The present invention generally relates to transfer systems for cryogenic fluids and is more particularly directed to a portable gas filling system for the transfer of cryogenic fluids at low pressure to high-pressure gas cylinders.
Cryogenic Dewars typically consists of an insulated multiple-walled tank for the storing of cryogenic liquids. Cryogenic liquids can produce large volumes of gas when a liquid is allowed to be vaporized to ambient temperature.
Typically, cryogenic liquids are dispensed from a bulk supply tank to smaller Dewars for use in various applications. Bulk supply tanks are typically stationary and Dewars are transported to the bulk supply for refilling and transported back to the user's site.
Alternatively, a variety of mobile delivery systems have been developed for providing cryogenic liquids to storage tanks at a user's site. Such truck deliveries incur a transportation cost.
The present invention provides for a medical oxygen filling system which provides the opportunity to supply a larger number of locations which reduces the number of high pressure gas cylinders to be transported and also allows the utilization of Dewars to supply product which will reduce cost since the cost of moving the Dewars is ten times more efficient then moving high pressure cylinders.
The system in accordance with the present invention can be used with Dewars or bulk tanks for indoor/outdoor operation.
In addition, the present system provides for virtually no venting of product during operation. This is to be contrasted with current systems which must vent product during operation and provides for high flow capability.
A portable gas filling system in accordance with the present invention for the transfer of cryogenic fluid at low pressure to high pressure gas cylinders generally includes a movable platform which is readily portable by either forklift or lockable roller wheels which enables the compact design of the present invention to pass through a standard 36 inch door.
A cryogenic fluid pump is disposed in the platform for connection to an off platform cryogenic Dewar and a vacuum pump being oxygen compatible for high purity gas applications is also disposed on the platform.
A vaporizer, also disposed on the platform, is provided for connection between the fluid pump and off platform gas cylinders. Preferably, the vaporizer is an ambient air vaporizer which eliminates the need for additional heating.
The vacuum pump also provides for purging of interconnecting system lines and the gas cylinders.
A gas accumulator, disposed on the platform, is interconnected to the system lines for storage of gas and to enable the pressurizing of the Dewar. Thus, the system in accordance with the present invention is basically a closed system during operation. Current systems must vent during operation to the atmosphere.
More particularly, the present invention includes purging valves, disposed in the system lines, for enabling purging of the lines by the vacuum pump. In addition, filling valves are provided and also disposed in the system lines for cool down of the fluid pump and filling of the gas cylinders.
A vent line is provided along with a gas separator, disposed on the platform, and interconnected with a pump inlet line and the vent line.
A control panel, disposed on the platform, conveniently provides support for pressure gauges along with switches and the filling and purging valves. This provides convenience for operation of the system in accordance with the present invention.
As hereinabove noted the system further comprises of lockable rollers for supporting the platform and enabling manual movement thereof through conventional doors. Alternatively, skids may be provided for moving the platform by a forklift.
The advantages and features of the present invention will be better understood by the following description when considered in conjunction with the accompanying drawings in which:
With reference to
A cryogenic fluid pump 22 disposed on the platform is provided for connection with an off platform cryogenic fluid Dewar 26, see
An ambient air vaporizer 30 is provided and disposed on the platform for connection between the fluid pump and off platform gas cylinders 34.
A vacuum pump 38 also disposed on the platform, is provided for purging of interconnecting system lines 42 and gas cylinders 34.
Importantly, a gas accumulator 46 is provided on the platform and interconnected to the system lines 42 for enabling pressurization of the liquid Dewar 26.
Pressure gauges 50 disposed on a control panel 52 along with valves 56 which are representative of individually identified pressure gauges and valves in
The schematic drawing of
As noted in the
In addition, filling valves V1, V2, V4, V3, V5, V6, and V7 also disposed in the system lines 42 are provided for cool down of the fluid pump and filling of the gas cylinders as hereinafter described.
Operation
The following operating instructions are for filing one or more medical oxygen cylinders 34 from the vertical liquid Dewar 26. The Dewar 26 is assumed to be of approximately 200 liter or larger capacity. Refer to
As a starting point it is assumed that all pumps 22, 38 are off, all valves shown in
A. Cylinder Pre-Fill
Although there has been hereinabove described a specific portable gas filling system in accordance with the present invention for the purpose of illustrating the manner in which the invention may be used to advantage, it should be appreciated that the invention is not limited thereto. That is, the present invention may suitably comprise, consist of, or consist essentially of the recited elements. Further, the invention illustratively disclosed herein suitably may be practiced in the absence of any element which is not specifically disclosed herein. Accordingly, any and all modifications, variations or equivalent arrangements which may occur to those skilled in the art, should be considered to be within the scope of the present invention as defined in the appended claims.
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Entry |
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Department of Defense Design Criteria Standard, section 4.8.3, MIL-STD-1660, section 4.8.3. |
Number | Date | Country | |
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20110056217 A1 | Mar 2011 | US |