Claims
- 1. A method for creating an airflow independent positive expiratory pressure (PEP) in a patient's respiratory system using a pressure relief valve comprising:a) selecting a pressure threshold of the pressure relief valve between about 1 cmH2O and 50 cmH2O such that the patient can overcome said pressure threshold upon forced exhalation through said pressure relief valve; and b) positioning said pressure relief valve in the patient's mouth during exhalation of at least one breathing cycle, such that said pressure threshold resists the patient's exhalation until sufficient force is produced to overcome said pressure threshold.
- 2. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein said pressure threshold is between about 1 cmH2O and 40 cmH2O.
- 3. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein said pressure threshold is between about 1 cmH2O and 30 cmH2O.
- 4. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein said pressure threshold is between about 1 cmH2O and 20 cmH2O.
- 5. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein said pressure threshold is between about 1 cmH2O and 10 cmH2O.
- 6. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein said pressure threshold is between about 10 cmH2O and 50 cmH2O.
- 7. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein said pressure threshold is between about 20 cmH2O and 50 cmH2O.
- 8. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein said pressure threshold is between about 30 cmH2O and 50 cmH2O.
- 9. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein said pressure threshold is between about 40 cmH2O and 50 cmH2O.
- 10. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein said pressure threshold is between about 5 cmH2O and 15 cmH2O.
- 11. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein said pressure threshold is between about 1 cmH2O and 5 cmH2O.
- 12. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein said pressure threshold is about 10 cmH2O.
- 13. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1 wherein the pressure relief valve is positioned throughout a plurality of breathing cycles.
- 14. The method for creating an airflow in dependent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the duration of the plurality of breathing cycles is about 0.05 minutes to 30 minutes.
- 15. The method for creating an airflow in dependent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the duration of the plurality of breathing cycles is about 5 minutes to 30 minutes.
- 16. The method for creating an airflow in dependent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the duration of the plurality of breathing cycles is about 10 minutes to 30 minutes.
- 17. The method for creating an airflow in dependent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the duration of the plurality of breathing cycles is about 20 minutes to 30 minutes.
- 18. The method for creating an airflow in dependent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the duration of the plurality of breathing cycles is about 0.05 minutes to 20 minutes.
- 19. The method for creating an airflow in dependent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the duration of the plurality of breathing cycles is about 0.05 minutes to 10 minutes.
- 20. The method for creating an airflow in dependent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein the duration of the plurality of breathing cycles is about 0.05 minutes to 5 minutes.
- 21. The method for creating an airflow in dependent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the duration of the plurality of breathing cycles is about for about 0.05 minutes to 1.5 minutes.
- 22. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the breathing cycles comprises about 2 to 30 exhalations.
- 23. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the breathing cycles comprises about 10 to 20 exhalations.
- 24. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the breathing cycles comprises about 2 to 20 exhalations.
- 25. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the breathing cycles comprises about 2 to 10 exhalations.
- 26. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the breathing cycles comprises about 10 to 30 exhalations.
- 27. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 13, wherein the breathing cycles comprises about 20 to 30 exhalations.
- 28. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein said pressure relief valve is a positive end-expiratory pressure valve.
- 29. The method for creating an airflow independent positive expiratory pressure in a patient's respiratory system according to claim 1, wherein the patient inhales through said pressure relief valve and exhales through said pressure relief valve.
- 30. A respiratory exercise method for creating an airflow independent positive expiratory pressure (PEP) in a patient's respiratory system using a pressure relief valve comprising:a) selecting a pressure threshold of the pressure relief valve between about 1 cmH2O and 50 cmH2O such that the patient can overcome said pressure threshold upon forced exhalation through said pressure relief valve; and b) positioning said pressure relief valve in the patient's mouth during exhalation while exercising for about 0.05 minutes to 30 minutes, such that said pressure threshold resists the patient's exhalation until sufficient force is produced to overcome said pressure threshold.
- 31. A method for increasing the intra-airway pressure in a patient's respiratory system comprising:a) selecting a means for creating a positive expiratory pressure in the patient's respiratory system; and b) positioning said means for creating a positive expiratory pressure in the patient's mouth during exhalation while exercising for about 0.05 minutes to 30 minutes, such that said pressure threshold resists the patient's exhalation until sufficient force is produced to overcome said pressure threshold.
CROSS-REFERENCE TO A RELATED APPLICATION
This application claims the benefit of U.S. Provisional Application No. 60/219,307, filed Jul. 19, 2000, incorporated herein by reference.
US Referenced Citations (39)
Provisional Applications (1)
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Number |
Date |
Country |
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60/219307 |
Jul 2000 |
US |