Vacuum-pressure swing absorption concentrator
A vacuum-pressure swing absorption concentrator includes a motor driven compressor having pressure and vacuum heads that are connected to a pressure reservoir and a vacuum reservoir respectively. The pressure and vacuum reservoirs are selectively and alternately interconnected in sequence through a main valve to a pair of nitrogen filtering sieve beds. A controller operates the valve to alternately and cyclically interconnect the sieve beds to the pressure and vacuum reservoirs respectively. During each cycle, a respective bed is pressurized and enriched oxygen is produced and delivered to a tank for use by a patient. At the same time, the other bed is evacuated through the vacuum reservoir. A crossover valve delivers oxygen from a pressurized bed to an evacuated bed to facilitate purging of impurities previously collected in the evacuated bed.
1. A vacuum-pressure swing absorption oxygen concentrator comprising:
an electric motor;
a compressor operated by said motor;
a pressure reservoir having an inlet communicably connected to said compressor and a vacuum reservoir having an outlet communicably connected to said compressor such that operation of said compressor delivers pressurized air to said pressure reservoir and draws a vacuum on said vacuum reservoir;
a pair of nitrogen filters; and
a control valve for sequentially and alternately interconnecting an outlet of said pressure reservoir to communicate with a selected one of said nitrogen filters while simultaneously connecting an inlet of said vacuum reservoir to communicate with the other said nitrogen filter; whereby pressurized air from said pressure reservoir is delivered sequentially and alternately to respective one of said nitrogen filters for filtering therein while previously filtered impurities are simultaneously discharged from the other said filter through said vacuum reservoir.
2. The apparatus of claim 1 further including a motor controller for controlling operation of said motor a constant predetermined amperage.
3. The apparatus of claim 1 further including a control mechanism for directing said control valve to alternately and sequentially interconnect each of said nitrogen filters to said pressure and vacuum reservoirs respectively.
4. The apparatus of claim 1 further including a crossover valve interconnected between said nitrogen filters, which crossover valve opens prior to a respective one of said filters being fully pressurized by air from said pressure reservoir such that pressurized enriched oxygen is delivered through said crossover valve to said other nitrogen filter to assist in purging said other filter of previously filtered impurities contained therein.
5. The apparatus of claim 4 further including a controller for determining a selected pressure level at which said crossover valve opens.
6. The apparatus of claim 1 further including a product tank communicably connected to an outlet of each said filter for receiving filtered air therefrom.
7. The apparatus of claim 6 in which a check valve is disposed between each said filter and said tank to direct the flow of filtered air in one direction from said filters to the tank while restricting the flow of enriched oxygen from said tank to said filters.
8. The apparatus of claim 1 further including a sensor for detecting that pressurized air in said tank has reached a predetermined level.
9. The apparatus of claim 8 in which said motor is programmed to stop operation of said compressor in response to said sensor detecting said predetermined level of air in said tank.
10. A vacuum-pressure swing absorption oxygen concentrator comprising: an electric motor, a compressor operated by said motor; a motor controller for controlling operation of said motor a constant predetermined amperage; one or more nitrogen filters in selective communication with the compressor; a pressure reservoir having an inlet communicably connected to said compressor; and a vacuum reservoir having an outlet communicably connected to said compressor such that operation of said compressor delivers pressurized air to said pressure reservoir and draws a vacuum on said vacuum reservoir.
11. The vacuum-pressure swing absorption oxygen concentrator of claim 10 , further comprising a control valve for sequentially and alternately interconnecting an outlet of said pressure reservoir to communicate with a selected one of said nitrogen filters while simultaneously connecting an inlet of said vacuum reservoir to communicate with the other said nitrogen filter; whereby pressurized air from said pressure reservoir is delivered sequentially and alternately to respective one of said nitrogen filters for filtering therein while previously filtered impurities are simultaneously discharged from the other said filter through said vacuum reservoir.
12. A vacuum-pressure swing absorption oxygen concentrator comprising:
an electric motor,
a compressor operated by said motor;
a pressure reservoir having an inlet communicably connected to said compressor and a vacuum reservoir having an outlet communicably connected to said compressor such that operation of said compressor delivers pressurized air to said pressure reservoir and draws a vacuum on said vacuum reservoir;
a plurality of nitrogen filters; and
a control valve for selectively connecting an outlet of said pressure reservoir to a first one of the plurality of nitrogen filters while simultaneously connecting an inlet of said vacuum reservoir to a second one of the plurality of nitrogen filters.
13. The apparatus of claim 12 further including a motor controller for controlling operation of said motor a constant predetermined amperage.
14. The apparatus of claim 12 further including a crossover valve interconnected between said nitrogen filters, which crossover valve opens prior to a respective one of said filters being fully pressurized by air from said pressure reservoir such that pressurized enriched oxygen is delivered through said crossover valve to said other nitrogen filter to assist in purging said other filter of previously filtered impurities contained therein.
15. The apparatus of claim 14 further including a controller for determining a selected pressure level at which said crossover valve opens.
16. The apparatus of claim 12 further including a product tank communicably connected to an outlet of each said filter for receiving filtered air therefrom.
17. The apparatus of claim 16 in which a check valve is disposed between each said filter and said tank to direct the flow of filtered air in one direction from said filters to the tank while restricting the flow of enriched oxygen from said tank to said filters.
18. The apparatus of claim 17 further including a sensor for detecting that pressurized air in said tank has reached a predetermined level.
19. The apparatus of claim 18 in which said motor is programmed to stop operation of said compressor in response to said sensor detecting said predetermined level of air in said tank.