Dry powder inhaler
11931506 ยท 2024-03-19
Assignee
Inventors
Cpc classification
A61M2206/16
HUMAN NECESSITIES
A61M11/003
HUMAN NECESSITIES
A61M15/003
HUMAN NECESSITIES
A61M2206/12
HUMAN NECESSITIES
A61M15/0051
HUMAN NECESSITIES
A61M2206/20
HUMAN NECESSITIES
International classification
Abstract
A novel dry powder inhaler. By providing a plurality of capsule chambers (1a, 1b, 1c, 1d) arranged in parallel in a capsule dry powder inhalation device, a medicine dispenser containing active components of a composite product or their mixture separately is provided. The dry powder inhaler has a simple structure and is convenient to operate. In addition, the parameters of air inlet channels and an air outlet channel can be adjusted by means of each capsule chamber (1a, 1b, 1c, 1d) according to the properties of powder of a medicine or a combination, so as to provide an appropriate particle distribution for each active component.
Claims
1. Dry powder inhaler, comprising: capsule chambers (1), which are cylindrical chambers for holding capsules upright, tops of the capsule chambers (1) are open, and bottoms of the capsule chambers (1) are provided with intake ducts ventilating with outside air; actuators (2), comprising puncture needles (21), mounted for a user to operate to move toward a side wall of each of the capsule chambers (1) to puncture the capsules; nozzle (3), comprising an outlet duct (11) under the nozzle (3); wherein, a number of the capsule chambers (1) is two, and all the capsule chambers (1) are arranged in parallel to form an integral multi-capsule chamber, the actuators (2) are mounted individually or in common among the capsule chambers (1), and the actuators (2) are mounted with needles (21) in a width direction of the actuators (2), a screen cover (15) is mounted at a bottom of the outlet duct (11) under the nozzle (3), and a screen (12) is fixed in the screen cover (15) and separately connected to the top of the multi-capsule chamber, making the screen (12) cover the tops of all of the capsule chambers (1), wherein each capsule chamber (1) is provided at the side wall of the capsule chamber (1) with at least one deflected intake duct group, the deflected intake duct group comprises at least two deflected intake ducts (13) which are arranged around a central axis of the capsule chamber (1), and simultaneously deflect clockwise or counterclockwise, wherein a lower part of the outlet duct (11) is divided by a central baffle (111) to form two sub-ducts, which are respectively connected to the top of each capsule chamber (1), each cross-section of each respective sub-duct gradually narrowing from the tops of the capsule chambers towards an upper part of the outlet duct, wherein each cross-section stops narrowing and then remains a same size until the sub-ducts converge together into one duct at the upper part of the outlet duct, wherein the central baffle extends from the tops of the capsule chambers towards the nozzle at least to a point where the sub-ducts stop narrowing, wherein each sub-duct comprises one or more sub-baffles, the sub-baffles divide the sub-duct into narrower ducts, wherein the narrower ducts converge into a respective sub-duct above the sub-baffles.
2. The dry powder inhaler of claim 1, wherein the at least two deflected intake ducts (13) of the deflected intake duct group of each capsule chamber (1) have a same shape and size, and are evenly arranged around the central axis of the capsule chamber (1).
3. The dry powder inhaler of claim 2, wherein the at least two deflected intake ducts (13) of each capsule chamber (1) are tangent to the side wall of their respective capsule chambers (1).
4. The dry powder inhaler of claim 1, wherein an opening of each of the at least two deflected intake ducts (13) on the side wall of each capsule chamber (1) has a long-strip shape, which is arranged longitudinally along the side wall.
5. The dry powder inhaler of claim 1, wherein a size of the intake duct and/or top opening of at least one of the capsule chambers (1) is different from others of the capsule chambers (1).
6. The dry powder inhaler of claim 1, wherein the cross-section of the outlet duct (11) gradually increases in a direction from a top of the central baffle (111) toward the nozzle (3).
7. The dry powder inhaler of claim 6, wherein the cross-section of the outlet duct (11) gradually increases, and then remains the same size.
8. The dry powder inhaler of claim 1, wherein a height of the sub-baffles (112) is lower than a height of the central baffle (111).
9. The dry powder inhaler of claim 1, wherein the cross-section of each sub-baffle (112) is arranged radially with the center baffle (111) as a center.
10. The dry powder inhaler of claim 9, wherein a shape of the cross-section of each sub-baffle (112) is X-shaped, which takes the central baffle (111) as a plane mirror symmetry.
11. The dry powder inhaler of claim 10, wherein an air resistance of the dry powder inhaler is 0.0325 KPa.sup.0.5 minutes/liter.
12. The dry powder inhaler of claim 10, wherein a length of the outlet duct (11) is 25-36 mm.
13. The dry powder inhaler of claim 1, wherein the multi-capsule chamber is composed of a first capsule chamber (1a) and a second capsule chamber (1b) which are closely arranged, and the actuators (2) comprise a first actuator (2a) and a second actuator (2b), which are arranged at both ends of a connecting line where the first capsule chamber (1a) and the second capsule chamber (1b) are located, the first actuator (2a) is movable from both sides of the first capsule chamber (1a) to a middle of the first capsule chamber (1a), and the second actuator (2b) is movable from both sides of the second capsule chamber (1b) to a middle of the second capsule chamber (1b), so as to puncture the capsules in the first capsule chamber (1a) and the second capsule chamber (1b), respectively.
14. The dry powder inhaler of claim 1, further comprising a lower casing, which defines a cavity, the top of which is open and is used for accommodating the multi-capsule chamber inside, the side of the lower casing is provided with gaps that match a number and positions of the actuators, so that part of each actuator is located outside the dry powder inhaler, and the cavity ventilates with outside air.
15. The dry powder inhaler of claim 14, further comprising an adapter plate, which covers the top of the lower casing, and a hollow port is provided at the top of the multi-capsule chamber, the screen cover is detachably mounted to the hollow port so that the screen covers the top of each capsule chamber through the hollow port.
16. The dry powder inhaler of claim 15, further comprising an upper casing, which extends downward from a top of the nozzle, defines a cavity surrounding the outlet duct and the bottom of the cavity being open, and covers the adapter plate when the screen cover is mounted at the hollow port.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(23) The present invention will be further described below in conjunction with specific embodiments. However, it should not be understood that the scope of the above subject of this application is only limited to the following embodiments, and any technology implemented based on the content of this application belongs to the scope of this application.
(24) By referring to
(25) In this embodiment, the user opens the screen 12 mounted above the capsule chamber 1 first and puts the capsule herein, then presses the actuator 2 to puncture the capsule, and the actuator 2 is then reset by manual operations or elastic means. Since the nozzle 3 ventilates with the capsule chamber 1 through an outlet duct 11, and the capsule chamber 1 ventilates with the external environment through the deflected intake duct group, when the user inhales, the outside air passes through the deflected intake duct group to generate a spiral airflow surrounding the capsule chamber 1, to promote a rapid rotation of the punctured capsule to release the inhalable medicinal powder contained therein. The inhalable medicinal powder moves with the airflow to the outlet duct 11 at the top of the capsule chamber 1 and enters the user's body through the nozzle 3.
(26) It should be noted that the deflected intake duct 13 of this embodiment is deflected clockwise or counterclockwise, but it does not mean that the deflected intake duct group must be opened in the horizontal direction, as long as it can provide a part of the air flow deflected in the horizontal direction. Of course, the at least two deflected intake ducts 13 should be deflected simultaneously. For example, when the deflected intake passages 13 are located on the side wall, they should all face diagonally upward, all face diagonally downward, or all face horizontally.
(27) Compared with the prior art, the powder release device of this embodiment provides the deflected intake duct group in the capsule chamber 1, so that the requirement of the user's inhalation flow when the capsule rotates and releases medicine is greatly reduced, the powder is easier to release and the amount of residue reduces.
(28) The deflected intake ducts 13 of the deflected intake duct group have the same shape and size, and are evenly arranged around the central axis of the capsule chamber 1 to provide more uniform spiral airflow. Since the release of the inhalable powder in the capsule is achieved by the rotation and vibration of the capsule in the capsule chamber 1, but not based on only the rotation, the shapes and sizes of the deflected intake ducts 13 of the deflected intake duct group do not have to be exactly the same.
(29) Compared with the prior art, the powder release device of this embodiment provides the deflected intake duct group in the capsule chamber 1, so that the requirement of the user's inhalation flow rate when the capsule rotates and vibrates to release medicine is greatly reduced, the powder is easier to release and the amount of residue is reduced.
(30) Further preferably, by referring to
(31) Further preferably, by referring to
(32) In this embodiment, the intake duct 14 at the bottom of the capsule chamber 1 can provide a through airflow throughout the entire capsule chamber 1 from bottom to top when the user inhales, in order to help the top of the capsule to rotate against the ventilating screen 12 at the top of the capsule chamber 1, so that the powder released from the capsules moves toward the top of the outlet duct 11 more smoothly.
(33) In this embodiment, the opening of the deflected intake duct 13 at the side wall of the capsule chamber 1 has a long-strip shape, which is arranged longitudinally along the side wall of the capsule chamber, in order to provide an airflow having a larger surface contact with the capsule when the user inhales, so as to drive the capsule to rotate and vibrate easier in the capsule chamber 1 to release the inhalable powder.
(34) Further preferably, by referring to
(35) Further preferably, by referring to
(36) The deflected intake duct group is provided at the lower part of the side wall of the capsule chamber 1, which can better provide a through airflow throughout the entire capsule chamber 1 from bottom to top when the user inhales, in order to help the top of the capsule to rotate against the ventilating screen 12 at the top of the capsule chamber 1, so that the powder released from the capsule moves toward the top of the outlet duct 11 more smoothly.
(37) Further preferably, by referring to
(38) The deflected intake duct group is only provided at the lower part of the side wall of the capsule chamber 1, which can also provide a bottom-up airflow when the user inhales, in order to help the top of the capsule to rotate against the ventilating screen 12 at the top of the capsule chamber 1. It can be understood that, in order to make the top of the capsule rotate against the screen 12 at the top of the capsule chamber 1, the through airflow is not necessary, as long as a non-through airflow from bottom to top is enough to lift the capsule.
(39) By referring to
(40) In this embodiment, the deflected intake duct group at the bottom of the capsule chamber 1 can also be evenly arranged around the central axis of the capsule chamber, simultaneously deflect clockwise or counterclockwise. When the user inhales, it can provide a part of the spiral airflow that is deflected in the horizontal direction to help the capsule rotate and vibrate to release the inhalable powder, and it can also provide another part of the bottom-to-up through airflow to help the top of the capsule rotate against the ventilating screen 12 at the top of the capsule chamber 1, so that the powder released from the capsule moves towards the top of the outlet duct 11 more smoothly. The structure is simple, and it serves two purposes.
(41) Further preferably, by referring to
(42) In this embodiment, the deflected intake duct group of the impeller structure at the bottom of the capsule chamber 1 can be understood as being composed of four deflected intake ducts 13 separated by four blades.
(43) Further preferably, by referring to
(44) In this embodiment, each of the deflected intake duct groups at the bottom of the capsule chamber 1 and those at the side wall serve to provide deflected airflow, wherein the deflected intake duct groups at the bottom of the capsule chamber 1 can also provide a bottom-up through airflow, and the object of the present invention can also be achieved.
(45) By referring to
(46) In this embodiment, the double capsule-chamber is composed of first capsule chamber 1a and second capsule chamber 1b which are closely arranged, and the first actuator 2a and the second actuator 2b are arranged at both ends of the line where the first capsule chamber 1a and the second capsule chamber 1b are located, the first actuator 2a and the second actuator 2b can move from both sides to the middle so as to puncture the capsules in the first capsule chamber 1a and the second capsule chamber 1b, respectively.
(47) The user separates the screen cover 15 from the top of the double-capsule chamber first, to make the top of the double-capsule chamber open; after filling the capsule chambers 1 with capsules containing different active ingredients, the screen cover 15 is closed to make the screen 12 cover the top of the capsule chambers 1 again; then, the user operates the actuators 2 to move from both sides to the middle so as to puncture the capsules in the first capsule chamber 1a and the second capsule chamber 1b, respectively, and the actuators 2 are reset by elastic components commonly used in the prior art; finally, the user covers the mouth to the nozzle 3 closely and inhales forcefully, and the outside air enters the capsule chambers through the intake duct 14 at the bottom of the capsule chambers 1, so that the capsules vibrate and rotate against the screen 12 to release the powder. The released powder from the capsules passes through the screen 12 into the outlet duct 11 and finally enters the human body.
(48) Although the actuators 2 of this embodiment move from both sides to the middle so as to puncture the capsules in the first capsule chamber 1a and the second capsule chamber 1b, respectively, person skilled in the art can adjust the arrangement of the actuators, for example, the actuators 2 are provided on one side of the line where the first capsule chamber 1a and the second capsule chamber 1b are located, the actuators 2 comprise at least two needles in the width direction, so that when operated, the actuators 2 puncture the capsules in the first capsule chamber 1a and the second capsule chamber 1b at the same time.
(49) Further preferably, by referring to
(50) Compared with the foregoing embodiment, the inhaler of this embodiment is provided with a deflected intake duct group on the side wall of the capsule chamber 1 to provide a spiral airflow that moves upward from the deflected intake duct 13 when the user inhales. The airflow can help the capsules rotate and vibrate more smoothly to release the inhalable powder, which greatly reduces the requirement of the user's inhalation flow when the capsules rotate and release medicine, and can release the powder easier.
(51) Further preferably, by referring to
(52) Compared with the previous embodiment, the inhaler of this embodiment provides a deflected intake duct group at the lower part of the capsule chamber 1, which can not only provide a spiral airflow moving upward from the deflected intake duct 13, but also assist the bottom of the intake duct 14 to make the top of the capsule rotate against the screen 12 at the top of the capsule chambers.
(53) Further preferably, by referring to
(54) Further preferably, by referring to
(55) By referring to
(56) More preferably, by referring to
(57) More preferably, by referring to
(58) In this embodiment, the sub-ducts (11a, 11b) are further divided into six narrow ducts, each narrow duct can guide the direction of the gathered airflow more precisely according to its position, so as to make the airflows from the two capsule chambers (1a, 1b) gather more smoothly and converge on the upper area of the central baffle 111, and then be directed to flow above the outlet duct.
(59) More preferably, by referring to
(60) The height of the outlet duct 11 in this embodiment refers to the distance from the top of the capsule chamber to the nozzle 3, as shown in
(61) Further preferably, by referring to
(62) First, the user separates the lower casing 4 and the upper casing 6 so as to separate the screen cover 15 from the top of the double-capsule chamber, then fills each capsule chambers 1 with capsules containing two different active ingredients, and then closes the upper casing 6 and the lower casing 4 so that the screen 12 covers the top of the capsule chambers 1 again; then, the user operates parts of the actuators 2 located out of the casings to puncture the capsules in the capsule chambers 1, the actuators 2 are reset by the elastic components commonly used in the prior art; finally, the user closely fits the mouth to the nozzle 3 and inhales in force, the outside air enters the cavity through the air intake hole 42 of the lower casing 4, and enters the capsule chambers 1 from the intake ducts 14 at the bottom of the capsule chambers 1, so that the capsules vibrate and rotate against the screen 12 to release the powder. The released powder from the capsule enters the outlet duct 11 through the screen 12 and finally enters the human body.
(63) Compared with the previous embodiment, the dry powder inhaler of this embodiment adds the upper casing 6, the lower casing 4 and the adapter plate 5 on the premise of supporting the technical solution of the previous embodiment, thereby increasing the structural firmness of the dry powder inhaler, and making it easy to operate. The upper casing 6, the lower casing 4 and the adapter plate 5 are all conventional components of the same type of dry powder inhaler in the prior art. In this embodiment, the upper casing 6, the lower casing 4 and the adapter plate 5 are also conventional designs in the prior art.
(64) Further preferably, by referring to
(65) When the user inhales, external air can enter the internal cavity of the upper casing 6 through the slit and enter the outlet duct 11 from the small hole 113 of the outlet duct 11 to promote the rotation of the airflow in the outlet duct 11, in this embodiment, after the capsule medicine powder in each capsule chamber 1 is released, it is transmitted in the outlet duct 11 and fully mixed by rotation, so that the moving speed of the airflow arriving at the nozzle 3 is proper and the ingredients are uniform.
(66) Further preferably, by referring to
(67) By referring to
(68) This embodiment provides a medicine dispenser containing three active components (or a mixture thereof) in a separated manner by providing three capsule chambers, and an intake duct 14 is provided at the bottom of each capsule chamber 1, and no deflected intake duct group is provided on the side or bottom of each capsule chamber. The arrangement of other components is the same as or similar to that in other embodiments, and details are not described herein again.
(69) Further preferably, by referring to
(70) In some cases, each component of the combined product needs to achieve a specific particle distribution to maximize its effect. Since each component of the present invention is released separately in each corresponding capsule chamber 1, by adjusting structural characteristics such as the size, position, opening angle, and/or the number of the intake ducts 13, the intake ducts 14, and/or the air outlet duct 11, different aerodynamic parameters can be set for each capsule chamber 1, in order to maximize the therapeutic effect of each active ingredient under the premise of simultaneous administration. In this embodiment, the size of the intake duct 14 at the bottom of the capsule chambers 1 is adjusted to give different air flow rates to affect the particle distribution of the powder in the capsules.
(71) By referring to
(72) This embodiment provides a medicine dispenser containing four active components (or a mixture thereof) in a separated manner by providing four capsule chambers. Providing four capsule chambers results in a higher requirement for the inhaler for the patient's inspiratory flow. In order to rotate and vibrate the capsule fully to release the inhalable powder, each capsule chamber 1 of this embodiment is provided with a deflected intake duct group at the bottom of the capsule chamber, and the intake duct group is arranged as a fixed impeller to provide a spiral air flow from bottom to top when the user inhales, which effectively promotes the capsule's rotation and vibration to release the inhalable powder. The specific shape of the impeller structure is shown in
(73) The above are only the specific embodiments of the present invention and are not intended to limit the scope of the present invention. Any equivalent change, modification and combination made by persons skilled in the art without departing from the concept and principle of the present invention shall fall within the protection of this application.