EP1598103A2

Weight-optimized portable oxygen concentrator

Abstract

System for producing an oxygen-rich gas comprising (a) a primary gas mover including a first and a second compressor, wherein the primary gas mover is characterized by a weight Wp; (b) a drive motor adapted to drive the first and second compressors; (c) a rechargeable power supply characterized by a weight, Wb; and (d) a pressure/vacuum swing adsorption unit adapted to separate the pressurized feed air into an oxygen-rich product at a product flow rate Fp and an oxygen-depleted waste gas, wherein the adsorption unit comprises a plurality of adsorber beds containing an adsorbent and characterized by a total adsorbent weight Wa; and wherein the combined weight, Wt, of the adsorbent, the primary gas mover, and the rechargeable power supply is characterized by the expression0.75 Fp < Wt < 2.02 Fp where Fp is in liters per min (at 23°C and 1 atma pressure), and Wa, Wp, and Wb are in pounds.

EP1598103A2, drawing sheet 1
Sheet 1 of 45

Term

Term ended

Projected expiry passed 18 May 2025, 1.4 years ago.

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29 claims: 5 independent, 24 dependent

  1. 1
    A system for producing an oxygen-rich gas comprising (a) a primary gas mover including a first compressor adapted to compress atmospheric air to provide pressurized feed air and a second compressor adapted to compress a waste gas from subatmospheric pressure to atmospheric pressure, wherein the primary gas mover is characterized by a weight W p ;(b) a drive motor adapted to drive the first and second compressors;(c) a rechargeable power supply adapted to supply power to the drive motor, wherein the rechargeable power supply is characterized by a weight W b ;and (d) a pressure/vacuum swing adsorption unit adapted to separate the pressurized feed air into an oxygen-rich product at a product flow rate F p and an oxygen-depleted waste gas, wherein the adsorption unit comprises a plurality of adsorber beds containing an adsorbent, wherein the total amount of the adsorbent contained in the adsorber beds is characterized by a total adsorbent weight W a ;wherein the combined weight, W t , of the adsorbent, the primary gas mover, and the rechargeable power supply is characterized by the expression 0.75 F p < W t < 2.02 F p where F p is in liters per min (at 23°C and 1 atma pressure) and W a , W p , and W b are in pounds.
  2. 2
    The system of Claim 1 wherein the battery is characterized by an operating run time in hours, t r , between maximum and minimum working charge, and wherein the system is further characterized by any of the expressions 0.21 F p < W a < 0.61 F p , 0.36 F p < W p < 0.70 F p , 0.18 F p < W b < 0.71 F p , and 0.10 F p t r < W b < 0.40 F p t r .
  3. 3
    The system of Claim 1 wherein the plurality of adsorber beds comprises four or more beds.
  4. 4
    The system of Claim 3 wherein the plurality of adsorber beds consists of four beds.
  5. 5
    The system of Claim 1 wherein each of the first and second compressors are selected from the group consisting of scroll, diaphragm, piston, and rotary vane compressors.
  6. 6
    The system of Claim 5 wherein the first and second compressors are scroll-type compressors.
  7. 7
    The system of Claim 1 having a total weight of less than 12 pounds.
  8. 8
    The system of Claim 7 having a total weight of less than 10 pounds.
  9. 9
    The system of Claim 8 having a total weight of less than 8 pounds.
  10. 10
    The system of Claim 1 wherein the adsorbent is selected from the group consisting of zeolite X exchanged with one or more metallic cations selected from the group consisting of lithium, calcium, zinc, copper, sodium, potassium, and silver.
  11. 11
    The system of Claim 10 wherein the adsorber beds further comprise an additional adsorbent selective for the adsorption of water and carbon dioxide from air and wherein the additional adsorbent is selected from the group consisting of (1) activated alumina and (2) zeolite X exchanged with one or more metallic cations selected from the group consisting of lithium, sodium, and potassium.
  12. 12
    The system of Claim 1 which further comprises a conserver.
  13. 13
    The system of Claim 1 wherein the rechargeable power supply is a battery.
  14. 14
    The system of Claim 1 wherein the rechargeable power supply is a fuel cell.
  15. 15
    The system of Claim 1 which further comprises an external case surrounding the primary gas mover, drive motor, rechargeable power supply, and pressure/vacuum swing adsorption system, and a user display/control panel mounted on the outer side of the case.
  16. 16
    The system of Claim 15 having a total weight of less than 12 pounds.
  17. 17
    The system of Claim 16 having a total weight of less than 10 pounds.
  18. 18
    The system of Claim 17 having a total weight of less than 8 pounds.
  19. 19
    A system for producing an oxygen-rich gas comprising (a) a primary gas mover including a first compressor adapted to compress atmospheric air to provide pressurized feed air and a second compressor adapted to compress a waste gas from subatmospheric pressure to atrriospheric pressure, wherein the primary gas mover is characterized by a weight W p ;(b) a drive motor adapted to drive the first and second compressors;(c) a rechargeable power supply adapted to supply power to the drive motor, wherein the rechargeable power supply is characterized by a weight, W b , and an operating run time, t r , between maximum and minimum working charge;and (d) a pressure/vacuum swing adsorption unit adapted to separate the pressurized feed air into an oxygen-rich product at a product flow rate F p and an oxygen-depleted waste gas, wherein the adsorption unit comprises a plurality of adsorber beds containing adsorbent, wherein the total amount of the adsorbent contained in the adsorber beds is characterized by a total adsorbent weight W a ;wherein the system is characterized by any of the expressions 0.21 F p < W a < 0.61 F p , 0.36 F p < W p < 0.70 F p , 0.18 F p < W b < 0.71 F p , and 0.10 F p t r < W b < 0.40 F p t r , where F p is in liters per min (at 23°C and 1 atma pressure), t r is in hours, and W a , W p and W b , are in pounds.
  20. 20
    The system of Claim 19 which further comprises additional elements including electrical wiring and control systems, a case or housing, and a user display/control panel mounted on the outer side of the housing, wherein the oxygen generation system and the additional elements are combined to form a portable oxygen concentrator, and means for the user to carry the portable concentrator unit.
  21. 21
    A method for producing an oxygen-rich product gas comprising (a) providing a primary gas mover including a first compressor for compressing atmospheric air to provide pressurized feed air and a second compressor adapted to compress an oxygen-depleted waste gas from subatmospheric pressure to atmospheric pressure, a drive motor for driving the first and second compressors, and a rechargeable battery for providing power to the drive motor, wherein the rechargeable power supply is characterized by an operating run time between maximum and minimum working charge;(b) providing a pressure/vacuum swing adsorption system adapted to separate the pressurized feed air into the oxygen-rich product gas and the oxygen-depleted waste gas, wherein the adsorption system comprises a plurality of adsorber beds containing adsorbent;and (c) operating each of the adsorber beds in turn through an adsorption cycle including at least the repeating steps of feed/provide product, depressurization, evacuation, and repressurization;wherein the method is characterized by any of the operating parameters (1) the rechargeable battery provides between 0.02 and 0.17 KWh of power during the operating run time between maximum and minimum working charge;(2) the total working capacity of the adsorbent in each adsorber bed during the adsorption cycle is between 1.2×10 -4 and 6.7×10 -4 lbmoles of nitrogen;(3) the first compressor moves between 1.14×10 -4 and 4.01×10 -4 lbmoles of pressurized feed air during the feed/provide product step;and (4) the second compressor moves between 3.47×10 -4 and 9.96×10 -4 lbmoles of waste gas during the depressurization and evacuation steps.
  22. 22
    The method of Claim 21 wherein the pressure/vacuum swing adsorption system has four adsorber beds and each of the adsorber beds undergoes in turn a series of adsorption cycle steps which comprise (A) a feed / make product step wherein the pressurized feed air is introduced into a feed end of the bed while the oxygen-enriched product gas is withdrawn from a product end of the bed;(B) a feed / make product / provide repressurization step wherein the pressurized feed air is introduced into a feed end of the bed while an oxygen-enriched product gas is withdrawn from a product end of the bed, and wherein a portion of the product gas is used for pressurizing another bed undergoing its final repressurization step;(C) a depressurization step in which the bed is depressurized by withdrawing gas therefrom, wherein at least a portion of the gas withdrawn therefrom is transferred to another bed undergoing a repressurization step;(D) a provide purge step in which the bed is further depressurized by withdrawing gas therefrom, wherein at least a portion of the gas withdrawn therefrom is transferred to another bed undergoing a purge step;(E) an evacuation step in which gas is withdrawn from the feed end of the bed until the bed reaches a minimum subatmospheric bed pressure;(F) a purge step in which the bed is purged by introducing purge gas into the product end of the bed while continuing to evacuate the bed, wherein the purge gas is provided from another bed undergoing step (D);(G) a repressurization step in which pressurization gas is introduced into the product end of the bed, wherein the pressurization gas is provided from another bed undergoing step (C);and (H) a final repressurization step in which product gas from another bed is introduced into the product end of the bed.
  23. 23
    The method of Claim 21 wherein the minimum bed pressure is between 0.25 and 1.0 atma.
  24. 24
    The method of Claim 21 wherein the minimum bed pressure is between 0.45 and 0.8 atma.
  25. 25
    The method of Claim 21 wherein the pressure of the oxygen-enriched product gas is between 1.2 and 1.6 atma.
  26. 26
    The method of Claim 21 wherein the oxygen-enriched product gas is provided at a flow rate in the range of 0.5 to 3.0 liters per min (defined at 23°C and 1 atma pressure).
  27. 27
    A method for producing an oxygen-rich product gas comprising (a) providing a primary gas mover including a first compressor for compressing atmospheric air to provide pressurized feed air and a second compressor adapted to compress an oxygen-depleted waste gas from subatmospheric pressure to atmospheric pressure, a drive motor for driving the first and second compressors, and a rechargeable battery for providing power to the drive motor, wherein the rechargeable power supply is characterized by an operating run time between maximum and minimum working charge;(b) providing a pressure/vacuum swing adsorption unit adapted to separate the pressurized feed air into the oxygen-rich product gas and the oxygen-depleted waste gas, wherein the adsorption unit comprises a plurality of adsorber beds containing adsorbent selective for the adsorption of nitrogen from air;and (c) operating each of the adsorber beds in turn through an adsorption cycle including at least the repeating steps of feed/provide product, depressurization, evacuation, and repressurization;wherein the minimum pressure in the evacuation step is between 0.35 and 1.00 atma.
  28. 28
    A method for the design of a portable pressure/vacuum swing adsorption oxygen concentrator system comprising (a) defining design parameters including at least a product flow rate, a product purity, a product delivery pressure, a pressure/vacuum swing adsorption process cycle, the number of adsorber vessels, an adsorbent contained in the adsorber vessels, the type of gas mover, the type of regenerable power supply to provide power to the drive motor, and the run time of the regenerable power supply between maximum and minimum working charge;(b) selecting a series of minimum bed pressures pressures below atmospheric pressure and determining for each of the minimum bed pressures the required weights of the gas mover, the power supply, and the adsorbent contained in the adsorber vessels, wherein each minimum bed pressure is a lowest bed pressure in the pressure/vacuum swing adsorption process cycle;(c) adding the weights of the adsorbent, the gas mover, and the power supply determined in (b) for each value of the minimum bed pressure to provide a total weight of the adsorbent, the gas mover, and the power supply as a function of the minimum bed pressure;and (d) selecting a range of the minimum bed pressures that corresponds to a range of minimum combined weight of the adsorbent, the gas mover, and the power supply.
  29. 29
    The method of Claim 28 wherein the range of minimum bed pressures is between 0.45 and 0.8 atma.
Independent claims29