The disclosure of Japanese Patent Application No. 2013-124379 filed on Jun. 13, 2013 including the specification, drawings and abstract is incorporated herein by reference in its entirety.
1. Field of the Invention
The present invention relates to a seal body and a gas seal mechanism.
2. Description of Related Art
A seal body, in which a U-shaped seal serves as a seal main body, is able to exert high sealing performance by concurrently using a spring that expands lips. Thus, the seal body is employed as a hermetic seal for a flow passage of high-pressure gas such as high-pressure hydrogen gas in a fuel cell power generation system, a fuel cell mounting vehicle, and so on (for example, Japanese Patent Application Publication No. 2004-76870 (JP 2004-76870 A)).
In a case where a seal body, which concurrently uses a spring, is incorporated in a gas flow passage for gas sealing, a gas flow passage on one side of the seal body has higher pressure than that of the gas flow passage on the other side. For example, in a case where a seal body is used to seal a gas flow passage that is connected with a main flow passage extending from a high-pressure hydrogen gas tank, storing hydrogen gas at high pressure, to a fuel cell, a gas flow passage on the main gas flow passage side has higher gas pressure, and the gas flow passage on the other side of the seal body has lower gas pressure. Normally, the levels of gas pressure in the gas flow passages on both sides of the seal body do not change. Therefore, there is no particular difficulty in maintaining sealability. However, when gas stored in a tank is consumed until a gas residual amount becomes almost zero, or gas is flown into the gas flow passage at low gas pressure from the other flow passage, inversion of the levels of gas pressure of the gas flow passages on both sides of the seal body, i.e., back pressure, happens at least temporarily. In a case where a seal body is used to seal a flow passage that connects main gas flow passages extending from a plurality of high-pressure gas tanks, respectively, it is possible that the main gas flow passage from the high-pressure gas tank, which is used to be on a high pressure side, may have lower pressure than that of the main gas flow passage from the other high-pressure gas tank, due to consumption of gas. Shortly after occurrence of the back pressure, the levels of gas pressure in the gas flow passages on both sides of the seal body return to original pressure states, i.e., forward pressure. However, in the viewpoint of reproduction of sealability when forward pressure is recovered, a sort of measure is now required when back pressure happens. It is also demanded to reduce a size and costs of a seal body that is able to deal with back pressure, or simplify and reduce costs of a structure of a gas seal mechanism in which the seal body is used.
A first aspect of the invention relates to a seal body that is used for gas seal. The seal body includes a seal main body in which a recessed groove is formed by arranging a pair of lips so that the lips face each other, an elastic body that is inserted in the recessed groove and expands the lips, and a rigid body that is installed in the elastic body and restricts deformation of the elastic body, due to narrowing of the recessed groove, within an elastic deformation range. When inversion of levels of gas pressure in gas flow passages on both sides of the seal body, i.e., back pressure, happens, the recessed groove is narrowed due to the back pressure, and the elastic body is deformed due to the narrowing of the recessed groove. Even in this case, in the seal body, the rigid body restricts the deformation within the elastic deformation range, and does not allow plastic deformation of the elastic body. Therefore, when the back pressure subsides, and the levels of the gas pressure of the gas flow passages on both sides of the seal body return to an original pressure state, i.e., forward pressure, the elastic body returns to a previous state before the back pressure happened. Therefore, according to the seal body, even if back pressure happens, once the back pressure subsides, original sealability is reproduced without any problem and the seal body is used continuously when forward pressure is recovered. Therefore, it is possible to improve continuity of sealing and seal durability. The rigid body is only installed in the elastic body, and is not related to expansion of the lips by the elastic body. Therefore, according to the seal body of this form, a size of the seal body can be similar to that of an existing seal body, and may thus be made compact.
The rigid body may have a slit. This way, in installing the rigid body in the elastic body, the slit splits linkage of the rigid body, which gives a higher degree of deformational freedom of the rigid body. Therefore, mountability and installability of the rigid body on the elastic body are enhanced, and costs including assembly costs are reduced.
The elastic body may be a metallic spring, and the rigid body may be installed inside the spring. This way, an existing seal body having no rigid body may be used easily, and versatility is increased. At the same time, the rigid body is inserted inside the spring easily. By using the metallic spring, sufficient elastic force is given to the seal body.
A second aspect of the invention relates to a gas seal mechanism that achieves gas seal in a gas flow passage formed by a housing. The gas seal mechanism includes a shaft body incorporated in the gas flow passage, and a seal body stored in a seal body storing region between the shaft body and the housing. The seal body includes a seal main body in which a recessed groove is formed by arranging a pair of lips so that the lips face each other, an elastic body that is inserted in the recessed groove and expands the lips, and a rigid body that is installed in the elastic body and restricts deformation of the elastic body, due to narrowing of the recessed groove, within an elastic deformation range. The seal body is stored in the seal body storing region so that an opening side of the recessed groove is located on a high pressure side of the seal body in the gas flow passage. According to the gas seal mechanism, even if inversion of levels of gas pressure in the gas flow passages on both sides of the seal body, i.e., back pressure, happens, once the back pressure subsides, original sealability is reproduced without any problem and the gas seal mechanism is used continuously, and continuity of sealing and seal durability are improved.
The invention may be realized in various forms. For example, in addition to various types of valve mechanisms incorporated in gas flow passages, the invention is applicable to a vehicle including a high-pressure gas tank and a gas consumption apparatus such as a fuel cell, and a gas flow passage that connects the apparatuses. The invention may also be applicable to a power generation plant including a fuel cell and a high-pressure gas tank that are installed in factories, stores, or houses.
Features, advantages, and technical and industrial significance of exemplary embodiments of the invention will be described below with reference to the accompanying drawings, in which like numerals denote like elements, and wherein:
Embodiments of the invention are explained below based on the drawings.
As shown in
The seal body 20 includes a ring-like seal main body 21, a spring 22, and the rigid ring 30. The seal main body 21 is a resin product with resistance to gas to be sealed. For example, when the gas seal mechanism 10 is applied to seal high-pressure hydrogen gas, the seal body 20 is made of a resin such as polytetrafluoroethylene (PTFE) and high-density polyethylene to have elastic force, and forms a recessed groove 21c by arranging a pair of lips 21a, 21b so that the lips 21a, 21b face each other. The seal main body 21 may be an existing U-shaped seal made of PTFE.
The spring 22 is a molded product obtained by molding a steel spring plate into a circular body with a V-shaped section, and elastically rebounds in a direction in which an opening end of the V-shaped section expands when the opening end is narrowed. The spring 22 is inserted in the recessed groove 21c of the seal main body 21, expands the lip 21a and the lip 21b by the elastic force, and presses the lip 21a and the lip 21b against an inner peripheral wall of the housing 12 and an inner peripheral wall of the seal body storing region 16. Because the lips are pressed, the seal body 20 achieves gas seal of the gas flow passage GL.
As shown in
The seal body 20 structured as above is stored in the seal body storing region 16 of the shaft body 14. Thus, the seal body 20 seals the gas flow passage GL and divides the gas flow passage GL into an upstream side gas flow passage GLu and a downstream side gas flow passage GLd in
The gas seal mechanism 10 according to this embodiment having the above-explained structure has the following advantages.
When the gas seal mechanism 10 seals the gas flow passage GL in the forward pressure sealing condition shown in
Once a factor that caused the back pressure is removed and the back pressure subsides, the gas pressure in the upstream side gas flow passage GLu becomes higher than that of the downstream side gas flow passage GLd, and the forward pressure is recovered. Because of the recovery of the forward pressure, the spring 22 elastically rebounds and returns to a state before the back pressure happened, and sealing by the seal body 20 returns to the forward pressure sealing condition shown in
On the other hand, in the existing gas seal mechanism Jsm, when back pressure happens so that a forward pressure sealing condition shown in
A test for recovering sealability was conducted on the gas seal mechanism 10 according to this embodiment shown in
In the seal body 20 according to this embodiment, it is only necessary to install the rigid ring 30 inside the spring 22, and the rigid ring 30 is not related to expansion of the spring 22 and both of the lips 21a, 21b. Therefore, according to the seal body 20 of this embodiment, a size of the seal body may be similar to that of the existing seal body Js, and may thus be made compact. The seal body 20 according to this embodiment may be replaced with the existing seal body Js easily, and thus has high versatility. Therefore, by using the metallic spring 22, sufficient elastic force is given to the seal body 20.
Next, a second embodiment is explained.
The invention is not limited to the foregoing embodiments, and may be realized in various structures without departing from the gist of the invention. For example, the technical features of the embodiments may be replaced or combined as appropriate in order to solve a part of or all of the problems stated earlier, or to achieve a part of or all of the foregoing effects. The technical features may be removed as appropriate unless the features are explained as mandatory in this specification.
In the foregoing embodiments, the seal body storing region 16 is formed on the outer peripheral wall of the shaft body 14, but may also be formed on the inner peripheral wall of the housing 12. In this case, the housing 12 shown in
In the foregoing embodiments, the spring 22, which is made by molding steel spring plate into a circular body having a V-shaped section, and the spring 22B, which is a circular-shaped coil spring, are inserted and stored in the recessed groove 21c. However, any elastic body, which generates elastic force and expands a pair of lips by using the elastic force, may be used instead of the springs.
Number | Date | Country | Kind |
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2013-124379 | Jun 2013 | JP | national |
Number | Date | Country | |
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Parent | 14301829 | Jun 2014 | US |
Child | 15618556 | US |