials regardless of their melting points, and gold, having a lower melting point but good conductivity and a good corrosion-resistant property, is preferred in this condition.
Since the aluminum tube 10 should be kept from direct contact with the cooling water therein, an anodic treatment on the surface of the aluminum tube 10 is preferable.
In a preferred embodiment, the tube holder 70, as shown in the figures, is composed of two halves 70′, 70″. The tube holders 70 are configured so that they can be easily connected to each other. Multiple tube modules are necessary in order to produce large amount of ozone.
For the purpose of easy assembling, the tube holder 70 can be formed by two halves 70′, 70″. For economic purposes, the two halves 70′, 70″ can be made identical.
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The preferred material selected to make the tube holder 70 is aluminum since the cost of aluminum is low, and aluminum has a good heat-transfer property and electrical conductivity. In addition, aluminum can be easily formed into the desired shape by extrusion processes, and the material wasted in machining can be avoided.
The invention may also be implemented in other specific modes without departing from the spirit of the invention. Thus, the above-mentioned embodiments shall be regarded as explanatory but not restrictive. All changes that are consistent with the meaning and range of the claims and the equivalents shall fall within the scope claimed by the invention.