Aerosol generating device equipped with an induction heater having a truncated cone-shaped induction coil
The aerosol generating device with a frusto-conical induction coil and heating element addresses the challenge of controlled heating and cleaning ease by optimizing heat distribution and residue reduction.
Patent Information
- Application Number
- JP2020506928
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-08-09
- Filing Date
- 2018-08-06
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2038-08-06
AI Technical Summary
Existing aerosol generating devices with induction heaters lack controlled heating and are difficult to clean due to residue accumulation.
An aerosol generating device with a frusto-conical induction coil and heating element, where the distance between the coil and element affects heat generation, creating a thermal gradient, and a conical shape facilitates easy cleaning by reducing residue adhesion.
The device provides controlled heating with reduced residue accumulation, enhancing cleaning ease and aerosol generation efficiency.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an aerosol generating device having a chamber configured to receive at least a portion of an aerosol-generating article, the device comprising an induction coil, a power supply and a controller for supplying alternating current to the induction coil. [Background technology]
[0002] The use of different types of heaters in aerosol-generating articles to generate aerosols is well known. Typically, resistive heaters are used to heat an aerosol-forming substrate, such as an e-liquid. It is also well known to provide "non-combustion, heat-type" devices that utilize resistive heaters to generate inhalable aerosols by heating, but not burning, an aerosol-forming substrate containing tobacco.
[0003] Induction heaters offer advantages and have been proposed in the above-mentioned devices. Induction heaters are described, for example, in US 2017 / 055580 A1. In an induction heater, an induction coil is disposed around a component made of a conductive material. The component can be referred to as a heating element or a susceptor. A high-frequency AC current is passed through the induction coil. As a result, an alternating magnetic field is generated within the induction coil. The alternating magnetic field penetrates the heating element, thereby generating eddy currents within the heating element. These currents lead to heating of the heating element. In addition to the heat generated by the eddy currents, the alternating magnetic field can also cause the susceptor to heat due to a hysteresis mechanism. Some susceptors can be characterized as having no or very little eddy current generation. In such susceptors, substantially all of the heat generation is due to the hysteresis mechanism. The most common susceptor type is one in which heat is generated by both mechanisms. A more detailed description of this process and the heating within the susceptor when penetrated by an alternating magnetic field can be found in WO 2015 / 177255. Induction heaters facilitate rapid heating, which is beneficial for generating aerosols during operation of the aerosol generating device. Summary of the Invention [Problem to be solved by the invention]
[0004] It would be desirable to have an aerosol generating device with an induction heater that can be heated in a controlled manner and is easy to clean. [Means for solving the problem]
[0005] According to a first aspect of the present invention, there is provided an aerosol generating device comprising a housing having a chamber configured to receive at least a portion of an aerosol-generating article. The chamber comprises at least one heating element, preferably a solid, elongated heating element extending into the chamber along the longitudinal axis of the chamber and configured to penetrate the aerosol-generating article received in the chamber. The heating element preferably has a frusto-conical shape, tapering at its free end. The device comprises an induction coil disposed around at least a portion of the chamber and having a frusto-conical shape. The device further comprises a power supply and controller connected to the induction coil and configured to supply an alternating current to the induction coil such that, in use, the inductor coil generates a varying magnetic field for heating the heating element located within the chamber.
[0006] By providing a truncated cone-shaped induction coil, the heating characteristics of the heating element can be controlled. In this regard, the distance between the induction coil and the heating element affects the heat generation. The smaller the distance between the induction coil and the heating element, the higher the temperature of the heating element. By providing a conical coil, a thermal gradient is created in the heating element during operation of the induction heater. The diameter of the induction coil preferably increases from the proximal end of the chamber. The temperature of the heating element is then highest at the tip of the heating element.
[0007] The chamber may include at least one heating element. The heating element may be integrally connected to the aerosol-generating device. Alternatively, the heating element may be part of the aerosol-generating article. For example, the heating element may be provided as conductive particles or filaments within the article.
[0008] The tobacco-containing aerosol-forming substrate may be provided in the form of an aerosol-generating article. The aerosol-generating article may be provided as a consumable, such as a tobacco stick. In the following, the aerosol-generating article will be referred to as a consumable. These consumables may have an elongated rod-like shape. The consumable is typically pushed into the chamber of the device at the proximal end of the device. This end is the mouth end of the chamber into which the consumable is inserted. In the chamber, the heating element of the induction heater is configured to penetrate the consumable. Alternatively, the heating element may be contained within the consumable itself. After use, the consumable is removed and replaced with a new consumable.
[0009] The heating element may be a solid, elongated heating element configured to extend into the chamber along the longitudinal axis thereof and penetrate an aerosol-generating article received in the chamber. The heating element and coil may have a predetermined length. The heating element may have the same length as the coil. The heating element may have the shape of a pin or blade. The heating element may be solid, while the coil may have a helical shape so that the heating element can be disposed within the coil. The coil may have a frusto-conical shape. The coil may be provided as a helically wound coil having the shape of a frusto-conical helical spring. The coil may include contact elements so that AC current flows through the coil from a power source. The AC current supplied to the induction coil is preferably a high-frequency AC current. For purposes of this specification, the term "high frequency" is understood to mean a frequency in the range of about 1 megahertz (MHz) to about 30 megahertz (MHz) (including the range of 1 MHz to 30 MHz), particularly about 1 megahertz (MHz) to about 10 MHz (including the range of 1 MHz to 10 MHz), and even about 5 megahertz (MHz) to about 7 megahertz (MHz) (including the range of 5 MHz to 7 MHz). A direct or electrical connection need not be established between the coil and the heating element, as the magnetic field generated by the coil penetrates the heating element, thereby heating it by the mechanisms described above. These mechanisms are eddy currents and hysteresis losses, which are converted to thermal energy. The coil and heating element may be made of electrically conductive materials, such as metals. The heating element and coil may have circular, elliptical, or polygonal cross sections. The shape of the heating element may be utilized to change the shape of the consumable during insertion of the consumable into the chamber. Providing a frusto-conical coil means that the sides of the frusto-conical coil are angled relative to the longitudinal axis of the coil. When referring to the heating element, coil, and chamber, the term "longitudinal" means the direction in which the aerosol-generating article is inserted into the chamber, and the term "transverse" means the direction perpendicular to the direction in which the aerosol-generating article is inserted into the chamber.
[0010] The heating element can also have a frustoconical shape. The heating element and induction coil can have corresponding shapes so that the heating element can be disposed within the coil. A corresponding frustoconical shape further means that both the outer shape of the heating element and the shape contained in the coil resemble a cone. The outer shapes of the heating element and coil can be straight or slightly curved. By providing the coil and heating element with corresponding frustoconical shapes, the heating characteristics of the heating element can be controlled. Also, by providing a frustoconical heating element, the cleaning characteristics of the heating element can be improved. In this regard, when the consumable is removed, residue from the aerosol-forming substrate may adhere to the heating element and impair its function. Such residue may affect subsequent aerosol generation and is therefore undesirable. By providing a frustoconical heating element, the base of the consumable can be more easily penetrated, simplifying the pressing of the consumable onto the heating element and requiring less force to do so. Additionally, providing a frusto-conical heating element can reduce the amount of loose tobacco left behind in the device upon removal of the consumable due to reduced friction between the frusto-conical heating element and the tobacco substrate, and manual cleaning of the heating element can be easier due to the fact that the base of the heating element is easily accessible.
[0011] The heating element and coil may have the same longitudinal axis, such that the heating element is centrally disposed, surrounded by the coil. The angle between the longitudinal axis of the heating element and the side, as viewed from the proximal end of the device, is designated the apex angle of the heating element. Similarly, the angle between the longitudinal axis of the coil and the side, as viewed from the proximal end of the device, is designated the apex angle of the coil. Configuring the heating element and coil so that the distance between the heating element and the coil, perpendicular to the surface of the heating element, is essentially the same means that the apex angles of the heating element and the coil are essentially the same. Varying the distance between the heating element and the coil means that the apex angle of the heating element is different from the apex angle of the coil. Both the heating element and the induction coil may have a positive apex angle, such that the heating element and the coil have corresponding frustoconical shapes and the same orientation relative to the frustoconical shape.
[0012] The apex angle of the heating element may be essentially the same as the apex angle of the induction coil, in this way homogeneous eddy currents may be generated throughout the heating element so that the heating element may be heated to a constant temperature.
[0013] Additionally, the apex angles of the induction coil and heating element may be varied to promote a heating gradient in the heating element during operation of the induction heater. By varying the apex angles of the heating element and coil, the heating characteristics of the heating element can be controlled. In this case, the eddy currents and hysteresis effects created in the heating element can be varied from the tip to the base of the heating element.
[0014] If it is desired that the tip of the heating element be heated to a higher temperature than the base of the heating element, the apex angle of the heating element is selected to be smaller than the apex angle of the induction coil. In other words, the distance between the heating element and the coil may be selected to be smaller at the tip of the heating element and larger at the base of the heating element, meaning in a direction transverse to the longitudinal axis at the tip of the heating element. The tip of the heating element, which has a higher temperature, may be preferred for heating substrates deeper within the consumable and further from the tip of the consumable. Substrates inside the consumable may benefit from increased heating because they may be more tightly packed and denser, and may be less dry due to less exposure to ambient air.
[0015] The apex angle of the heating element may also be selected to be greater than the apex angle of the coil. As a result, the distance to the heating element may be selected to be greater at the tip of the heating element than at the base of the heating element, meaning transverse to the longitudinal direction at the base of the heating element. As a result, the tip of the heating element is heated to a lower temperature than the temperature to which the base of the heating element is heated. Heating the tip of the heating element to a lower temperature than the base may be beneficial in that the tip of the inserted consumable may be heated to a lesser extent in this case, and therefore may dry out to a lesser extent. This may reduce the amount of residue left in the device when the depleted consumable is removed from the device.
[0016] The chamber may have a slot or recess shape that corresponds to the shape of the consumable. The heating element may have an elongated shape that penetrates the consumable. Heating energy emitted by the heating element during operation of the induction heater may be evenly distributed throughout the substrate of the consumable.
[0017] The induction coil of the induction heater can be disposed around the heating element within a housing. In this way, the coil can be protected from contamination, for example, by the aerosol-forming substrate. The housing, which provides containment for the coil, can be made of a material that is not susceptible to heating when penetrated by an alternating magnetic field. For example, the housing can be made of a non-conductive material so that eddy currents are not generated within the housing and so that heating is not possible through a hysteresis mechanism. In other words, the housing can be made of a non-susceptor material, for example, a non-conductive non-susceptor material. The entire housing of the device can be made of a non-conductive material. Alternatively, a section of the housing adjacent to the induction coil can be made of a non-conductive material.
[0018] The heating element may have a tapered free end. The free end is also referred to as the tip of the heating element. The tapered tip may facilitate insertion of the consumable and may prevent the consumable from being damaged during insertion. A tapered tip refers to a small section adjacent to the tip of the heating element. Conversely, a frustoconical shape refers to a substantial length of the element adjacent from the tapered tip of the element to the base of the element. A frustoconical shape may exist when at least 50 percent, at least 70 percent, or at least 90 percent of the length of the element resembles a cone. A frustoconical shape may exist when the element resembles a cone along its entire length.
[0019] At least one air inlet may be provided on a side of the housing so that air can be drawn through the air inlet and discharged adjacent to the heating element. Alternatively, at least one air inlet may be provided in the chamber of the housing so that air can be drawn through an air inlet next to an inserted consumable and discharged adjacent to the heating element. The air inlet may be formed as a groove in the chamber so that the consumable can be securely held within the chamber, or the diameter of the chamber may be larger than the diameter of the consumable. Air drawn into the device by the user's puff may be drawn through the consumable adjacent to the heating element, and the heating action of the heating element creates an aerosol that is then inhaled by the user.
[0020] The chamber may resemble the shape of the consumable. The chamber may help hold the consumable on or inside the heating element. The chamber may have a diameter corresponding to the diameter of the consumable, or may be slightly smaller.
[0021] The heating element may include multiple heating elements. In all embodiments, a single heating element or multiple heating elements may be used. Different sections of the heating element may be independently heated by providing multiple heating elements. To heat multiple heating elements, multiple independently controllable induction coils may be provided. One induction coil may be assigned to each heating element, and AC current may be passed through one coil at a time to heat each heating element. Separate contact terminals may be provided on the induction coil for separately contacting the coil with a power source. Different heating elements may be heated to different temperatures. For example, different materials with different electrical resistances may be used for different heating elements. The coils may be made of different materials with different electrical resistances. When multiple coils are used, AC currents of different intensities are passed through the different coils. Different pitches may be used for the different coils. The coil pitch refers to the spatial distance between the individual windings of the coil. These different configurations of the induction coil(s) may be utilized to control the generation of the magnetic field and the resulting heating of the heating element.
[0022] As mentioned above, the heating element may have an elongated cylindrical (preferably solid) shape that allows the consumable to easily penetrate. Alternatively, the heating element may be hollow with an internal cavity configured to receive the aerosol-generating article received in a chamber within the internal cavity. Due to the hollow shape, the consumable may therefore be pressed inside the heating element. The hollow heating element may have a slightly curved or curved surface to facilitate insertion of the consumable. Thus, the heating element may have a frusto-conical shape with a slightly curved outer surface. In this case, the consumable may be sandwiched within the internal cavity of the hollow heating element such that the consumable is held inside the heating element by a press fit. Because the base of the consumable is compressed and the distance between the heating element and the base may be minimized, heat transfer from the heating element to the base of the consumable may be optimized.
[0023] When the heating element is hollow, the consumable can be pressed into the interior cavity of the heating element. The shape of the consumable can change during insertion due to the cross-section of the hollow heating element. In this way, heating of the aerosol-forming substrate within the consumable can be further optimized. For example, the oval cross-section of the heating element can be utilized to flatten the aerosol-forming substrate during insertion of the consumable.
[0024] The hollow heating element may have a diameter that decreases as viewed from the proximal end of the device. Multiple hollow heating elements may have continuously decreasing diameters. The decreasing diameter may facilitate insertion of the consumable and may securely hold the consumable within the device. The heating element may have a largest diameter at its tip, where the consumable first contacts the tip after insertion into the interior cavity of the heating element, and a smallest diameter at its base.
[0025] The controller may comprise a microprocessor, which may be a programmable microprocessor. The controller may comprise additional electronic components. The controller may be configured to regulate the supply of power to the induction heater. Power may be supplied to the induction heater continuously after activation of the device, or may be supplied intermittently (e.g., between puffs). Power may be supplied to the induction heater in the form of current pulses.
[0026] The power source may be a battery. Alternatively, the power source may be another form of charge storage device, such as a capacitor. The power source may require recharging and may have a capacity that allows for the storage of sufficient energy for one or more puffs. For example, the power source may have a capacity sufficient to allow for continuous aerosol generation for approximately six minutes, or a multiple of six minutes. In another embodiment, the power source may have a capacity sufficient to allow for a predetermined number of puffs, or for discontinuous activation of the induction heater.
[0027] The aerosol-forming substrate may include a homogenized tobacco material. The aerosol-forming substrate may include an aerosol former. Preferably, the aerosol-forming substrate includes a homogenized tobacco material, an aerosol former, and water. Providing a homogenized tobacco material may improve aerosol generation and the nicotine content and flavor profile of the aerosol generated during heating of the aerosol-generating article. Specifically, the process of making homogenized tobacco involves grinding tobacco leaves, which allows for more efficient release of nicotine and flavor upon heating.
[0028] The induction heater may be triggered by a puff detection system. Alternatively, the induction heater may be triggered by pressing an on / off button that is held for the duration of the user's puff.
[0029] The puff detection system may be provided as a sensor, which may be configured as an airflow sensor and may measure airflow. Airflow is a parameter that characterizes the amount of air drawn by a user through the airflow path of the aerosol generating device. The onset of a puff may be detected by the airflow sensor when the airflow exceeds a predetermined threshold. Preferably, the onset may also be detected when the user activates a button.
[0030] The sensor may also be configured as a pressure sensor that measures the pressure of air inside the aerosol-generating device that is drawn through the device's airflow path by the user during a puff.
[0031] The aerosol generating device and consumables as described above may be an electrically operated smoking system. Preferably, the aerosol generating system is portable. The aerosol generating system may have a size comparable to a conventional cigar or cigarette. The smoking system may have a total length of approximately 30 millimeters to approximately 150 millimeters. The smoking system may have an outer diameter of approximately 5 millimeters to approximately 30 millimeters.
[0032] The present invention also relates to an aerosol generating system comprising an aerosol generating device as described above and an aerosol-generating article having an aerosol-generating substrate and configured for use in the aerosol generating device.
[0033] The invention will now be further described, by way of example only, with reference to the accompanying drawings in which: [Brief explanation of the drawings]
[0034] [Figure 1] FIG. 1 shows a conventional induction heater. [Figure 2] FIG. 2 shows a conventional induction heater used in an aerosol generating device. [Figure 3] FIG. 3 shows an induction heater according to the present invention. [Figure 4]FIG. 4 shows an induction heater according to the present invention for use in an aerosol generating device. [Figure 5] FIG. 5 shows an air intake used in an aerosol generating device. [Figure 6] FIG. 6 shows a heating element of an induction heater having multiple heating elements and an elliptical shape. [Figure 7] FIG. 7 shows a heating element of an induction heater having multiple heating elements and an elliptical shape for use in an aerosol generating device. DETAILED DESCRIPTION OF THE INVENTION
[0035] 1 shows a conventional induction heater 10 having an elongated heating element 12 disposed within an induction coil 14. The elongated heating element 12 has a tapered tip. Alternatively, the elongated heating element 12 and the induction coil 14 have a constant diameter along the longitudinal length of the elongated heating element 12 and the induction coil 14, respectively.
[0036] 2 shows a conventional induction heater 10 for use in an aerosol generating device 16. The aerosol generating device 16 includes a housing 18. The induction coil 14 is disposed within the housing 18. The housing 18 also includes a chamber 20 at its proximal end into which a consumable can be inserted. The heating element 12 of the conventional induction heater 10 is disposed within the chamber 20 so that the heating element 12 can penetrate the consumable. A battery 22 is disposed within the housing 18 of the aerosol generating device 16, as is a controller 24 for controlling the supply of power from the battery 22 to the conventional induction heater 10.
[0037] 3 shows an embodiment of an induction heater 26 according to the present invention. The induction heater 26 comprises a frusto-conical heating element 28 surrounded by a frusto-conical induction coil 30. Only the induction coil 30 may have a frusto-conical shape, while the heating element 28 may not. The frusto-conical heating element 28 has a tapered tip to facilitate the insertion of consumables onto the frusto-conical heating element 28. The frusto-conical heating element 28 has a frusto-conical shape from the tip of the frusto-conical heating element 28 to the base of the frusto-conical heating element 28.
[0038] The frustoconical induction coil 30 surrounds the frustoconical heating element 28 such that the distance perpendicular to the side of the frustoconical heating element 28 from the frustoconical heating element 28 to the frustoconical induction coil 30 remains substantially the same from the tip of the frustoconical heating element 28 to the base of the frustoconical heating element 28. As a result, the frustoconical shape of the induction coil 30 corresponds to the frustoconical shape of the heating element 28. In FIG. 3 , the longitudinal axes L of the heating element 28 and the induction coil 30 are shown. The apex angle α of the induction coil 30 is depicted and is the angle between the longitudinal axis L and the outer shape of the induction coil 30. The apex angle β is depicted and is the angle between the longitudinal axis L and the outer surface of the heating element 28. In the embodiment shown in FIG. 3 , the apex angle α is essentially the same as the apex angle β.
[0039] FIG. 4A in FIG. 4 illustrates an induction heater 26 used in an aerosol generating device 32. The aerosol generating device 32 includes a housing 34 containing a battery 36 and a controller 38. A chamber 40 is also provided within the housing at a proximal end, within which a consumable 42 can be placed. The induction heater 26 is positioned adjacent to the chamber 40. More specifically, the frustoconical heating element 28 is disposed within the chamber 40 so that the consumable 42 can be easily pushed onto the frustoconical heating element 28 due to less friction generated while pushing the consumable onto the frustoconical sides of the frustoconical heating element 28. The frustoconical induction coil 30 of the induction heater 26 is disposed protectively within the housing 34 around the frustoconical heating element 28. In this manner, only the frustoconical heating element 28 is accessible from the outside without opening the housing 34. The frustoconical heating element 28 can be cleaned without interfering with additional components of the aerosol generating device 32.
[0040] In Figure 4b, the consumable 42, which includes the aerosol-forming substrate, is shown before being inserted into the chamber 40 of the aerosol-generating device 32. The consumable 42 is inserted into the chamber 40 by pushing the consumable 42 over the tip of the frusto-conical heating element 28 until the consumable 42 reaches the base of the frusto-conical heating element 28. In Figure 4c, the consumable 42 has been pushed completely into the chamber 40 of the aerosol-generating device 32.
[0041] Figure 5 shows two embodiments of an air inlet for the aerosol generating device 32. Figure 5a shows an air inlet 44 provided on the side of the aerosol generating device 32. The air inlet 44 allows ambient air to be drawn through the aerosol generating device 32 and exhausted through the consumable 42. In this way, the length of the airflow path within the device 32 (the length from the air inlet to the heating element) can be minimized.
[0042] 5c depicts a different configuration of the air inlet 46. In this embodiment, ambient air can enter the aerosol generating device 32 next to the consumable 42 through the chamber 40. The air inlet 46 is realized by a groove in the chamber 40. Therefore, there is no need for the air inlet to be on the side of the device 32, so that the overall structure of the device 32 is simplified and its stability is increased.
[0043] FIG. 6 shows the heating element of the induction heater 26 provided as a frusto-conical heating element 48. The heating element 48 is hollow and has an elliptical cross section. In FIG. 6a, the frusto-conical elliptical heating element 48 is depicted. This heating element 48 includes multiple heating elements 48.1, 48.2, 48.3, 48.4, 48.5, 48.6, and 48.7. The heating elements 48.1-48.7 can be heated separately. The heating elements 48.1-48.7 can be made of different materials. To facilitate individual heating, individual induction coils can be provided around each of the heating elements 48.1-48.7. The heating elements 48.1-48.7 have a frusto-conical shape such that the diameter decreases from the first heating element 48.1 to the last heating element 48.7.
[0044] In Figure 6b, a single heating element 48.1 is shown. In Figure 6c, a frustoconical-elliptical heating element 48 is shown disposed along the side of the chamber 40 of the aerosol generation device 32. The frustoconical-elliptical heating element 48 may be disposed inside the chamber 40 of the aerosol generation device 32 as a separate element. Alternatively, the heating element 48 may be configured as an integral part of the chamber 40, forming the side of the chamber 40. The frustoconical-elliptical heating element 48 is configured such that a low insertion force to press the consumable 42 into the interior recess of the frustoconical-elliptical heating element 48 reshapes the cross-section of the consumable 42 into a predominantly elliptical cross-section. The elliptical cross-section of the consumable 42 may facilitate optimized heat transfer from the frustoconical-elliptical heating element 48 to the consumable 42 as the thickness of the consumable 42 is reduced.
[0045] 7 shows the embodiment depicted in FIG. 6, in which the consumable 42 is pressed inside the interior cavity of the frusto-conical elliptical heating element 48. The induction coil 30 is protectively disposed within the housing 34 of the aerosol generating device 32 and surrounds the frusto-conical elliptical heating element 48.
[0046] The invention is not limited to the described embodiments: those skilled in the art understand that features described in the context of different embodiments can be combined with each other within the scope of the invention.
Claims
1. An aerosol generating device, comprising: a housing having a chamber configured to receive at least a portion of an aerosol-generating article, the chamber comprising at least one heating element; an induction coil disposed about at least a portion of the chamber and having a frustoconical shape; a power supply and controller connected to the induction coil and configured to supply alternating current to the induction coil such that, in use, the induction coil generates a varying magnetic field to heat a heating element located within the chamber; the heating element is a hollow heating element having an internal cavity configured to receive the aerosol-generating article received in the chamber in the internal cavity, the hollow heating element having a frustoconical shape with a slightly curved outer surface to facilitate insertion of the aerosol-generating article, and the hollow heating element has a diameter that decreases when viewed from the mouth end of the aerosol generating device; the apex angle of the truncated cone-shaped induction coil is essentially the same as the apex angle of the truncated cone-shaped heating element; The hollow heating element has an elliptical cross section.
2. 10. The aerosol generating device of claim 1, wherein the housing has at least one air inlet on a side of the housing.
3. 3. The aerosol generating device according to claim 1, wherein the induction coil has a diameter that decreases as viewed from the proximal end of the aerosol generating device.
4. 4. The aerosol generating device according to claim 1, wherein the chamber comprises two or more heating elements.
5. 5. The aerosol generating device of claim 4, wherein the heating elements are made from different materials.
6. 6. The aerosol generating device according to claim 4 or 5, wherein the chamber comprises a plurality of hollow heating elements having continuously decreasing diameters.
7. 7. The aerosol generating device according to claim 1, wherein the wall of the internal cavity is formed by the heating element.
8. 8. An aerosol generating system comprising an aerosol generating device according to any one of claims 1 to 7 and an aerosol-generating article having an aerosol-generating substrate and configured for use with the aerosol generating device.
9. 9. The aerosol generating system of claim 8, wherein the heating element is configured such that when the aerosol-generating article is received in the chamber, it is sandwiched by a press fit within the interior cavity of the heating element.
Citation Information
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