The above and other objects, features and other advantages of the present invention will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
Now, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings.
As shown in
As can be seen from the above description, the valve 2 according to the present invention serves as the relief valve that completely discharges the gas out of the capillary tube 1, when the pressure applied to the fluid, i.e., the gas pressure in the capillary tube 1, exceeds a predetermined pressure level, i.e., the resistance pressure of the discharge pipe 21, only through the use of the gas pressure and the resistance pressure of the discharge pipe 21 without the provision of an additional intervention member, thereby preventing excessive pressure from being applied to the fluid.
Hereinafter, the operation of the micro fluid pump having the valve, serving as the relief valve, according to the present invention will be described in detail.
First, as shown in
As shown in
When more than a predetermined amount of fluid is supplied as a result of the fluid supply through the discharge check valve 32, or the check valve malfunctions, and therefore, excessive resistance is generated in the transfer pipe 3, the fluid pressure Pc is increased, and, when the gas is continuously supplied, the gas pressure Pa in the capillary tube 1 is also increased due to the increased gas.
When the gas pressure Pa in the capillary tube 1 is increased, and therefore, the gas pressure Pa in the capillary tube 1 exceeds the resistance pressure Pb of the discharge pipe 21, the gas having the increased pressure is discharged out of the capillary tube 1 through the discharge pipe 21, as shown in
The conventional valve has a problem in that, when more than a predetermined amount of fluid is supplied, or the gas pressure is continuously increased while the check valve is out of order, excessive fluid may be continuously supplied, or the micro fluid pump having the conventional valve may malfunction. For example, when medicinal substances are injected into a human body, the human body may encounter a dangerous situation.
On the other hand, the valve, serving as the relief valve, according to the present invention has a predetermined resistance pressure, and discharges the gas to the outside when a pressure greater than the predetermined resistance pressure is applied, thereby eliminating the dangerous factors caused by the conventional valve.
First, when the gas pressure Pa in the capillary tube 1 is lower than the resistance pressure Pb of the discharge pipe 21, the fluid is continuously pushed out, and, as a result of the continuous supply of air, the interior pressure of the capillary tube 1 gradually increases with the passage of time. When the gas pressure Pa in the capillary tube 1 gradually increases, and therefore, the gas pressure Pa in the capillary tube 1 reaches an “A” point at which the gas pressure Pa in the capillary tube 1 is higher than the resistance pressure Pb of the discharge pipe 21, the gas is discharged out of the capillary tube 1 through the discharge pipe 21.
When the gas is discharged out of the capillary tube 1 through the discharge pipe 21, the interior pressure of the capillary tube 1 decreases as indicated in Section 3.
After that, a predetermined amount of gas from the capillary tube 1 is guided periodically to the discharge pipe 21. The gas guided to the discharge pipe 21 passes over the liquid 211 in an air bubble phase, and is then discharged to the outside. As a result, the gas pressure Pa in the capillary tube 1 reaches equilibrium as indicated in Section 4 where the gas pressure Pa in the capillary tube 1 is uniformly maintained.
Hereinafter, the operation of the micro fluid pump having the valve, serving as the stabilizer, according to the present invention will be described in detail.
First, when there is no supply of gas from the gas supply unit 4, or the gas pressure Pa in the capillary tube 1 is lower than the resistance pressure Pb of the discharge pipe 21 and the fluid pressure Pc of the fluid introduced into the transfer pipe 3, the introduction check valve 31 is opened, and therefore, fluid is introduced into the capillary tube 1.
On the other hand, when gas from the gas supply unit 4 is supplied to the capillary tube 1 at a pressure lower than the resistance pressure Pb of the discharge pipe 21, the gas pressure Pa in the capillary tube 1 exceeds the fluid pressure of the fluid introduced into transfer pipe 3 with the result that the gas in the capillary tube 1 pushes out the fluid in the capillary tube 1. At this time, the introduction check valve 31 is closed, and the discharge check valve 32 is opened. As a result, the fluid is discharged through the discharge check valve 32.
In this way, the supply of fluid is continuously carried out by the supply of gas into the capillary tube 1. When more than a predetermined amount of fluid is supplied, or the check valve malfunctions, excessive resistance is generated in the transfer pipe 3. When the gas is continuously supplied in this state, the gas pressure Pa in the capillary tube 1 is also excessively increased.
Consequently, the gas pressure Pa in the capillary tube 1 exceeds the resistance pressure Pb of the discharge pipe 21.
As a result, the gas in the capillary tube 1 passes through the liquid in the discharge pipe 21, and is then discharged to the outside in an air bubble phase. After a predetermined amount of gas has been discharged to the outside, the interior pressure of the capillary tube 1 is stabilized into an equilibrium phase due to the liquid in the discharge pipe 21.
As can be seen from the above description, the valve 2, serving as the stabilizer, according to the present invention controls the supply of fluid using only the gas pressure and the resistance pressure of the discharge pipe 21 without the provision of an additional intervention member, thereby allowing the gas to be discharged through the discharge pipe 21, such that the gas passes through the liquid in the discharge pipe 21, in an air bubble phase until the interior pressure of the capillary tube 1 is stabilized when the pressure applied to the fluid, i.e., the gas pressure in the capillary tube 1, exceeds a predetermined pressure level, i.e., the resistance pressure of the discharge pipe 21, so as to uniformly maintain, i.e., stabilize, the interior pressure of the capillary tube 1.
As apparent from the above description, the valve according to the present invention serves as a relief valve that has a discharge pipe, having a predetermined resistance pressure, connected to the capillary tube, allows fluid to be introduced or discharged due to the gas pressure when the gas pressure in the capillary tube is lower than the resistance pressure of the discharge pipe, and allows the fluid to be completely discharged out of the capillary tube through the discharge pipe when the gas pressure in the capillary tube is higher than the resistance pressure of the discharge pipe. Also, the valve according to the present invention serves as a stabilizer that has a discharge pipe, having a predetermined resistance pressure, connected to the capillary tube, allows fluid to be introduced or discharged due to the gas pressure when the gas pressure in the capillary tube is lower than the resistance pressure of the discharge pipe, and allows the fluid to be discharged in an air bubble phase until the interior pressure of the capillary tube is stabilized when the gas pressure in the capillary tube is higher than the resistance pressure of the discharge pipe. Consequently, the present invention has the effect of controlling the supply of fluid using only the gas pressure without the provision of an additional intervention member, thereby simplifying the construction of the valve and the micro fluid pump. In addition, the present invention has the effect of preventing more than a predetermined pressure from being applied to the interior of the transfer pipe, thereby eliminating dangerous factors, such as damage and malfunction.
Although the preferred embodiments of the present invention have been disclosed for illustrative purposes, those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the invention as disclosed in the accompanying claims.
Number | Date | Country | Kind |
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1020060092424 | Sep 2006 | KR | national |