1. Technical Field
This invention relates generally to an electrolytic ozone cell technology that uses pure water as the raw source. More particularly, it relates to an electrolytic ozone cell anode spring board fixture structure.
2. Related Art
There are a variety of structures for the anode electrode of the electrolytic ozone cells that use pure water as the source. Most existing technologies use PTFE to bond the anode electrocatalyst particles to form the anode electrocatalyst membrane. Apart from this, there are also coating, plating, and pressing methods for attaching anode electrocatalyst particles. Regardless of the type of anode electrocatalyst layer formation technology used for particle attachment, the fundamental use of the metal plate (flat structure) pressing board remains in the process. The metal plate supplies pressure to the anode electrocatalyst and the solid polymer electrolyte membrane for firm contact through fastening. However, the metal plate pressing board has the following drawbacks:
1. In the fastening process, a metal plate subjected to long term stress will result in metal plastic deformation. Increasing the thicknesses of the metal plate or metal plate reinforcement structure does not avoid the prolonged effect of the fastening stress, and the plate deformation will increase over time. This will cause compression force between the anode electrocatalyst layer and the solid polymer electrolyte membrane to reduce, and the electrolytic ozone cell ozone generation rate will decrease.
2. Increasing the thicknesses of the metal plate or metal plate reinforcement structure in order to increase the in-plane strength not only adds production costs and complexities, but regardless of any increase in in-plane strength, deformation of the metal plate is unavoidable.
This invention overcomes the drawbacks of existing technology described above and provides a type of electrolytic ozone cell anode spring board fastening structure to assure that not only a reduction in pressing strength between the anode electrocatalyst layer and solid polymer electrolyte membrane caused by deformations of the metal material plate can be avoided, but also with thinning of the anode electrocatalyst layer, the required pressure can be maintained. After long periods of operation, the fastening stress to the anode structure of the electrolytic ozone cell remains constant for reliable cell performance and stable ozone production.
The invention can be achieved through the following approaches: a type of electrolytic ozone cell anode spring board fastening structure, which includes a solid polymer electrolyte membrane, anode electocatalyst layer, diffusion layer, frame body and support parts, the anode electrocatalyst layer placed between the solid polymer electrolyte membrane and diffusion layer; the frame body and support parts surround the edge of the anode electrocatalyst layer and diffusion layer, wherein one side of the diffusion layer counterpiece is attached to diffusion layer, the other side of the diffusion layer counterpiece contacts the center of the convex side of the spherical spring board. In addition, the solid polymer electrolyte membrane, frame body and support parts, diffusion layer, diffusion layer counterpiece and spring board are held together by mechanical fastening means.
In order to accomplish this invention, there is a support plate on the spring board.
In order to accomplish this invention, the above mentioned support plate is of dense metal material.
In order to accomplish this invention, the above mentioned spring board is of flexible metal material.
In order to accomplish this invention, the above mentioned anode electrocatalyst layer film is of lead dioxide.
In order to accomplish this invention, the above mentioned frame body is of flexible perfluoro elastomer.
In order to accomplish this invention, the above mentioned diffusion layer is a porous titanium plate.
In order to accomplish this invention, the above mentioned the other side of the diffusion layer is equipped with a centered elevated step, which contacts the center of the convex side of the spherical spring board.
This invention compared with existing technologies has the following significant advantages:
1. Since this invention employs a spring board and the electrolytic ozone cell requires this to produce elastic pressure, when anode structure of the electrolytic ozone cell is fastened as a whole, over long term operation will not result in deformation and cause the anode electrocatalyst layer structure contact to loosen, decreasing the ozone generation rate.
2. The electrolytic ozone cell anode fastening structure as a whole, with the center of the spring board and surrounding diffusion layer counterpiece and frame body and other supporting parts exert two forces. When the anode structure of the electrolytic ozone generator is fastened as a whole, the center of the spring board and the surrounding part are subject to two stresses given by the diffusion layer counterpiece and frame body and other support parts. Since the surrounding frame body and other support parts are flexible structures which can be compressed, whereas, the center structure cannot, the fastened spring board will have a certain extent of deformation within its elasticity range. When used for a period of time the reduction of pressure on the anode electrocatalyst layer due to the deformation of the metal plate pressing board can be quickly compensated. Therefore, the electrolytic ozone cell is able to maintain stable performance.
An electrolytic ozone cell anode spring board fastening structure (see
An electrolytic ozone cell anode spring board fastening structure (see
Number | Date | Country | Kind |
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200810016559.8 | Jun 2008 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN09/72117 | 3/6/2009 | WO | 00 | 12/4/2010 |