Claims
- 1. A multi-dose dry powder package for holding pharmaceutical grade formulations of inhalable dry powder substances, comprising:
a platform body comprising a plurality of sealed blisters thereon and at least one thin piezoelectric polymer material layer forming at least a portion of each of the sealed blisters, wherein the sealed blisters comprise a respective at least one of a plurality of spatially separated discrete elongate dry powder channels having an associated length, width and height; and a conductive material attached to selected portions of the piezoelectric polymer material including each of the regions corresponding to the blisters to define active energy releasing vibratory channels, and wherein, in operation, the blisters are adapted to be selectively activated to vibrate upon receipt of an electrical input.
- 2. A package according to claim 1, in combination with an input signal generating circuit that is adapted to operatively engage each of the blisters, the input signal generating circuit configured to selectively provide the electrical input to selectively flex a portion of the blisters responsive to the electrical input.
- 3. A package according to claim 2, wherein, in operation, the electrical input is configured to flex at least one of the blisters by applying a non-linear vibration input signal thereto, and wherein the non-linear input signal selected to represent a priori flow characteristic frequencies of the dry powder formulation held in the package.
- 4. A package according to claim 3, wherein the non-linear vibration input signal comprises a plurality of different selected frequencies that correspond to the flow characteristic frequencies of the dry powder formulation held in the package.
- 5. A package according to claim 4, wherein the non-linear vibration input signal is formed by the superimposition of the plurality of different selected frequencies.
- 6. A package according to claim 2, wherein the input generating circuit electrical input is configured to flex the channels by applying an amplitude modulated frequency selected to represent a priori flow characteristic frequencies of the dry powder formulation held in the package
- 7. A package according to claim 1, further comprising a quantity of dry powder substance disposed in the elongate channels, and wherein the length of the elongate channels is selected to correspond to predetermined flow characteristics of the dry powder substance so as to promote the energy exchange between the elongate channel and the dry powder during active inhalation delivery.
- 8. A package according to claim 1, wherein the platform body is configured as a substantially flat disk, with the elongate channels circumferentially spaced apart about a selected primary surface of the disk.
- 9. A package according to claim 8, wherein the elongate channels have a curvilinear profile when viewed from the top.
- 10. A package according to claim 9, wherein the elongate channels are substantially pear-shaped.
- 11. A package according to claim 8, wherein the elongate channels comprise a floor that comprises the piezoelectric polymer material, and wherein, in operation, the floor flexes in response to the electrical input.
- 12. A package according to claim 1, wherein each blister has a quantity of inhalable dry powder therein, wherein each sealed blister comprises a floor defined by a respective one of the elongate channels and a ceiling overlying the elongate channel, the ceiling and floor configured to encase the dry powder in the elongate channel, and wherein the ceiling has an outwardly extending protrusion positioned on a forward portion of the elongate channel that terminates into a substantially planar portion over the rearward portion of the elongate channel.
- 13. A package according to claim 1, wherein the platform body is configured as a thin sheet of scrolled flexible material rolled about two spaced-apart tension rods.
- 14. A package according to claim 1, in combination with a second multidose dry powder package comprising:
a platform body comprising a thin piezoelectric polymer material layer forming at least a portion of a plurality of spatially separated blisters formed by discrete elongate dry powder channels having an associated length, width and height; and a conductive material attached to selected portions of the piezoelectric polymer material including each of the regions corresponding to the elongate dry powder channels to define active energy releasing vibratory channels, and wherein, in operation, the elongate channels are adapted to selectively individually activated to vibrate upon receipt of an electrical input, wherein the first and second dry powder packages are held in proximately-spaced stacked relationship during use.
- 15. A stacked package according to claim 14, further comprising a first dry powder substance disposed in the elongate channels of the first package and a second different dry powder substance disposed in the elongate channels of the second package, and wherein, during use, both of the first and second substances are substantially concurrently dispensed to the patient.
- 16. A stacked package according to claim 14, wherein the first and second packages are held so that centers thereof are aligned.
- 17. A stacked package according to claim 14, wherein the first and second packages are held so that centers are offset.
- 18. A stacked package according to claim 14, further comprising a third package, the third package comprising:
a platform body comprising a thin piezoelectric polymer material layer forming at least a portion of a plurality of blisters, each blister comprising a respective one of spatially separated discrete elongate dry powder channels having an associated length, width and height; and a conductive material attached to selected portions of the piezoelectric polymer material including each of the regions corresponding to the elongate dry powder channels to define active energy releasing vibratory channels, and wherein, in operation, the elongate channels can be selectively individually activated to vibrate upon receipt of an electrical input, wherein the first, second, and third dry powder packages each have centers, and wherein the first, second, and third packages are held in closely adjacent stacked relationship and with each center offset from the others.
- 19. A package according to claim 1, wherein the package platform further comprises a plurality of airflow and/or differential pressure sensors, a respective one located proximate each elongate channel, wherein the sensors are selectably activatable and configured such that, during use, the sensors provide data used to determine user airflow rate in situ during the activation of a respective channel.
- 20. A package according to claim 1, wherein the elongate channels have an associated floor and opposing sidewalls, and wherein the sidewalls and floor of the elongate channels comprise the piezoelectric polymer.
- 21. A package according to claim 1, wherein the blister elongate channels have an associated ceiling comprising the piezoelectric polymer.
- 22. A package according to claim 1, wherein the elongate channels have an associated floor, ceiling, and opposing sidewalls, and wherein the sidewalls, floor, and ceiling of the elongate channels comprise the piezoelectric polymer.
- 23. A package according to claim 1, wherein the elongate channels have a floor that slopes downwardly in the direction of outward flow.
- 24. A package according to claim 23, wherein the elongate channels have a depth that increases in the forward flow direction.
- 25. A package according to claim 1, wherein the elongate channels have a depth that decreases in the forward flow direction.
- 26. A package according to claim 1, wherein the elongate channels comprise a powder basin with a depth that is greater than rearward and forward portions of the channel.
- 27. A package according to claim 1, wherein the blisters comprise a cover portion that overlies and seals each elongate channel with a quantity of dry powder held therein, wherein the cover includes a plurality of arch portions that extend outwardly away from the elongate channels, a respective one of the arch portions being positioned over a forward portion of a corresponding one of the elongate channels.
- 28. A package according to claim 1, wherein the elongate channels have a first rearward curvilinear portion that terminates into a second forward curvilinear portion, and wherein the second curvilinear portion has a smaller perimeter and is disposed downstream of the first curvilinear portion in the direction of flow.
- 29. A package according to claim 3, wherein the non-linear input signal is a low energy input signal having a plurality of superpositioned modulating frequencies, and wherein the non-linear input signal comprises frequencies in the range of between about 10 Hz to 1000 kHz.
- 30. A package according to claim 3, wherein the non-linear input signal comprises carrier frequencies in the range of between about 15 kHz to 50 kHz.
- 31. A package according to claim 1, wherein the elongate channels have an associated ceiling that is scored at an end portion thereof to preferentially predispose the end portion to split upon exposure to a blunt pressure or force.
- 32. A dry powder inhaler, comprising:
an elongate body having opposing first and second outer primary surfaces with a cavity therebetween and having opposing top and bottom end portions; a multi-dose sealed blister package holding a plurality of discrete meted doses of a dry powder inhalable product located in the cavity of the elongate body; an inhalation port formed in the bottom end portion of the elongate body, the inhalation port configured to be in fluid communication with at least one of the discrete meted doses during use; and a cover member that is pivotally attached to the elongate body and moves between a first closed position to overlie the inhalation port at the bottom end portion of the body during periods of non-use and a second open position away from the inhalation port during periods of use to allow a user to access the inhalation port.
- 33. A dry powder inhaler according to claim 32, wherein the cover member has a length and a width and the elongated body has a length and a width, and wherein the cover member length is greater than a major portion of the length of the elongated body and the cover member width is less than the width of the elongate body.
- 34. A dry powder inhaler according to claim 32, wherein the cover member has two opposing first and second end portions, the first end portion being pivotally attached to an upper portion of the elongated body, the cover having a major portion with a substantially planar profile and a downwardly extending arcuately shaped second end portion.
- 35. A dry powder inhaler according to claim 34, wherein the arcuately shaped end portion extends a distance to snugly abut and wrap around and conform to the bottom portion of the elongate body.
- 36. A dry powder inhaler according to claim 34, wherein the cover member is an elastomeric flexible cover.
- 37. A dry powder inhaler according to claim 32, wherein the first primary surface of the elongate body comprises a window that overlies a portion of the multidose package.
- 38. A dry powder inhaler according to claim 37, wherein the multidose package comprises externally visible indices of the dose number that are visible through the window during use.
- 39. A dry powder inhaler according to claim 37, wherein the multidose package includes at least one of a visible or audible alert warning that alerts the user when the multi-dose package approaches the last few remaining doses.
- 40. A dry powder inhaler according to claim 37, wherein the cover member is pivotally attached to pivot about an axis that extends through and normal to the window.
- 41. A dry powder inhaler according to claim 40, wherein said elongate body is formed from two matably detachable first and second shells, the first shell defining the first primary surface and the second shell defining the second primary surface.
- 42. A dry powder inhaler according to claim 32, wherein the elongate body further comprises a depressible user activation button accessible via the first surface and a dose advancing knob on the opposing side of the elongate body in communication with the multi-dose package.
- 43. A dry powder inhaler according to claim 42, wherein the cover member has a major portion that is substantially planar with an outwardly projecting portion formed therein, the outwardly projecting portion configured to overlie the activation button on the first surface of the elongate body when the cover member is closed over the inhalation port to inhibit inadvertent activation.
- 44. A dry powder inhaler according to claim 32, wherein with the cover member in the closed position, the elongate body has a thin profile with substantially flat first and second primary surfaces defining a pocket-sized inhaler that fits into the pocket of a garment worn by a user.
- 45. A dry powder inhaler according to claim 32, wherein the inhalation port is formed in a mouthpiece that is releaseably attached to the elongate body bottom portion thereby allowing periodic cleaning or replacement.
- 46. A dry powder inhaler according to claim 32, further comprising:
control circuitry held in the elongated body; and a battery operatively associated with the control circuitry, wherein the multi-dose blister package comprises:
a platform body comprising at least one piezoelectric polymer material layer forming at least a portion of each of a plurality of spatially separated discrete blisters having elongate dry powder channels having an associated length, width and height; and a conductive pattern configured on the platform body so as to be in communication with the control circuitry, the conductive pattern being attached to selected portions of the piezoelectric polymer material including each of the regions corresponding to the blisters to define active energy releasing vibratory channels, wherein, in operation, the control circuitry generates an electrical input that is transmitted via the conductive pattern to flex the piezoelectric polymer material associated with at least one selected blister and vibrate the dry powder in the associated at least one elongate channel.
- 47. A dry powder inhaler according to claim 46, further comprising a quantity of dry powder substance disposed in the elongate channels, and wherein the length of the elongate channels is selected to correspond to predetermined flow characteristics of the dry powder substance so as to promote the energy exchange between the elongate channel and the dry powder during active inhalation delivery.
- 48. A dry powder inhaler according to claim 46, wherein the control circuitry is configured to generate an amplitude-modified frequency signal corresponding to a priori flow characteristics of the dry powder being dispensed to selectively vibrate powder in the selected blister elongate flow channel.
- 49. A dry powder inhaler according to claim 46, wherein the control circuitry is configured to generate a non-linear signal to selectively vibrate the powder in a selected blister elongate flow channel.
- 50. A dry powder inhaler according to claim 49, wherein the non-linear signal comprises a plurality of predetermined superimposed frequencies selected according to a priori flow characteristics of the dry powder being dispensed.
- 51. A dry powder inhaler according to claim 46, wherein the dry powder inhaler is configured to serially accept and dispense inhalable dry powder from a plurality of different blister packages, each blister package having elongated channels of different lengths.
- 52. A dry powder inhaler according to claim 46, wherein the control circuitry is configured to detect a predetermined electrical parameter associated with the position of one of the elongate channels with respect to the inhalation port to affirm proper alignment before allowing active dispersement of the dry powder dose.
- 53. A dry powder inhaler according to claim 52, wherein the electric parameter is the capacitance of the piezoelectric polymer material.
- 54. A dry powder inhaler according to claim 46, wherein, in operation, the control circuitry is configured to apply the electrical input so that an excitation voltage differential is transmitted to a selected one of the elongated channels to cause said piezoelectric material layer to flex thereat to promote resonance of the dry powder and actively disperse a dry powder pharmaceutical drug from the elongated channel through the inhalation port.
- 55. A dry powder inhaler according to claim 46, wherein said piezoelectric material is a thin film PVDF laminated to at least one different material layer, the different material layer configured to allow the blisters to be formed into and substantially retain a desired shape.
- 56. A dry powder inhaler according to claim 32, wherein the dry powder is a low density dry powder, and wherein the inhalable dry powder held in the multidose blister package comprises active ingredient particulate sizes of between about 0.5-8.0 μm.
- 57. A dry powder inhaler according to claim 32, wherein the dry powder is formulated in an amount of between about 5-15 mg with an active ingredient concentration of at least between about 5-10%.
- 58. A dry powder inhaler according to claim 46, wherein a respective one of the elongate channels forms a floor for a corresponding one of the blisters, wherein the blisters each including a ceiling overlying the respective elongate channel, wherein the ceiling includes a semi-spherical portion that extends away from the elongate channel and is disposed on a forward portion of the elongate channel.
- 59. A dry powder inhaler according to claim 46, wherein a respective one of the elongate channels forms a ceiling or floor for one of the blisters, the inhaler further comprising a dose releasing member disposed in the inhaler and configured to advance toward, contact, and retract away from one of the floor or ceiling of the multi-dose package to thereby form an opening in the blister.
- 60. A dry powder inhaler according to claim 58, wherein the dose releasing member has a forward edge portion that has a shape that corresponds to the shape of the semi-spherical portion of the ceiling.
- 61. A dry powder inhaler according to claim 46, wherein a respective one of the elongate channels forms a floor for one of the blisters, wherein the elongate channels have an internal cavity profile, the inhaler further comprising a dose releasing member disposed in the inhaler to advance toward and retract away from the ceiling side of the multi-dose package, and wherein the dose releasing member has a forward edge portion that has a shape that corresponds to the shape of the cavity profile.
- 62. A method for fabricating a multi-dose disposable dry powder blister package, comprising:
providing a piezoelectric polymer material; concurrently forming a plurality of elongated projections or depressions having a width and an associated length into the piezoelectric polymer material; and applying a metallic material pattern to selected regions of at least one primary surface of the piezoelectric polymer material so as to extend over at least a portion of each of the plurality of projections or depressions.
- 63. A method according to claim 62, wherein said forming step is carried out by stamping.
- 64. A method according to claim 62, wherein said forming step is carried out by pressing the piezoelectric polymer material over a shaping tool having a plurality of raised projections thereon.
- 65. A method according to claim 62, wherein said applying step is carried out before the forming step.
- 66. A method according to claim 62, wherein said applying step is carried out after the forming step.
- 67. A method according to claim 63, wherein said forming step forms projections, and wherein said applying step comprises:
applying a metallic coating onto a molding tool having a plurality of raised projections; and contacting the piezoelectric material with the molding tool to thereby transfer the metallic coating onto the elongated projections of the piezoelectric polymer material.
- 68. A method of administering an inhalable dry powder product to a subject, comprising:
oscillating piezoelectric polymer material associated with at least a portion of at least one sealed encased elongated channel having opposing first and second end portions and a quantity of dry powder product therein with a predetermined electrical signal; disrupting the seal associated with the elongated channel at the second end portion; directing the dry powder product to flow through the elongated channel to exit at the second end portion so that a major portion of the dry powder substance repeatedly contacts the oscillating piezoelectric material at a plurality of locations along the elongated channel, wherein, the oscillating and directing steps impart energy to the dry powder product to cause the dry powder product to vibrate; and releasing the inhalable dry powder to a subject upon inhalation.
- 69. A method according to claim 68, wherein the oscillating step is carried out by applying an amplitude-modified frequency voltage signal to the piezoelectric polymer material.
- 70. A method according to claim 69, wherein the amplitude-modified input signal is selected based on an a priori flow evaluation of the dry powder formulation held in the package.
- 71. A method according to claim 68, wherein the oscillating step is carried out by applying a non-linear voltage signal to the piezoelectric polymer material.
- 72. A method according to claim 71, wherein the non-linear vibration input signal comprises a plurality of different superimposed frequencies that correspond to a priori flow characteristic frequencies of the dry powder formulation held in the package.
- 73. A method according to claim 68, further comprising automatically vibrating the elongated channel prior to said disrupting step to thereby prime the channel for active dispersal.
- 74. A method according to claim 68, wherein the sealed elongated channel comprises a cavity with a floor and an overlying covering, wherein said disrupting step comprises releasing a forward edge portion of the floor and forcing the released edge portion to reside above the cavity proximate the ceiling and to substantially take on the shape of the ceiling.
- 75. A method according to claim 68, wherein the sealed elongated channel comprises a cavity with a floor and an overlying covering, wherein said disrupting step comprises releasing a forward edge portion of the ceiling and forcing the released edge portion to reside in the cavity proximate the floor and to substantially take on the shape of the cavity floor.
- 76. A method according to claim 68, wherein said elongate channel comprises a floor and ceiling covering, and wherein said disrupting step comprises advancing a dose release member substantially perpendicular to the direction of inhalation flow and introducing an aperture into the floor.
- 77. A method according to claim 74, wherein said releasing and forcing steps are carried out by advancing a dose release member with an arched upper edge portion substantially perpendicular to the direction of inhalation flow and introducing an aperture into the ceiling.
- 78. A method according to claim 74, wherein said releasing and forcing steps are carried out by advancing a dose release member with an arched upper edge portion substantially perpendicular to the direction of inhalation flow and introducing an aperture into the floor.
- 79. A method according to claim 68, wherein the sealed encased elongated channel is disposed on a thin strip of scrolled material that holds a plurality of sealed elongated dry powder containing channels, and said method further comprises rolling the scrolled material to position a selected scaled encased elongated channel in a dispensing orientation.
- 80. A method according to claim 68, wherein the sealed encased elongated channel is disposed on a thin disk that includes a plurality of sealed elongated dry powder containing channels.
- 81. A method according to claim 68, further comprising concurrently oscillating a second piezoelectric polymer material forming at least a portion of a second sealed encased elongated channel, the second elongated channel having opposing first and second end portions and a quantity of dry powder product therein;
disrupting the seal associated with the second elongated channel at the second end portion; directing the dry powder product to flow through the second elongated channel to exit at the second end portion so that a major portion of the dry powder substance repeatedly contacts the oscillating piezoelectric material at a plurality of locations along the elongated channel; and releasing the second inhalable dry powder aerosol to a subject upon inhalation concurrently with the first inhalable dry powder aerosol.
- 82. A method according to claim 81, wherein the second oscillating and directing steps impart energy to the dry powder in the second elongated channel to cause the dry powder to vibrate at a desired amplitude modified frequency to generate a second inhalable dry powder aerosol.
- 83. A method according to claim 81, wherein the second oscillating and directing steps impart energy to the dry powder in the second elongated channel to cause the dry powder to vibrate with a non-linear motion to generate a second inhalable dry powder aerosol.
- 84. A method according to claim 68, wherein the at least one sealed encased elongated channel is two, each disposed on a blister package that is stacked in spaced apart alignment and includes plurality of sealed elongated dry powder containing channels.
- 85. A method according to claim 84, further comprising compressing the two blister packages toward each other and substantially concurrently releasing the contents of two different elongated channels holding two meted different dry powder products to thereby combine two meted amounts of dry powder into a single combined inhalable aerosol.
- 86. A method according to claim 69, wherein the oscillating step electrical signal comprises a frequency that is between about 10-200 Hz.
- 87. A method according to claim 71, wherein the non-linear input signal is a low energy input signal having a plurality of superpositioned modulating frequencies.
- 88. A method according to claim 87, wherein the non-linear input signal comprises frequencies in the range of between about 10 Hz to 1000 kHz.
- 89. A method of administering an inhalable dry powder product to a subject, comprising:
providing an inhaler with a multiple dose blister package comprising piezoelectric polymer material that is associated with a plurality of discrete sealed blisters holding respective dry powder doses; priming a selected portion of the package to vibrate the dry powder in at least one selected sealed blister proximate in time to an intended inhalation delivery thereof; then introducing an opening in the at least one selected blister; vibrating the at least one selected blister by a applying an input signal to the piezoelectric polymer material proximate the selected blister; and releasing the inhalable dry powder to a subject upon inhalation.
- 90. A method according to claim 89, wherein the introducing and vibrating steps are carried out within about 50 ms of each other.
- 91. A method according to claim 90, wherein the introducing step is carried out before the vibrating step.
- 92. A method according to claim 90, wherein the introducing step is carried out after the vibrating step is initiated.
- 93. A method according to claim 89, wherein the introducing step is carried out during the vibrating step.
- 94. A method according to claim 89, further comprising:
aligning a selected blister with an inhalation port in the inhaler; and monitoring an alignment parameter associated with the position of the blister to confirm proper positional alignment of the blister prior to initiating the opening step.
RELATED APPLICATIONS
[0001] This application claims the benefit of priority to U.S. Provisional Application Serial No. 60/379,521, filed May 10, 2002, U.S. Provisional Application Serial No. 60/392,671, filed Jun. 27, 2002, and U.S. Patent Application Serial No. 60/440,513, filed Jan. 16, 2003, the contents of which are hereby incorporated by reference as if recited in full herein.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60379521 |
May 2002 |
US |
|
60392671 |
Jun 2002 |
US |
|
60440513 |
Jan 2003 |
US |