1. Field of the Invention
The present invention relates to a CO2 supply system, and more particularly to a CO2 supply system capable of causing phase change of CO2.
2. Description of the Related Art
However, when the liquid CO2 12 in the CO2 steel bottle 11 is to be used out, the amount of the gas state CO2 transformed from the liquid CO2 12 in the CO2 steel bottle 11 is insufficient, thus the pressure inside the CO2 steel bottle 11 is unstable. Or, it cannot be found that the liquid CO2 12 has been used out until the liquid level of the liquid CO2 12 is lower than the delivery pipe 13, so the replacement of the liquid CO2 supply device 1 is delayed. Therefore, the gas state CO2 transformed from the liquid CO2 12 in the CO2 steel bottle 11 directly passes through the delivery pipe 13 and is output through the output port 111, which influences the supply operation of the liquid CO2 12.
As the conventional liquid CO2 supply device 1 has the problem of unstable pressure, the replacement of the liquid CO2 supply device 1 is delayed, leading to the waste of CO2 and the increased usage of CO2. Thus, the manufacturing cost is increased and the greenhouse effect is aggravated.
Consequently, there is an existing need for providing a CO2 supply system to solve the above-mentioned problems.
The present invention is directed to a CO2 supply system, which comprises a condensing container and a gas state CO2 supply source. The condensing container has an accommodation space. The gas state CO2 supply source is connected to the accommodation space, and the gas state CO2 is transformed into liquid CO2 in the accommodation space.
The condensing container of the present invention transforms the gas state CO2 into the liquid CO2 and ensures the liquid state of the CO2 accommodated in the accommodation space of the condensing container. Thus, the liquid CO2 with stable pressure and stable flow rate could be provided to a nozzle module to produce a great quantity of the solid state and the gas state CO2 through the nozzle module, for providing the protection of metal/alloy melt during casting. Whereby, the usage of CO2 is reduced, so that the greenhouse effect is alleviated and the manufacturing cost is decreased.
Referring to
The gas state CO2 supply source 22 is connected to the accommodation space 211, and the gas state CO2 is transformed into the liquid CO2 in the accommodation space 211. Preferably, the gas state CO2 supply source 22 is a CO2 steel bottle or a CO2 storage tank. In this embodiment, the CO2 supply system 2 of the first embodiment further comprises a first connecting unit 23 that connects the condensing container 21 and the gas state CO2 supply source 22. Preferably, the first connecting unit 23 is a high-pressure conduit. Further, the CO2 supply system 2 of the first embodiment can further comprise a pressure sensing unit 24 disposed between the condensing container 21 and the gas state CO2 supply source 22. The pressure sensing unit 24 senses the pressure of the gas state CO2 supply source 22 and is respectively connected to the condensing container 21 and the gas state CO2 supply source 22 through the first connecting unit 23.
The condensing container 21 of the present invention transforms the gas state CO2 into the liquid CO2 and ensures the liquid state of the CO2 accommodated in the accommodation space 211 of the condensing container 21, thereby providing a liquid CO2 with stable pressure and stable flow rate. Further, the pressure of the gas state CO2 supply source 22 can be sensed by the pressure sensing unit 24 (i.e., the usage of gas state CO2), so as to serve as a basis of replacing the gas state CO2 supply source 22.
Referring to
The nozzle module 4 is connected to the CO2 supply system 2 of the first embodiment. The nozzle module 4 comprises a jet unit 41 and a heat isolation unit 42. The jet unit 41 is connected to the accommodation space 211 and has a first channel 411. The heat isolation unit 42 is connected to the jet unit 41 and has a second channel 421. The second channel 421 is communicated with the first channel 411. Preferably, the size of the second channel 421 is greater than that of the first channel 411.
In this embodiment, the heat isolation unit 42 comprises a heat isolation material 422 and a heat insulating material 423. The heat insulating material 423 is disposed on the outer surface of the heat isolation material 422. Preferably, the heat isolation material 422 is a TEFLON material, and the heat insulating material 423 is a foam material. When liquid CO2 enters the second channel 421 through the first channel 411 of the jet unit 41, the liquid CO2 is transformed into the solid state CO2 and the gas state CO2.
In this embodiment, the jet unit 41 has an orifice structure 412 (for example, an orifice plate) disposed in the first channel 411. Preferably, the size of the orifice of the orifice structure 412 is 0.03 mm2 to 0.4 mm2.
Preferably, the nozzle module 4 can further comprise an electromagnetic valve 43 disposed between the jet unit 41 and the condensing container 21, for controlling the liquid CO2 entering or not entering the jet unit 41. Further, the nozzle module 4 can further comprise a control device 44 electrically connected to the electromagnetic valve 43, for adjusting and controlling the flow rate of the liquid CO2 getting into the jet unit 41. In this embodiment, the condensing container 21 and the electromagnetic valve 43 are connected by a second connecting unit 45, and in other applications, the condensing container 21, the electromagnetic valve 43, and the jet unit 41 are connected by the second connecting unit 45. Preferably, the second connecting unit 45 is a high-pressure conduit.
The condensing container 21 of the present invention transforms the gas state CO2 into the liquid CO2 and ensures the liquid state of the CO2 accommodated in the condensing container 21, thereby providing the liquid CO2 with stable pressure and stable flow rate. By adjusting and controlling the flow rate of liquid CO2 with stable pressure and stable flow rate provided by the CO2 supply system 2 of the first embodiment entering the jet unit 41 by the control device 44, the liquid CO2 is then jetted into the second channel 421, so as to produce a great quantity of solid state CO2 and gas state CO2. Whereby, the usage of CO2 is reduced, so that the greenhouse effect is alleviated and the manufacturing cost is decreased.
Referring to
The condensing container 21 of the CO2 supply system 2 of the first embodiment transforms the gas state CO2 into the liquid CO2 and provides the liquid CO2 with stable pressure and stable flow rate to the nozzle module 4. The jet unit 41 of the nozzle module 4 then jets liquid CO2 with stable pressure and stable flow rate into the second channel 421 to produce a great quantity of solid state and gas state CO2. The solid state CO2 and gas state CO2 are sprayed into the melting furnace 5 through the second channel 421, for protecting the metal/alloy melt 6. The solid state CO2 upon contacting the surface of the high-temperature metal/alloy melt 6 is sublimated into gas, so as to reduce the surface temperature of the metal/alloy melt 6 by the use of the quick heat absorption capability (573 KJ/kg), and to decrease the oxidation rate of the metal/alloy melt 6.
In this embodiment, a thermocouple 7 can further penetrate in the melting furnace. Preferably, the thermocouple 7 is connected to a data processing device 8 (for example, a computer). The thermocouple 7 comprises a first thermocouple 71 and a second thermocouple 72. The first thermocouple 71 contacts the metal/alloy melt 6, and the second thermocouple 72 is located above the metal/alloy melt 6 and does not contact the metal/alloy melt 6, for measuring the temperature of the metal/alloy melt 6 and the temperature of the gas inside the melting furnace 5 respectively.
It is noted that directed to the protection conditions required for melting the metal/alloy, the spraying amount of the solid state CO2 and gas state CO2 can be adjusted (for example, continuously spraying the solid state CO2 and gas state CO2, or discontinuously spraying solid state CO2 and gas state CO2 by means of pulses), so as to quickly reduce the concentration of oxygen gas in the melting furnace 5, and isolate the metal/alloy melt 6 from the air, so as to prevent the metal/alloy melt 6 from combusting and achieve the purpose of protection.
Further, the nozzle module 4 is connected to the melting furnace 5 through the heat isolation unit 42, so the high temperature caused by the melting furnace 5 will not be conducted to the nozzle module 4, and thus the efficiency of the nozzle module 4 producing the solid state CO2 and gas state CO2 will not be reduced. Additionally, the control device 44 could be used to adjust and control the flow rate of liquid CO2 entering the jet unit 41, thus reducing the usage of CO2, so that the greenhouse effect is alleviated and the manufacturing cost is decreased.
While the embodiments of the present invention have been illustrated and described, various modifications and improvements can be made by those skilled in the art. The embodiments of the present invention are therefore described in an illustrative but not restrictive sense. It is intended that the present invention may not be limited to the particular forms as illustrated, and that all modifications that maintain the spirit and scope of the present invention are within the scope as defined in the appended claims.
Number | Date | Country | Kind |
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096141429 | Nov 2007 | TW | national |