The present invention relates to a multi-stage gas compressing apparatus for compressing a compressed gas by a plurality of compressors, and particularly relates to a multi-stage gas compressing apparatus for simplifying operation of a primary gas compressor and a secondary gas compressor.
In
To control operation of the compressors, pressure sensors 104,105 for setting upper-limit pressure and lower-limit pressure respectively are provided to the gas compressors 101,102 respectively. Based on the upper-limit pressure and lower-limit pressure of discharge pressure detected by the pressure sensors 104,105 respectively, the primary gas compressor 101 and the secondary gas compressor 102 start and stop independently by control devices 106,107.
However, in the multi-stage gas compressing apparatus, to control each of the gas compressors 101,102 independently, it is required to provide the two pressure sensors 104,105 and the control devices 106,107. Furthermore, to adjust load, a receiver tank 108 has to be provided between the primary gas compressor 101 and the secondary gas compressor 102.
Specifically, if the primary gas compressor 101 stops, the secondary gas compressor 102 only runs. So the secondary gas compressor 102 is loaded excessively and is liable to be out of order.
The whole apparatus becomes not only more complicate, but also high cost for manufacturing it.
In view of the disadvantages in the prior art, it is an object of the present invention to provide a multi-stage compressing apparatus in which an operation control system is simplified, its cost is reduced and safety is improved.
In
High-pressure compressed gas compressed by the secondary gas compressor 3 is stored in a storage tank 5 connected to the secondary gas compressor 3 via a conduit 4.
A pressure sensor 6 is provided to the storage tank 5 to detect discharge pressure of the high-pressure gas compressed by the secondary gas compressor 3. The pressure sensor 6 is set to turn off at 1.0 MPa of the upper limit pressure and turn on at 0.8 MPa of the lower limit pressure.
When the pressure sensor 6 detects the upper limit pressure, it transmits a signal “off” to the control device 7, which transmits a signal for stopping to the primary gas compressor 1 and the secondary gas compressor 3 to stop them at the same time.
Air in the storage tank 5 is consumed and the pressure sensor 6 detects the lower limit pressure. A signal “on” is transmitted from the pressure sensor 6 to the control device 7, which transmits a signal for starting to the primary gas compressor 1 and the secondary gas compressor 3 to start them at the same time.
A relief valve 11 is provided at a conduit 10 between a primary gas compressor 8 and a secondary gas compressor 9. If the secondary gas compressor 9 is out of order or does not work, the primary gas compressor 8 will have to compress a gas to substantially the same pressure that the secondary gas compressor 9 could achieve compression. So the primary gas compressor 8 would be subjected to excessive load and would be broken. To avoid such situation, gas that flows through the conduit 10 is released to air by opening the relief valve 11, if gas pressure reaches an upper limit such as 0.75 MPa.
In the third embodiment in
In
In
The range between the upper and lower limit pressures detected by the relief valve 11 or additional control device 12 are set to be lower than the range between the upper and lower limit pressures detected by the pressure sensor 5 attached to the storage tank 5. If not so, either of the primary and secondary gas compressors will be likely to be out of order.
The foregoing merely relates to embodiments of the present invention. Various changes and modifications may be made by a person skilled in the art without departing from the scope of claims.
Number | Date | Country | Kind |
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2007-117026 | Apr 2007 | JP | national |
2008-105326 | Apr 2008 | JP | national |