Claims
- 1. An indirect calorimeter for measuring the metabolic rate of a subject, said calorimeter comprising:
a disposable portion having a respiratory connector configured to be supported in contact with the subject so as to pass inhaled and exhaled gases as the subject breathes; a flow pathway within said disposable portion operable to receive and pass inhaled and exhaled gases, said flow pathway having a first end in fluid communication with said respiratory connector and a second end in fluid communication with a source and sink for respiratory gases; a reusable portion having a housing with a recess defined therein for receiving said disposable portion; a flow meter within said housing configured to generate electrical signals as a function of the instantaneous flow volume of inhaled and exhaled gases passing through said flow pathway; a component gas concentration sensor within said housing operable to generate electrical signals as a function of the instantaneous fraction of a predetermined component gas in the exhaled gases as the gases pass through said flow pathway; and a computation unit operable within said housing to receive said electrical signals from said flow meter and said concentration sensor and operative to calculate at least one respiratory parameter for the subject as the subject breathes through the calorimeter.
- 2. The calorimeter according to claim 1, wherein said flow pathway includes an elongated flow tube through which the inhaled and exhaled gases flow, and a chamber disposed between said flow tube and said first end, said chamber being a concentric chamber surrounding one end of said flow tube and being defined between said flow tube and said outer housing.
- 3. The calorimeter according to claim 2, wherein said disposable portion is received in the recess in a direction perpendicular to said flow tube.
- 4. The calorimeter according to claim 1, wherein said component gas concentration sensor is an oxygen sensor.
- 5. The calorimeter according to claim 4, wherein said oxygen sensor is a fluorescence quench type oxygen sensor.
- 6. The calorimeter according to claim 1 further comprising a temperature sensing means, a pressure sensing means and a humidity sensing means for use by said computation unit in calculating at least one respiratory parameter.
- 7. The calorimeter according to claim 1, wherein said flow meter includes an upper ultrasonic transducer and a lower ultrasonic transducer in fluid communication with the inhaled and exhaled gases passing through said flow pathway.
- 8. The calorimeter according to claim 7, wherein said ultrasonic transducer includes a plurality of microscopic transducers arranged in an array.
- 9. The calorimeter according to claim 8, wherein said microscopic transducers measure temperature, pressure and humidity for correcting the gas flow rate due to the corresponding effects of temperature, pressure and humidity.
- 10. The calorimeter according to claim 1, further comprising a communication means for communicating with a remote computing device.
- 11. The calorimeter according to claim 10, wherein said communications means is a radio frequency transceiver.
- 12. The calorimeter according to claim 1, wherein said computation unit includes a removable data storage device.
- 13. The calorimeter according to claim 1, wherein said respiratory parameter is resting metabolic rate, which is calculated from the measured volume of oxygen consumed by the subject and the measured amount of carbon dioxide produced by the subject.
- 14. The calorimeter according to claim 13, further comprising a carbon dioxide sensing means for sensing the amount of carbon dioxide in the exhaled gases.
- 15. The calorimeter according to claim 14, wherein the signal from said carbon dioxide sensing means is used by the computation unit to calculate a respiratory quotient.
- 16. The calorimeter according to claim 13 wherein said gas concentration sensor is a combined fluorescent quench sensor for measuring the concentration of carbon dioxide and the concentration of oxygen in the flow of inhaled and exhaled gases.
- 17. The indirect calorimeter according to claim 7, wherein said reusable portion includes an engagement slot for receiving a corresponding engagement rail extending outwardly from said disposable portion, for operatively securing said disposable portion to said reusable portion.
- 18. The indirect calorimeter of claim 1 wherein said reusable portion includes an identifying means for recognizing a predetermined disposable portion and calculating said at least one respiratory parameter if said disposable portion is identified by said identifying means.
- 19. The indirect calorimeter of claim 18 wherein said disposable portion includes an associated identification code that is transmitted to the computation unit of said reusable portion when said disposable portion is disposed within said reusable portion.
- 20. The indirect calorimeter of claim 1 wherein said reusable portion includes an outer housing having a semi-cylindrically shaped side wall, a top cap enclosing an upper end of said side wall, a bottom cap enclosing a lower end of said side wall, and a front cap extending therebetween the edges of said side wall.
- 21. The indirect calorimeter of claim 20 wherein said bottom cap includes an opening in fluid communication with a portion of the flow pathway, providing a sink for the inhaled and exhaled gases.
- 22. The indirect calorimeter of claim 20 wherein said front cap includes a display screen for communicating with the subject.
- 23. The indirect calorimeter of claim 1 wherein said flow pathway includes at least one change in flow direction for the inhaled and exhaled gases flowing through said flow pathway.
- 24. The indirect calorimeter of claim 23 wherein the flow direction of inhaled and exhaled gases flowing through said flow tube is turbulent.
- 25. The indirect calorimeter of claim 2 wherein said concentric chamber directs the flow of inhaled and exhaled gases into the flow tube from a plurality of radial directions to induce turbulence in the flow direction of the inhaled gases within said flow tube.
- 26. An indirect calorimeter for measuring the metabolic rate of a subject, said calorimeter comprising:
a disposable portion having a respiratory connector configured to be supported in contact with the subject so as to pass inhaled and exhaled gases as the subject breathes; a flow pathway within said disposable portion operable to receive and pass inhaled and exhaled gases, said flow pathway having a first end in fluid communication with said respiratory connector and a second end in fluid communication with a source and sink for respiratory gases, said flow pathway comprising a flow tube through which the inhaled and exhaled gases pass and an outer housing surrounding said flow tube, and a chamber disposed between said flow tube and said first end, said chamber being a concentric chamber surrounding one end of said flow tube and being defined between said flow tube and said outer housing, and an outlet passage disposed between said flow tube and said second end; a reusable portion operatively connected to said disposable portion; a flow meter within said reusable portion that is configured to generate electrical signals as a function of the instantaneous flow volume of inhaled and exhaled gases passing through said flow pathway; a component gas concentration sensor within said reusable portion that is operable to generate electrical signals as a function of the instantaneous fraction of a predetermined component gas in the exhaled gases as the gases pass through said flow pathway; said concentration sensor being in fluid communication with said outlet passage; and a computation unit within said reusable portion that is operable to receive said electrical signals from said flow meter and said concentration sensor and operative to calculate at least one respiratory parameter for the subject as the subject breathes through the calorimeter.
- 27. The calorimeter according to claim 26 wherein said flow pathway includes an outlet passage disposed within said reusable portion between said disposable portion and a sink for respiratory gases.
- 28. The calorimeter according to claim 26, wherein said disposable portion is received in the recess in a direction perpendicular to said flow tube.
- 29. An indirect calorimeter for measuring the metabolic rate of a subject, said calorimeter comprising:
a respiratory connector configured to be supported in contact with the subject so as to pass inhaled and exhaled gases within a portion of a flow pathway as the subject breathes; a disposable portion operatively connected to said respiratory connector forming another portion of said flow pathway for receiving and passing inhaled and exhaled gases, said another portion of the flow pathway having a first end in fluid communication with said respiratory connector and a second end in fluid communication with a source and sink for respiratory gases, wherein said flow pathway includes an outer shell with a flow tube disposed within the shell and an annular flange interconnecting said flow tube and said outer shell so as to define a concentric chamber above the flange and between an outer surface of the flow tube and an inner surface of said outer shell; a reusable portion having a housing with a recess defined therein for receiving said disposable portion; a flow meter within said housing configured to generate electrical signals as a function of the instantaneous flow volume of inhaled and exhaled gases passing through said flow pathway; a component gas concentration sensor within said housing operable to generate electrical signals as a function of the instantaneous fraction of a predetermined component gas in the exhaled gases as the gases pass through said flow pathway; and a computation unit operable within said housing to receive said electrical signals from said flow meter and said concentration sensor and operative to calculate at least one respiratory parameter for the subject as the subject breathes through the calorimeter.
- 30. The calorimeter according to claim 29, further comprising an inlet conduit for receiving said respiratory connector extending outwardly from said outer shell, wherein said inlet conduit is in fluid communication with the concentric chamber.
- 31. The indirect calorimeter according to claim 29, wherein said reusable portion includes an engagement slot for receiving a corresponding engagement rail extending outwardly from said disposable portion, for operatively securing said disposable portion to said reusable portion.
- 32. The indirect calorimeter of claim 29 wherein said reusable portion includes an identifying means for recognizing a predetermined disposable portion and calculating said at least one respiratory parameter if said disposable portion is identified by said identifying means.
- 33. The indirect calorimeter of claim 32 wherein said disposable portion includes an associated identification code that is transmitted to the computation unit of said reusable portion when said disposable portion is disposed within said reusable portion.
- 34. The indirect calorimeter of claim 29 wherein said reusable portion includes an outer housing having a semi-cylindrically shaped side wall, a top cap enclosing an upper end of said side wall, a bottom cap enclosing a lower end of said side wall, and a front cap extending therebetween the edges of said side wall.
- 35. The indirect calorimeter of claim 34 wherein said bottom cap includes an opening in fluid communication with a portion of the flow pathway, providing a sink for the inhaled and exhaled gases.
- 36. The indirect calorimeter of claim 34 wherein said front cap includes a display screen for communicating with the subject.
- 37. The indirect calorimeter of claim 29 wherein said flow pathway includes at least one change in flow direction for the inhaled and exhaled gases flowing through said flow pathway.
- 38. The indirect calorimeter of claim 37 wherein the flow direction of inhaled and exhaled gases flowing through said flow tube is turbulent.
- 39. The indirect calorimeter of claim 29 wherein said concentric chamber directs the flow of inhaled and exhaled gases into the flow tube from a plurality of radial directions to induce turbulence in the flow direction of the inhaled gases within said flow tube.
- 40. The calorimeter according to claim 29, wherein said component gas concentration sensor is an oxygen sensor.
- 41. The calorimeter according to claim 40, wherein said oxygen sensor is a fluorescence quench type oxygen sensor.
- 42. The calorimeter according to claim 29 further comprising a temperature sensing means, a pressure sensing means and a humidity sensing means for use by said computation unit in calculating at least one respiratory parameter.
- 43. The calorimeter according to claim 29, wherein said flow meter includes an upper ultrasonic transducer and a lower ultrasonic transducer in fluid communication with the inhaled and exhaled gases passing through said flow pathway.
- 44. The calorimeter according to claim 29, further comprising a communication means for communicating with a remote computing device.
- 45. The calorimeter according to claim 29, wherein said respiratory parameter is resting metabolic rate, which is calculated from the measured volume of oxygen consumed by the subject and the measured amount of carbon dioxide produced by the subject.
- 46. The calorimeter according to claim 45, further comprising a carbon dioxide sensing means for sensing the amount of carbon dioxide in the exhaled gases.
- 47. The calorimeter according to claim 46, wherein the signal from said carbon dioxide sensing means is used by the computation unit to calculate a respiratory quotient.
- 48. The calorimeter according to claim 45 wherein said gas concentration sensor is a combined fluorescent quench sensor for measuring the concentration of carbon dioxide and the concentration of oxygen in the flow of inhaled and exhaled gases.
- 49. An indirect calorimeter for measuring the metabolic rate of a subject, said calorimeter comprising:
a disposable portion having a respiratory connector configured to be supported in contact with the subject so as to pass inhaled and exhaled gases as the subject breathes; wherein said disposable portion includes an outer shell having a ceiling at an upper end, a floor at a lower end, and a rearward wall extending therebetween said ceiling and said floor, and said ceiling includes an opening with a predetermined pathogen resistant material disposed across the opening and said floor includes a first opening with another predetermined pathogen resistant material disposed across the opening, and a second opening, and said rearward wall includes an opening with another pathogen resistant material disposed across the opening; a flow pathway within said disposable portion operable to receive and pass inhaled and exhaled gases, said flow pathway having a first end in fluid communication with said respiratory connector and a second end in fluid communication with a source and sink for respiratory gases, said flow pathway including a flow tube through which the inhaled and exhaled gases pass, and a chamber disposed between said flow tube and said first end, said chamber being a concentric chamber surrounding one end of said flow tube and being defined between said flow tube and said outer housing; a reusable portion operatively attached to said disposable portion having a passageway in fluid communication with the source and sink for respiratory gases, a flow meter, a component gas concentration sensor, and a computation unit; wherein said flow meter generates an electrical signal as a function of the instantaneous flow volume of inhaled and exhaled gases passing through said flow pathway and said component gas concentration sensor generates an electrical signal as a function of the instantaneous fraction of a predetermined component gas in the exhaled gases as the gases pass through said flow pathway and said computation unit receives said electrical signals from said flow meter and said concentration sensor calculates at least one respiratory parameter for the subject as the subject breathes through the calorimeter.
- 50. The calorimeter according to claim 49, wherein said hygiene barrier blocks passage of a predetermined pathogen from the exhaled gases while allowing passage of pulses from the component gas concentration sensor.
- 51. The calorimeter according to claim 49, wherein the opening in the ceiling is in alignment with an upper ultrasonic transducer for measuring the instantaneous flow volume and the first opening in the floor is in alignment with a lower ultrasonic transducer for measuring the instantaneous flow volume, and the opening in the back wall is in alignment with the gas concentration sensor.
- 52. The calorimeter according to claim 51 wherein the second opening in the floor is in alignment with the passageway for the source and sink for respiratory gases.
- 53. The calorimeter according to claim 52 wherein said passageway is coated with an anti-bacterial material.
- 54. The calorimeter according to claim 52 wherein said passageway is coated with an anti-viral material.
- 55. The calorimeter according to claim 52 further comprising a disposable sleeve contained within the passageway.
- 56. An indirect calorimeter for measuring the metabolic rate of a subject, said calorimeter comprising:
a disposable portion having a respiratory connector configured to be supported in contact with the subject so as to pass inhaled and exhaled gases as the subject breathes, wherein said disposable portion includes an outer shell having a ceiling at an upper end, a floor at a lower end having an opening, and a rearward wall extending therebetween said ceiling and said floor having an opening; a flow pathway within said disposable portion operable to receive and pass inhaled and exhaled gases, wherein said flow pathway includes a first end in fluid communication with said respiratory connector and a second end in fluid communication with a source and sink for inhaled and exhaled gases through the opening in the floor; a flow tube within said flow pathway through which the inhaled and exhaled gases pass, and a chamber disposed between said flow tube and said outer shell, said chamber being a concentric chamber surrounding one end of said flow tube and being defined between said flow tube and said outer shell; an upper ultrasonic transducer mounted to a lower side of the ceiling in alignment with an upper end of the flow tube, and a lower ultrasonic transducer mounted to an upper side of the floor in alignment with a lower end of the flow tube, wherein said upper ultrasonic transducer and said lower ultrasonic transducer generate electrical signals as a function of the instantaneous flow volume of inhaled and exhaled gasses passing through said flow pathway; a reusable portion operatively attached to said disposable portion, wherein said reusable portion includes a housing having a passageway in fluid communication with the source and sink of respiratory gases; a component gas concentration sensor disposed within said housing in alignment with the opening in the rear wall of the disposable portion, and operable to generate an electrical signal as a function of the instantaneous fraction of a predetermined component gas in the exhaled gases as the gases pass through said flow pathway; and a computation unit disposed within said housing operable to receive said electrical signals from said ultrasonic transducers and said concentration sensor and operative to calculate at least one respiratory parameter for the subject as the subject breathes through the calorimeter.
- 57. The calorimeter according to claim 56 wherein the opening in the floor of said disposable portion is in alignment with the passageway in the reusable portion in fluid communication with the source and sink for the inhalation and exhalation gases.
- 58. The calorimeter according to claim 56 wherein said component gas concentration sensor is an oxygen sensor.
- 59. The calorimeter according to claim 56 wherein said gas concentration sensor is a fluorescence quench oxygen sensor having a fluorescence portion disposed in the rear wall of the disposable portion, and a sensing portion disposed in the reusable portion, wherein the fluoresce portion includes a light pipe with fluorescent material positioned on the light pipe that is in contact with the inhaled and exhaled gasses passing through said flow pathway, and the light pipe conducts light traveling to and from the fluorescent material to the sensing portion.
- 60. An indirect calorimeter for measuring the metabolic rate of a subject, said calorimeter comprising:
a disposable portion having a respiratory connector configured to be supported in contact with the subject so as to pass inhaled and exhaled gases as the subject breathes; wherein said disposable portion includes an outer shell having a ceiling at an upper end, a floor at a lower end, and a rearward wall extending therebetween said ceiling and said floor, and said ceiling includes an opening with a predetermined pathogen resistant material disposed across the opening and said floor includes a first opening with another predetermined pathogen resistant material disposed across the opening, and a second opening, and said rearward wall includes an opening with another pathogen resistant material disposed across the opening; a flow pathway within said disposable portion operable to receive and pass inhaled and exhaled gases, said flow pathway having a first end in fluid communication with said respiratory connector and a second end in fluid communication with a source and sink for respiratory gases, said flow pathway including a flow tube through which the inhaled and exhaled gases pass, and a chamber disposed between said flow tube and said first end, said chamber being a concentric chamber surrounding one end of said flow tube and being defined between said flow tube and said outer housing; a reusable portion operatively attached to said disposable portion, and having a passageway in fluid communication with the source and sink for respiratory gases and in alignment with the second opening in the floor; a flow meter within said disposable portion, wherein said flow meter includes an upper ultrasonic transducer for measuring the instantaneous flow volume in alignment with the opening in the ceiling, and a lower ultrasonic transducer for measuring the instantaneous flow volume in alignment with the first opening in the floor; a component gas concentration sensor within the disposable portion that is in alignment with the opening in the back wall; a computation unit within said disposable portion, wherein said flow meter generates an electrical signal as a function of the instantaneous flow volume of inhaled and exhaled gases passing through said flow pathway and said component gas concentration sensor generates an electrical signal as a function of the instantaneous fraction of a predetermined component gas in the exhaled gases as the gases pass through said flow pathway and said computation unit receives said electrical signals from said flow meter and said concentration sensor calculates at least one respiratory parameter for the subject as the subject breathes through the calorimeter.
- 61. The calorimeter according to claim 60, wherein said hygiene barrier blocks passage of a predetermined pathogen from the exhaled gases while allowing passage of pulses from the component gas concentration sensor.
- 62. The calorimeter according to claim 60 wherein said passageway is coated with an anti-bacterial material.
- 63. The calorimeter according to claim 60 wherein said passageway is coated with an anti-viral material.
- 64. The calorimeter according to claim 60 further comprising a disposable sleeve contained within the passageway.
REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of U.S. patent application Ser. No. 09/630,398 filed Aug. 2, 2000, which claims priority from U.S. provisional patent application Serial No. 60/146,898, filed Aug. 2, 1999; No. 60/155,035, filed Sep. 20, 1999; No. 60/219,241, filed Jul. 18, 2000; and No. 60/218,863, filed Jul. 18, 2000, the entire contents of all are incorporated herein by reference.
Provisional Applications (4)
|
Number |
Date |
Country |
|
60146898 |
Aug 1999 |
US |
|
60155035 |
Sep 1999 |
US |
|
60219241 |
Jul 2000 |
US |
|
60218863 |
Jul 2000 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
09630398 |
Aug 2000 |
US |
Child |
10161505 |
May 2002 |
US |