CARTRIDGE FOR AN AEROSOL-GENERATING SYSTEM
20200281269 ยท 2020-09-10
Assignee
Inventors
- Alexandre MALGAT (Les Tuileries de Grandson, CH)
- Noori Moyad BRIFCANI (Neuchatel, CH)
- Rui Batista (Morges, CH)
- Oleg MIRONOV (Neuchatel, CH)
Cpc classification
A61M2205/0238
HUMAN NECESSITIES
A61M15/06
HUMAN NECESSITIES
A24F40/42
HUMAN NECESSITIES
International classification
A24F40/42
HUMAN NECESSITIES
A61M15/06
HUMAN NECESSITIES
G05D23/24
PHYSICS
A61M11/04
HUMAN NECESSITIES
Abstract
A heater assembly for an aerosol-generating system is provided, including: an electrically insulating support having an aperture; an electrical heating element disposed across the aperture in the electrically insulating support, being configured to heat a liquid aerosol-forming substrate to form an aerosol, and being substantially flat; capillary material, wherein a portion of the capillary material is in contact with the electrical heating element, and the capillary material is configured to convey the liquid aerosol-forming substrate to the electrical heating element; and two electrical contacts respectively connected to ends of the electrical heating element, the two electrical contacts supported by the electrically insulating support. An aerosol-generating system including an aerosol-generating device and a cartridge is also provided.
Claims
1.-20. (canceled)
21. A heater assembly for an aerosol-generating system, the heater assembly comprising: an electrically insulating support having an aperture; an electrical heating element disposed across the aperture in the electrically insulating support, being configured to heat a liquid aerosol-forming substrate to form an aerosol, and being substantially flat; capillary material, wherein a portion of the capillary material is in contact with the electrical heating element, and the capillary material is configured to convey the liquid aerosol-forming substrate to the electrical heating element; and two electrical contacts respectively connected to ends of the electrical heating element, the two electrical contacts supported by the electrically insulating support.
22. The heater assembly according to claim 21, wherein the electrical heating element comprises a filament disposed in a curved manner between the two electrical contacts.
23. The heater assembly according to claim 21, wherein the electrical heating element comprises a filament, which is substantially flat and is curved along one or more dimensions thereof.
24. The heater assembly according to claim 21, wherein the capillary material comprises ceramic.
25. The heater assembly according to claim 21, wherein the capillary material is integrally formed as a single continuous piece of capillary material.
26. The heater assembly according to claim 21, wherein the capillary material has a gradient of pore size or porosity, and wherein the gradient of pore size or porosity of the capillary material continuously decreases within the capillary material in a direction towards the electrical heating element.
27. The heater assembly according to claim 21, wherein the capillary material comprises first and second capillary materials.
28. The heater assembly according to claim 27, wherein the first capillary material is in direct contact with the electrical heating element, and wherein the second capillary material is in contact with the first capillary material and is separated from the electrical heating element by the first capillary material.
29. The heater assembly according to claim 27, wherein the first and the second capillary materials comprise different regions of a single continuous piece of capillary material.
30. The heater assembly according to claim 25, wherein the single continuous piece of capillary material has a shape of a truncated cone.
31. The heater assembly according to claim 21, wherein the capillary material is in fluid connection with the liquid aerosol-forming substrate.
32. The heater assembly according to claim 27, wherein the second capillary material is in fluid connection with the liquid aerosol-forming substrate.
33. The heater assembly according to claim 30, wherein capillary material is in fluid connection with the liquid aerosol-forming substrate.
34. The heater assembly according to claim 33, wherein the capillary material comprises ceramic.
35. An aerosol-generating system, comprising: an aerosol-generating device comprising a power source and a main body; a cartridge removably inserted into the main body, the cartridge comprising: a liquid storage portion configured to hold a liquid aerosol-forming substrate and comprising a housing including an air flow channel therein; and a heater assembly comprising: an electrically insulating support having an aperture; an electrical heating element disposed across the aperture in the electrically insulating support, the electrical heating element being substantially flat, capillary material, wherein a portion of the capillary material is in contact with the electrical heating element, and the capillary material is configured to convey the liquid aerosol-forming substrate to the electrical heating element, and two electrical contacts respectively connected to ends of the electrical heating element, the two electrical contacts supported by the electrically insulating support element; and a mouthpiece comprising at least one air inlet and at least one air outlet.
36. The aerosol-generating system according to claim 35, wherein a pore size or porosity of the portion of the capillary material in contact with the electrical heating element is less than a pore size or porosity of the another portion of the capillary material separated from the electrical heating element by the portion of the capillary material in contact with the electrical heating element.
37. The aerosol-generating system according to claim 35, wherein the cartridge is between the main body and the mouthpiece.
38. The aerosol-generating system according to claim 35, wherein the electrical heating element comprises a filament disposed in a curved manner or in a straight manner between the two electrical contacts respectively connected to ends of the filament.
39. The heater assembly according to claim 35, wherein the capillary material is integrally formed as a single continuous piece of capillary material.
40. The aerosol-generating system according to claim 39, wherein the single continuous piece of capillary material has a shape of a truncated cone.
Description
[0070] The invention will be further described, by way of example only, with reference to the accompanying drawings in which:
[0071]
[0072]
[0073]
[0074]
[0075]
[0076]
[0077]
[0078] The cartridge 20 contains an aerosol-forming substrate and is configured to be received in a cavity 18 within the device. Cartridge 20 should be replaceable by a user when the aerosol-forming substrate provided in the cartridge is depleted.
[0079] The aerosol-generating device 10 is portable and has a size comparable to a conventional cigar or cigarette. The device 10 comprises a main body 11 and a mouthpiece portion 12. The main body 11 contains a battery 14, such as a lithium iron phosphate battery, control electronics 16 and a cavity 18. The mouthpiece portion 12 is connected to the main body 11 by a hinged connection 21 and can move between an open position as shown in
[0080] The cavity 18 has a circular cross-section and is sized to receive a housing 24 of the cartridge 20. Electrical connectors 19 are provided at the sides of the cavity 18 to provide an electrical connection between the control electronics 16 and battery 14 and corresponding electrical contacts on the cartridge 20.
[0081]
[0082]
[0083]
[0084] Of course other mechanisms for maintaining a good electrical connection between the cartridge and the device may, alternatively or in addition, be employed. For example, the housing 24 of the cartridge 20 may be provided with a thread or groove (not illustrated) that engages a corresponding groove or thread (not illustrated) formed in the wall of the cavity 18. A threaded engagement between the cartridge and device can be used to ensure the correct rotational alignment as well as retaining the cartridge in the cavity and ensuring a good electrical connection. The threaded connection may extend for only half a turn or less of the cartridge, or may extend for several turns. Alternatively, or in addition, the electrical connectors 19 may be biased into contact with the contacts on the cartridge.
[0085] Other cartridge designs incorporating a capillary material arrangement in accordance with this disclosure can now be conceived by one of ordinary skill in the art. For example, the cartridge may include a mouthpiece portion, may include more than one heater assembly and may have any desired shape. Furthermore, a capillary assembly in accordance with the disclosure may be used in systems of other types to those already described, such as humidifiers, air fresheners, and other aerosol-generating systems
[0086] The exemplary embodiments described above illustrate but are not limiting. In view of the above discussed exemplary embodiments, other embodiments consistent with the above exemplary embodiments will now be apparent to one of ordinary skill in the art.
[0087] The cartridge shown in
[0088] At the upper end of the cartridge a ceramic substrate 42 is provided. The substrate 24 defines an opening 44 and has electric contacts (not shown) at opposite sides thereof. A heater element 46 is connected to the electrical contacts of the substrate 32 and extends over the opening 44 defined by the substrate.
[0089] Both the first capillary material 36 and the second capillary material 38 retain liquid aerosol-forming substrate. The first capillary material 16, which is in direct contact with the heater element 46, has a higher thermal decomposition temperature (at least 160 degree Celsius or higher such as approximately 250 degree Celsius) than the second capillary material 38. The first capillary material 36 effectively acts as a spacer separating the heater element 46 from the second capillary material 38 so that the second capillary material 38 is not exposed to temperatures above its thermal decomposition temperature. The thermal gradient across the first capillary material 36 is such that the second capillary material 38 is exposed to temperatures below its thermal decomposition temperature. The second capillary material 38 may be chosen to have superior wicking performance to the first capillary material 36, may retain more liquid per unit volume than the first capillary material 36 and may be less expensive than the first capillary material 36. In this example the first capillary material 36 is a heat resistant material, such as a fiberglass or fiberglass containing material and the second capillary material 38 is a polymer such as high density polyethylene (HDPE), or polyethylene terephthalate (PET).
[0090]
[0091] The housing 24 has an open end to which a heater assembly is fixed. The heater assembly comprises a substrate 42 having an aperture 44 formed in it, a pair of electrical contacts 48 fixed to the substrate 42 and separated from each other by a gap 40, and an resistive heater element 46 extending over the aperture 44 and being fixed to the electrical contacts 48 on opposing sides of the aperture 44.
[0092] The heater assembly is covered by a removable cover 26. The cover 26 comprises a liquid impermeable plastic sheet that is glued to the heater assembly but which can be easily peeled off. A tab is provided on the side of the cover to allow a user to grasp the cover when peeling it off. It will now be apparent to one of ordinary skill in the art that although gluing is described as the method to a secure the impermeable plastic sheet to the heater assembly, other methods familiar to those in the art may also be used including heat sealing or ultrasonic welding, so long as the cover may easily be removed by a consumer.
[0093]
[0094]
[0095] In
[0096] It will be understood that different methods and configurations are possible to obtain the capillary material having a different pore size or porosity in different regions. In each example, a region of smaller pore size or porosity is located at one end of the capillary material. The region of smaller pore size or porosity is then located at the heater. The gradient in pore size or porosity then enhances the capillary action in the material, to draw aerosol-generating substrate liquid to the heater.