Cartridge for use in an aerosol generating system and an aerosol generating system including said cartridge

The cartridge design with a porous ceramic body and mesh heater addresses manufacturing challenges and costs by enhancing aerosol generation efficiency and reducing complexity, achieving cost-effective and robust aerosol production.

JP7765392B2Active Publication Date: 2025-11-06PHILIP MORRIS PRODUCTS SA
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Patent Information

Application Number
JP2022545812
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-01-28
Filing Date
2021-01-27
Publication Date
2025-11-06
Estimated Expiration
2041-01-27

AI Technical Summary

Technical Problem

Existing aerosol-generating cartridges are expensive to manufacture due to the complexity of the wick and coil assembly, require delicate handling of electrical contacts, and include a mouthpiece that increases material costs, making them costly and inefficient.

Method used

A cartridge design featuring a porous ceramic body with a porosity of 30% to 65% and a mesh heater with openings of 50 to 200 microns, which facilitates efficient aerosol generation through capillary action, reducing manufacturing complexity and costs.

Benefits of technology

The design enables efficient aerosol generation with reduced material costs and improved manufacturing ease, while maintaining robustness and efficiency in transporting the aerosol-forming substrate to the heater.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A cartridge for use in an aerosol generation system is provided. The cartridge includes a porous ceramic body (302) having a porosity of 30% to 65%. The cartridge also includes a mesh heater (304) engaged with the porous ceramic body, the mesh heater including a plurality of openings, each opening having a dimension of 50 microns to 200 microns. The mesh heater is a hybrid mesh heater including a network of wires and fibers, the fibers having a different material composition than the wires. An aerosol generation system including the cartridge is also provided.
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Description

[Technical Field]

[0001] The present invention relates to a cartridge for use in an aerosol generation system. The present invention also relates to an aerosol generation system comprising such a cartridge. [Background technology]

[0002] One type of aerosol-generating system is an electrically operated smoking system. Handheld electrically operated smoking systems are known, consisting of an aerosol generating device with a battery and control electronics, and a cartridge with a supply of aerosol-forming substrate and an electrically operated vaporizer. Cartridges that include both a supply of aerosol-forming substrate and a vaporizer are sometimes called "cartomizers." The vaporizer typically includes a coil of heater wire wrapped around an elongated wick immersed in a liquid aerosol-forming substrate. The cartridge portion generally includes not only the supply of aerosol-forming substrate and the electrically operated vaporizer, but also a mouthpiece that the user draws on to draw the aerosol into their mouth during use.

[0003] However, these cartridges can be relatively expensive to manufacture because the wick and coil assembly can be difficult to manufacture. Also, the electrical contact between the heater wire coil and the electrical contact through which current is supplied from the device portion must be delicately handled during manufacturing. Furthermore, these cartridges include a mouthpiece portion to protect the delicate wick and coil assembly during shipping. Including a complete and sturdy mouthpiece in each cartridge means that the material cost of each cartridge is high.

[0004] It would be desirable to provide a cartridge for use in an aerosol generation system that is simple, inexpensive to manufacture, and robust. It would also be desirable to provide a cartridge that can provide more efficient aerosol generation than known cartridges. It would also be desirable to provide an aerosol generation system incorporating such a cartridge. Summary of the Invention

[0005] According to the present disclosure, there is provided a cartridge. The cartridge may be suitable for use in an aerosol generation system. The cartridge may include a porous ceramic body. The porous ceramic body may have a porosity of 30% to 65%. The cartridge may include a mesh heater. The mesh heater may be engaged with the porous ceramic body. The mesh heater may include a plurality of openings. Each of the openings may have a dimension of 50 microns to 200 microns.

[0006] According to a first embodiment of the present disclosure, there is provided a cartridge for use in an aerosol generation system. The cartridge comprises a porous ceramic body having a porosity of 30% to 65%. The cartridge comprises a mesh heater engaged with the porous ceramic body. The mesh heater includes a plurality of openings, each opening having a dimension of 50 microns to 200 microns.

[0007] According to a second embodiment of the present disclosure, there is provided a cartridge for use in an aerosol generation system, the cartridge comprising a porous ceramic body and a mesh heater engaged with the porous ceramic body, the mesh heater being a hybrid mesh heater comprising a network of wires and fibers, the fibers having a different material composition than the wires.

[0008] In the cartridge of the second embodiment, the porous ceramic body may have a porosity of 30% to 65%. The mesh heater may include a plurality of openings. Each opening may have a dimension of 50 microns to 200 microns.

[0009] The features described below in relation to the cartridge are applicable to the cartridge of the first embodiment and the cartridge of the second embodiment.

[0010] In use, the mesh heater can heat a liquid aerosol-forming substrate. The mesh heater can heat the liquid aerosol-forming substrate to form an aerosol, or a vapor that subsequently forms the aerosol. Advantageously, the mesh heater can provide efficient aerosol generation.

[0011] The porosity of the porous ceramic body may enable the porous ceramic body to hold a liquid aerosol-forming substrate. The porous ceramic body may hold, or be configured to hold, at least 0.05, 0.1, 0.2, 0.5, or 1 ml of liquid aerosol-forming substrate.

[0012] Each opening has a dimension of 50 microns to 200 microns. The liquid aerosol-forming substrate may be drawn into the openings of the mesh heater. The liquid aerosol-forming substrate may be drawn from the porous ceramic body into the openings of the mesh heater. The liquid aerosol-forming substrate may be drawn into the openings of the mesh heater by capillary action or wicking. Advantageously, this may improve the transport of the liquid aerosol-forming substrate, for example, from the porous ceramic body into the openings of the mesh heater.

[0013] The mesh heater may include an arrangement of openings surrounded by a solid material, e.g., a wire. Each opening in the mesh heater acts as a capillary channel and can therefore draw the liquid aerosol-forming substrate into the opening. The liquid aerosol-forming substrate may be drawn into the opening by capillary action or wicking. Thus, each opening in the mesh heater may be substantially completely occupied by the liquid aerosol-forming substrate. This may not be the case, for example, when large openings are present. In the presence of large openings, the liquid aerosol-forming substrate may only form a thin layer on the solid material surrounding each opening. Substantially completely occupying the openings with the liquid aerosol-forming substrate contributes to improving the efficiency of aerosol generation in the present invention.

[0014] Advantageously, the inventors have found that a porous ceramic body having a porosity of 30% to 65% and mesh heater openings each having dimensions of 50 microns to 200 microns particularly enable efficient transport of a liquid aerosol-forming substrate through the porous ceramic body to the mesh heater openings, and particularly enable efficient aerosol generation upon heating by the mesh heater. Without wishing to be bound by theory, it is believed that there is some synergistic effect between a porous ceramic body having a porosity of 30% to 65% and mesh heater openings having dimensions of 50 microns to 200 microns, which provides such efficient transport of a liquid aerosol-forming substrate.

[0015] The term "aerosol" as used herein refers to a dispersion of solid particles, or liquid droplets, or a combination of solid particles and liquid droplets in a gas. Aerosols may be visible or invisible. Aerosols may include not only vapors of substances that are normally liquids or solids at room temperature, but also solid particles or liquid droplets, or a combination of solid particles and liquid droplets.

[0016] As used herein, the term "aerosol-forming substrate" refers to a substrate capable of emitting a volatile compound that can form an aerosol. The volatile compound may be emitted by heating or burning the aerosol-forming substrate.

[0017] The aerosol-forming substrate may comprise nicotine. The aerosol-forming substrate may comprise plant-derived material. The aerosol-forming substrate may comprise homogenized plant-derived material. The aerosol-forming substrate may comprise tobacco. The aerosol-forming substrate may comprise tobacco-containing material. The tobacco-containing material may contain volatile tobacco flavor compounds. These compounds may be released from the aerosol-forming substrate upon heating. The aerosol-forming substrate may comprise homogenized tobacco material. The aerosol-forming substrate may comprise other additives and ingredients such as flavorants.

[0018] As used herein, the term "aperture dimension" refers to a dimension measured between two opposing surfaces of the aperture. Thus, for example, if the aperture is surrounded by a wire, the aperture dimension does not include the thickness of the wire. The dimension may pass through the centroid of the aperture's cross section. For example, if the aperture has a substantially square cross section, the aperture dimension may be the side length of the square. If the aperture has a substantially circular cross section, the aperture dimension may be the diameter of the circle. If the aperture has a substantially rectangular cross section, the aperture dimension may be the long or short side length of the rectangle. If the aperture has an irregular cross section, the aperture dimension may be the average opening dimension. The aperture dimensions referred to herein were measured using a microscope, but any suitable method may be used.

[0019] The term "porosity" as used herein refers to the measure, expressed as a percentage, of the volume of accessible pores, or empty space, divided by the total volume of the body. Porosity as referred to herein was measured by mercury porosimetry.

[0020] Pores of different shapes and sizes may be present within a porous ceramic body. Pore size distribution is defined as the statistical distribution of the diameters of the largest spheres that can fit inside the pores at a given point. The term "average pore size" as used herein refers to the mean of this pore size distribution. The pore sizes referred to herein were obtained using mercury porosimetry.

[0021] As used herein, the term "mesh heater" refers to a heater that includes an arrangement of solid material that can be heated. The solid material is arranged to have a plurality of openings extending therethrough. The mesh heater may include, for example, a network of wires or a perforated sheet. The mesh heater may be heated by any suitable method. For example, the mesh heater, or portions thereof, may be resistively or inductively heated.

[0022] As used herein, the term "capillary action" refers to the ability of a liquid to flow through a narrow space without the aid of, or even against, an external force such as gravity. The effect of capillary action, or wicking, can be seen in the wicking of liquids into thin tubes and porous materials.

[0023] As used herein, the term "bulk liquid aerosol-forming substrate movement direction" refers to the net direction of movement of the liquid aerosol-forming substrate.

[0024] As used herein, the term "planar" is used to mean substantially two-dimensional. A planar element may extend at least 2, 5, or 10 times further in a first direction and a second direction perpendicular to the first direction than in a third direction perpendicular to the first direction and the second direction.

[0025] As used herein, the term "flat" refers to a substantially two-dimensional topological manifold. Thus, a flat mesh heater extends substantially more along a surface in two dimensions than in the third dimension. The dimensions of a flat mesh heater in two dimensions within a surface may be at least two, five, or ten times greater than in the third dimension perpendicular to the surface. An example of a substantially flat mesh heater is a structure between two substantially parallel surfaces, where the distance between these two imaginary surfaces is substantially less than its extension within the surface. In some embodiments, a substantially flat mesh heater is planar. In other embodiments, a substantially flat mesh heater is curved along one or more dimensions, forming, for example, a dome or bridge shape. In embodiments, a substantially flat mesh heater may engage the surface of a porous ceramic body.

[0026] As used herein, the term "heater assembly" refers to the mesh heater and porous ceramic body of the cartridge.

[0027] As used herein, the term "average" refers to an unweighted average value unless otherwise specified. Thus, the "average" diameter of five wires is equal to one-fifth of the sum of the diameters of the five wires.

[0028] The porous ceramic body has a porosity of 30% to 65%. The porous ceramic body may have a porosity of less than 60%, 55%, 50%, or 45%. Alternatively, or additionally, the porous ceramic body may have a porosity of greater than 35%, 40%, or 45%. For example, the porous ceramic body may have a porosity of 30% to 60%, or 30% to 55%, or 30% to 50%, or 35% to 65%, or 35% to 60%, or 35% to 55%, or 35% to 50%, or 40% to 65%, or 40% to 60%, or 40% to 55%.

[0029] The porous ceramic body can be configured to supply a given flow rate of liquid aerosol-forming substrate to the mesh heater when in use. For example, the porous ceramic body can be configured to supply at least 0.2, 0.5, or 1 microliters / second of liquid aerosol-forming substrate to the mesh heater when in use. The porous ceramic body can be configured to supply less than 3, 5, or 10 microliters / second of liquid aerosol-forming substrate to the mesh heater when in use. The porous ceramic body can be configured to supply 1 to 3 microliters / second of liquid aerosol-forming substrate to the mesh heater when in use.

[0030] The term "porous ceramic body" can refer to a portion or the entire ceramic component. For example, the term porous ceramic body can refer to only the portion of the ceramic component where the liquid aerosol-forming substrate is held or carried to the mesh heater.

[0031] The openings in the mesh heater may each have a dimension of 50 to 150 microns, or 50 to 100 microns, or 60 to 80 microns, or about 70 microns.

[0032] In use, the liquid aerosol-forming substrate can be drawn from the porous ceramic body into the openings of the mesh heater by capillary action.

[0033] The mesh heater may be substantially flat. The mesh heater may be substantially planar. Advantageously, a flat or planar mesh heater may be easier to handle during manufacturing and may provide a robust heater assembly structure.

[0034] In use, the direction of bulk liquid aerosol-forming substrate movement may be substantially perpendicular to the plane of the mesh heater, which may advantageously improve transport of the liquid aerosol-forming substrate into the openings of the mesh heater.

[0035] Part or all of the mesh heater may be substantially parallel to the first surface of the porous ceramic body, which may advantageously improve transport of the liquid aerosol-forming substrate from the pores of the porous ceramic body, for example, from the pore openings in the first surface of the porous ceramic body, into the openings of the mesh heater.

[0036] The mesh heater, or a portion thereof, is adjacent to and fixed to the porous ceramic body or the first surface of the porous ceramic body. (fixed relative to) , secured to them, those and Engage engaged with , and attached to them (attached to) For example, the mesh heater, or a portion thereof, may be embedded in the porous ceramic body. When the mesh heater, or a portion thereof, is embedded in the porous ceramic body, the first surface may not be the outer surface of the porous ceramic body. As used herein, " ~ Engage with (engaged with) The term " against fixed will be (fixed relative to ), to fixed will be (secured to ), to attachment attached to ,or , to to be glued (adhered to) It can be used to mean that.

[0037] The mesh heater may be reversibly engaged with the porous ceramic body. It may be possible to engage and disengage the mesh heater from the porous ceramic body. Alternatively, the mesh heater may be irreversibly engaged with the mesh heater.

[0038] When engaged with the porous ceramic body, the position of the mesh heater may be fixed. When engaged with the porous ceramic body, the mesh heater may be adjacent to or in contact with the porous ceramic body.

[0039] The mesh heater may be attached to the porous ceramic body. The mesh heater may be attached to the porous ceramic body by any suitable means. The mesh heater may be attached to the porous ceramic body by one or more solder points, one or more mechanical fasteners such as clips or bolts, and one or more ceramic coating layers. The mesh heater may be embedded in the porous ceramic body.

[0040] The porous ceramic body may include a second surface substantially opposite the first surface. In use, the liquid aerosol-forming substrate may migrate from the second surface to the first surface through the porous ceramic body. The liquid aerosol-forming substrate may migrate through the porous ceramic body by capillary action. Alternatively, or additionally, airflow through, across, or around the porous ceramic body or mesh heater may induce a local pressure gradient in the porous ceramic body, thereby assisting in the movement of the liquid aerosol-forming substrate through the porous ceramic body.

[0041] The porous ceramic body may be adapted to absorb or to absorb a liquid aerosol-forming substrate, for example, the porous ceramic body may be adapted to absorb or to absorb at least 0.01, 0.02, 0.05, 0.1, or 0.5 ml of a liquid aerosol-forming substrate.

[0042] The cartridge may include a liquid aerosol-forming substrate storage component for storing the liquid aerosol-forming substrate. The liquid aerosol-forming substrate storage component may store the liquid aerosol-forming substrate. The liquid aerosol-forming substrate storage component may be in fluid communication with the porous ceramic body, for example, the second surface of the porous ceramic body.

[0043] The liquid aerosol-forming substrate storage component may comprise a reservoir or tank of the liquid aerosol-forming substrate. The porous ceramic body may be in fluid communication with or in contact with the reservoir of the liquid aerosol-forming substrate.

[0044] The liquid aerosol-forming substrate storage component may include a material saturated with a liquid aerosol-forming substrate. The liquid aerosol-forming substrate storage component may be positioned to convey liquid to the porous ceramic body.

[0045] The liquid aerosol-forming substrate storage component may have a fibrous or spongy structure. The liquid aerosol-forming substrate storage component may include a capillary material. The liquid aerosol-forming substrate storage component may include a bundle of capillaries. For example, the liquid aerosol-forming substrate storage component may include one or more of a plurality of fibers or threads, or microtubules. The fibers, threads, or tubes may generally be aligned to transport the liquid to the porous ceramic body.

[0046] The liquid aerosol-forming substrate storage component may comprise a sponge-like or foam-like material. The structure of the liquid aerosol-forming substrate storage component may form a plurality of small holes or channels through which liquid can be transported by capillary action.

[0047] The liquid aerosol-forming substrate storage component can comprise any suitable material or combination of materials. Examples of suitable materials include sponge or foam materials, ceramic or graphite-based materials in the form of fibers or sintered powders, foamed metal or plastic materials, and fibrous materials, such as fibrous materials made of spun or extruded fibers (such as cellulose acetate, polyester, or bonded polyolefin, polyethylene, terylene, or polypropylene fibers, nylon fibers, or ceramics). The liquid aerosol-forming substrate storage component can have any suitable capillary action and porosity to be used with different liquid physical properties.

[0048] The cartridge may include a liquid aerosol-forming substrate storage component immersed in a liquid aerosol-forming substrate. The liquid aerosol-forming substrate storage component may be in contact with a porous ceramic body. The porous ceramic body may include a first portion. The first portion of the porous ceramic body may be located between the liquid aerosol-forming substrate storage component and the mesh heater. The first portion of the porous ceramic body may include a first surface and a second surface. The second surface may face the first surface. The mesh heater may engage the first surface. The liquid aerosol-forming substrate storage component may be in contact with the second surface. The mesh heater may include a metal, for example, steel such as stainless steel.

[0049] The mesh heater area is 50, 40, or 30 mm 2 This may allow the mesh heater to be incorporated into a handheld system.

[0050] The mesh heater may comprise a network of wires. The wires may be interwoven. The mesh heater may comprise a woven or non-woven wire mesh. The wires may be electrically conductive.

[0051] The wires may be laid in a single plane. The mesh heater may be planar. Planar mesh heaters are easier to handle during manufacture and can provide a sturdy structure.

[0052] The aperture may be surrounded and defined by a wire, which may have a substantially circular, square, rectangular, hexagonal or irregular cross section.

[0053] The wires may be formed individually and braided together. The wires may be formed by etching a sheet material such as a foil. This may be particularly advantageous when the mesh heater includes an array of parallel wires. Alternatively, the wires may be stamped from a conductive foil, for example stainless steel.

[0054] The mesh heater or wire may comprise or be formed from any material having suitable electrical and mechanical properties. Suitable materials include, but are not limited to, semiconductors such as doped ceramics, "conductive" ceramics (e.g., molybdenum disilicide), carbon, graphite, metals, alloys, and composites made of ceramic and metallic materials. Such composites may include doped or undoped ceramics. An example of a suitable doped ceramic is doped silicon carbide. Examples of suitable metals include titanium, zirconium, tantalum, and platinum group metals. Examples of suitable alloys include stainless steel, constantan, nickel-containing, cobalt-containing, chromium-containing, aluminum-containing, titanium-containing, zirconium-containing, hafnium-containing, niobium-containing, molybdenum-containing, tantalum-containing, tungsten-containing, tin-containing, gallium-containing, manganese-containing, and iron-containing alloys, as well as nickel-, iron-, cobalt-, and stainless steel-based superalloys, Timetal®, iron-aluminum-based alloys, and iron-manganese-aluminum-based alloys. Timetal® is a registered trademark of Titanium Metals Corporation. The wire may be coated with one or more electrical insulators. Preferred materials for the mesh heater or wire may be 304, 316, 304L, 316L stainless steel, and graphite. Additionally, the mesh heater or wire may comprise a combination of the above materials. A combination of materials may be used to improve control of the resistance of the mesh heater. For example, a material with a high resistivity may be combined with a material with a low resistivity. This may be advantageous if one of the materials is more advantageous in other respects, such as price, machinability, or other physical and chemical parameters.

[0055] The mesh heater may include at least one wire made from a first material and at least one wire made from a second material different from the first material. This may be beneficial for electrical or mechanical reasons. For example, one or more wires may be formed from a material that has significantly different resistance with temperature, such as an iron-aluminum alloy. This allows measurement of the resistance of the wire to be used to determine temperature or temperature changes. This may be used in a puff detection system and to control the heater temperature to keep it within a desired temperature range. Rapid temperature changes may also be used as a means of detecting changes in airflow through the mesh heater resulting from a user puffing on the system.

[0056] The mesh heater may include two or more types of wire formed into a wire mesh. The two types of wire may have different resistivities. The wire with the higher resistivity is preferably oriented in the direction of current flow, e.g., nickel-chromium alloy wire. The wire with the lower resistivity may be disposed substantially perpendicular to the wire with the higher resistivity. For example, the lower resistivity wire may be stainless steel wire. Advantageously, the relatively inexpensive lower resistivity wire forms a support for the wire with the higher electrical resistivity. Furthermore, the wire with the higher electrical resistivity is generally less malleable than stainless steel wire and therefore more difficult to fabricate into thin wires.

[0057] Alternatively, the mesh heater may comprise a woven carbon yarn, which is advantageously generally more flexible than a metal mesh.

[0058] The wires may have an average diameter of at least 10, 16, 17, or 30 microns. The wires may have an average diameter of less than 100, 90, 80, 70, 60, 50, 40, or 30 microns. Preferably, the wires may have an average diameter of 15 to 30 microns, or 15 to 20 microns, for example, about 16 or 17 microns.

[0059] The wires may each have a minimum thickness of at least 10, 16, 17, or 30 microns. The wires may each have a minimum thickness of less than 100, 90, 80, 70, 60, 50, 40, or 30 microns.

[0060] The mesh heater may be a hybrid mesh heater. As used herein, the term "hybrid mesh heater" refers to a mesh heater that includes at least one wire and at least one fiber. The mesh heater may include a network of wires and fibers. The characteristics and properties of the wire described above are equally applicable to the wire of a hybrid mesh heater.

[0061] The fibers may have a different material composition than the wires. The wires and fibers may be interwoven. Thus, a mesh heater may include a woven wire and fiber mesh. The fibers may have an average diameter that is 80% to 120% of the average diameter of the wires. The wires and fibers may have substantially the same average diameter.

[0062] The wires may be substantially perpendicular to the fibers.

[0063] The fibers may have an average diameter of at least 10, 16, 17, or 30 microns. The fibers may have an average diameter of less than 100, 90, 80, 70, 60, 50, 40, or 30 microns. Preferably, the fibers may have an average diameter of 15 to 30 microns, or 15 to 20 microns, for example, about 16 or 17 microns. The fibers may comprise glass fibers. The fibers may comprise rayon fibers.

[0064] The fibers may each have a minimum thickness of at least 10, 16, 17, or 30 microns. The fibers may each have a minimum thickness of less than 100, 90, 80, 70, 60, 50, 40, or 30 microns.

[0065] The mesh heater may have a thickness of at least 30, 40, or 48 microns. When the mesh heater comprises wire or wire and fiber, the thickness of the mesh heater may be approximately three times the average diameter of the wire or fiber. For example, the thickness of the mesh heater may be 2.5 to 3.5 times the average diameter of the wire or fiber. The mesh heater may have a thickness of less than 300, 250, 200, 150, or 100 microns. The mesh heater may have a thickness of 45 to 100, 45 to 80, or 45 to 60 microns.

[0066] The mesh heater may include a sheet. The sheet may be made of metal. The sheet may include a metal such as stainless steel. The sheet may include a plurality of openings. The sheet may be perforated. The plurality of openings may include perforations in the sheet. The sheet may include a heating track, or the heating track may be disposed on the sheet. As used herein, the term "heating track" refers to a track, path, or section of material configured to be heated during use. For example, during use, an electric current may be passed through the heating track to resistively heat the heating track. In this case, the heating track may include an electrically conductive material. Alternatively, the heating track may include a susceptor material, and during use, the heating track may be inductively heated.

[0067] The mesh heater may be engaged with the porous ceramic body or the first surface of the porous ceramic body over substantially the entire surface of the mesh heater. The mesh heater may be in contact with the porous ceramic body or the first surface of the porous ceramic body. The mesh heater may be in contact with the porous ceramic body or the first surface of the porous ceramic body over substantially the entire surface of the mesh heater. The mesh heater may be engaged with the porous ceramic body or the first surface of the porous ceramic body such that no point between the porous ceramic body and the mesh heater is more than 500, 300, 100, 75, 50, or 25 microns apart. All points of the mesh heater may be within 500, 300, 100, 75, 50, or 25 microns of at least one point on the porous ceramic body or the first surface of the porous ceramic body. Advantageously, minimizing any spacing between the mesh heater and the porous ceramic body may improve transport of the liquid aerosol-forming substrate from the porous ceramic body into the openings of the mesh heater.

[0068] The porous ceramic body has a relatively low linear coefficient of thermal expansion, e.g., 30, 20, or 10x10 at 25 degrees Celsius. -6 The mesh heater may include a material having a linear coefficient of thermal expansion less than m / (mK). Advantageously, a low coefficient of thermal expansion may reduce the risk of particles from the porous ceramic body becoming detached when the porous ceramic body is heated by the mesh heater. If the mesh heater is in contact with the porous ceramic body, this risk may be particularly high at the contact points between the mesh heater and the porous ceramic body.

[0069] The porous ceramic body may comprise a material having a linear coefficient of thermal expansion at 25 degrees Celsius that is 30% to 300% of the linear coefficient of thermal expansion of the mesh heater at 25 degrees Celsius. Advantageously, this may reduce the risk of particles from the porous ceramic body becoming detached from the body when the porous ceramic body is heated by the mesh heater.

[0070] The porous ceramic body may comprise one or more of steatite, alumina, and zirconia. Advantageously, these materials are chemically stable and have relatively low coefficients of thermal expansion.

[0071] The porous ceramic body may include pores having an average pore size of less than 40, 30, 20, 10, or 8 microns. The porous ceramic body may include pores having an average pore size of greater than 2.5, 5, 10, or 20 microns. The porous ceramic body may include pores having an average pore size of 2.5 to 40 microns, or 2.5 to 30 microns, or 2.5 to 20 microns, or 2.5 to 10 microns, or 2.5 to 8 microns, or 5 to 40 microns, or 5 to 30 microns, or 5 to 20 microns, or 5 to 10 microns, or 10 to 40 microns, or 10 to 30 microns, or 10 to 20 microns, or 20 to 40 microns, or 20 to 30 microns, or 30 to 40 microns.

[0072] A preferred porous ceramic body may have a porosity of 30% to 60% and may have pores with an average pore size of 5 to 30 microns. A particularly preferred porous ceramic body may have a porosity of 40% to 60% and may have pores with an average pore size of 5 to 10 microns. Another particularly preferred porous ceramic body may have a porosity of 30% to 40% and may have pores with an average pore size of 20 to 30 microns.

[0073] The porous ceramic body may include a first portion and a protrusion. The protrusion may be located around a periphery of the first portion. The protrusion may extend around substantially the entire periphery of the first portion. The protrusion may extend substantially perpendicularly from a surface of the first portion. Advantageously, the protrusion may enable the porous ceramic body to withstand large forces during manufacturing and assembly without fracture.

[0074] The first portion may include a length, a width perpendicular to the length, and a thickness perpendicular to the length and width. The length and width may be at least two, three, or five times the thickness.

[0075] The first portion may have a substantially circular cross section. The first portion may have a diameter and a thickness. The diameter may be at least two, three, or five times the thickness.

[0076] The first portion may have a thickness of at least 1, 1.5, 2, or 2.5 mm. Advantageously, a larger thickness may improve the strength of the first portion of the porous ceramic body. The first portion may have a thickness of less than 6, 5, or 4 mm. Advantageously, a smaller thickness may improve the wicking ability of the first portion and, therefore, the transport of the liquid aerosol-forming substrate through the first portion. Thus, the first portion may have a thickness of 1 to 6 mm, or 1 to 5 mm, or 1.5 to 5 mm, or 1.5 to 4 mm.

[0077] The protrusions may have a width of at least 1, 1.5, 2, or 2.5 mm. The protrusions may have a width of less than 6, 5, or 4 mm. Thus, the protrusions may have a width of 1 to 6 mm, or 1 to 5 mm, or 1.5 to 5 mm, or 1.5 to 4 mm. The width of the protrusions may be 50% to 150% of the thickness of the first portion.

[0078] The first portion of the porous ceramic body may be located between the liquid aerosol-forming substrate storage component and the mesh heater. The first portion of the porous ceramic body may include a first surface and a second surface. The second surface may face the first surface. The mesh heater may engage the first surface. The liquid aerosol-forming substrate storage component may contact the second surface. The protrusions may extend from the second surface. The protrusions may surround the liquid aerosol-forming substrate storage component.

[0079] The porous ceramic body may include channels extending therethrough. The first portion of the porous ceramic body may include the channels. The channels may extend through the first portion. The channels may extend substantially through the thickness of the first portion. The mesh heater may be substantially flat or planar, and the channels may extend substantially perpendicular to the plane of the mesh heater. The channels may have a diameter of at least 300, 400, or 500 microns. The channels may have a diameter of less than 800, 700, or 600 microns. Advantageously, the channels may increase the porosity of the porous ceramic body, which may enable the porous ceramic body to retain more liquid aerosol-forming substrate. Furthermore, the channels may improve the wicking ability of the porous ceramic body. Thus, the channels may improve the transport of liquid aerosol-forming substrate through the porous ceramic body.

[0080] The mesh heater may be attached to the porous ceramic body by a solder point or points, which may comprise silver or tin.

[0081] The mesh heater may be attached to the porous ceramic body by providing a metal segment or segments between the porous ceramic body and the mesh heater (e.g., by applying the metal segment to the porous ceramic body or by coating the mesh heater with a metal), positioning the mesh heater in engagement with the porous ceramic body, and optionally melting the metal segment and solidifying the metal segment while forcing the mesh heater and porous ceramic body toward each other. As the metal segment solidifies, it bonds the porous ceramic body to the mesh heater.

[0082] The mesh heater may be attached to the porous ceramic body by providing a metal segment or segments between the mesh heater and the porous ceramic body (e.g., by applying a metal segment to the porous ceramic body or by coating the mesh heater with a metal), and optionally forcing the mesh heater and porous ceramic body toward each other while heating the metal segment. The metal segment may adhere the porous ceramic body to the mesh heater.

[0083] When multiple metal segments are used, the segments may be spaced apart, e.g., spaced apart within the plane of the mesh heater. One or more segments may be or include blobs or portions of metal on the porous ceramic body or on the mesh heater. Thus, there may be multiple spaced apart blobs or portions of metal on the porous ceramic body, or on the mesh heater, or on both the porous ceramic body and the mesh heater.

[0084] Therefore, by attaching a mesh heater to the porous ceramic body as described above, the cartridge may include a metal segment between the porous ceramic body and the mesh heater. The metal segment may include silver or tin. However, it should be noted that the cartridge may include a metal segment between the porous ceramic body and the mesh heater for other reasons.

[0085] The metal segment may adhere the porous ceramic body to the mesh heater. The metal segment may comprise silver or tin.

[0086] The mesh heater, or a portion thereof, may comprise a metal coating in whole or in part. The metal coating may comprise tin or silver. This may be the case when metal segments are applied by coating the mesh heater with the metal.

[0087] The mesh heater may be attached to the porous ceramic body by positioning the mesh heater in engagement with the porous ceramic body and placing the second ceramic coating layer on the mesh heater such that at least a portion of the mesh heater is between the porous ceramic body and the second ceramic coating layer. The porous ceramic body, or the second ceramic coating layer, or both the porous ceramic body and the second ceramic coating layer may then be sintered. Alternatively, or additionally, the porous ceramic body, or the second ceramic coating layer, or both the porous ceramic body and the second ceramic coating layer may be sintered before the second ceramic coating layer is placed on the mesh heater.

[0088] The characteristics and properties of the porous ceramic body may also be applied to the second ceramic coating layer, for example, the characteristics and properties related to the material, material properties, pore size, and porosity may all be applied to the second ceramic coating layer.

[0089] Thus, by attaching the mesh heater to the porous ceramic body as described above, the mesh heater can be located between the porous ceramic body and the second ceramic coating layer. However, it should be noted that the cartridge may include the second ceramic coating layer for other reasons.

[0090] The second ceramic coating layer can include a ceramic material. The porous ceramic body can also include a ceramic material. Thus, both the porous ceramic body and the second ceramic coating layer can include one or more of alumina, steatite, and zirconia.

[0091] The second ceramic coating layer may have a thickness of less than 5000, 1000, 500, or 200 microns. The second ceramic coating layer may have a thickness of at least 10, 100, 500, or 1000 microns. Thus, the second ceramic coating layer may have a thickness of 500 to 5000 microns, for example, 1000 to 2000 microns.

[0092] The second ceramic coating layer may be in contact with the mesh heater. The second ceramic coating layer may be in contact with the porous ceramic body. The mesh heater may be attached to the porous ceramic body by the second ceramic coating layer.

[0093] The second ceramic coating layer may cover less than 80%, or 65%, or 50% of the surface of the mesh heater, which may improve aerosol generation compared to a second ceramic coating layer that covers a greater percentage of the surface of the mesh heater.

[0094] The cartridge may include an air inlet. The cartridge may include an air outlet. The air inlet may be in fluid communication with the air outlet. The mesh heater may be located downstream of the air inlet. The mesh heater may be located upstream of the air outlet.

[0095] The cartridge may include a mouthpiece. The mouthpiece may be or include an air outlet. In use, when the cartridge is coupled to an aerosol generating device, a user may inhale into the mouthpiece of the cartridge. This may cause air to flow through the air inlet and then across, over, through, or through the mesh heater and then through the air outlet.

[0096] The cartridge may include first and second electrical contacts electrically connected to the mesh heater, and the electrical contacts may include one or more of tin, silver, gold, copper, aluminum, steel such as stainless steel, phosphor bronze, tin alloyed with antimony, tin alloyed with zirconium, tin alloyed with bismuth, or tin alloyed with other components that improve resistance to organic acids.

[0097] The electrical contacts may be fixed directly to the wires of the mesh heater. The electrical contacts may be positioned between the wires and the porous ceramic body. For example, the contacts may be formed from tin or silver plated onto or otherwise attached to the porous ceramic body. The contacts may be more easily bonded to the wires than to the porous ceramic body. The electrical contacts may be integral with the wires. For example, the mesh heater may be formed by etching a conductive sheet to provide multiple wires between two electrical contacts.

[0098] The electrical contacts may be configured to form an electrical connection with corresponding electrical contacts on the aerosol generation device when the cartridge is coupled with the device.

[0099] According to a third embodiment of the present disclosure, there is provided an aerosol generation system comprising an aerosol generator and a cartridge. The cartridge may be the cartridge according to the first embodiment. The cartridge may be the cartridge according to the second embodiment.

[0100] The aerosol generator may be configured to couple to the cartridge. For example, the aerosol generator may be configured to couple to and detach from the cartridge. The aerosol generator may be configured to couple to and detach from the cartridge via a snap-fit ​​connection, corresponding threads, or any other suitable means. The aerosol generator may be configured to receive at least a portion of the cartridge. For example, the aerosol generator may include a chamber configured to receive at least a portion of the cartridge.

[0101] The aerosol generating device may include an air inlet. The aerosol generating device may include an air outlet. The air outlet of the aerosol generating device may be in fluid communication with the air inlet of the cartridge.

[0102] The aerosol generating device may include a power source, such as a battery, which may be configured to provide power to the mesh heater when the cartridge is coupled with the device, for example, to resistively heat the mesh heater.

[0103] The power source may be electrically connected to the first and second electrical contacts of the device. These first and second electrical contacts may be configured to form an electrical connection with corresponding electrical contacts on the cartridge when the cartridge is coupled to the device. The mesh heater may be configured to be resistively heated. The mesh heater may be or include a wire or an electrically resistive track connected to the electrical contacts on the cartridge. The wire or track may heat when the power source passes an electric current through the wire or track. Thus, when the cartridge is coupled to the aerosol generation device, the power source of the aerosol generation device may be configured to provide power to the mesh heater. That is, the power source may be able to pass an electric current through the mesh heater, or the wire or track of the mesh heater, to resistively heat the mesh heater.

[0104] The cartridge or aerosol generator may include an inductor, such as an induction coil. The mesh heater may be or include a susceptor material.

[0105] The power supply can be configured to pass a current through the inductor such that the inductor generates a varying electromagnetic field, which can then generate eddy currents and hysteresis losses in the susceptor material, which can heat the susceptor material. Thus, the power supply and inductor can be configured to inductively heat the mesh heater.

[0106] The susceptor material may be or include any material that can be inductively heated to a temperature sufficient to generate an aerosol from the aerosol-forming substrate. Preferred susceptor materials may be heated to temperatures exceeding 100, 150, 200, or 250 degrees Celsius. Preferred susceptor materials may include metal or carbon. Preferred susceptor materials may include ferromagnetic materials, such as ferritic iron, or ferromagnetic steel or stainless steel. Suitable susceptor elements may be or include aluminum. Preferred susceptor materials may include or be formed from 400 series stainless steel, such as grade 410, grade 420, or grade 430 stainless steel. Different materials dissipate different amounts of energy when placed in electromagnetic fields with similar frequencies and field strengths. Thus, susceptor material parameters, such as material type and size, may be tailored to provide desired power dissipation within a known electromagnetic field.

[0107] The inductor may be an induction coil. The induction coil may be located within the cartridge. The induction coil may be disposed around the mesh heater. For example, the induction coil may be spiral around the mesh heater. The inductor may be electrically connected to electrical contacts on the cartridge. When the cartridge is coupled to an aerosol generating device, these electrical contacts may be electrically connected to corresponding electrical contacts on the device that are electrically connected to a power source of the device. Thus, when the cartridge is coupled to the device, the power source of the device may be configured to pass a current through the inductor to generate a varying electromagnetic field, thereby heating the susceptor material of the mesh heater.

[0108] An inductor, such as an induction coil, may be located within the aerosol generating device. The inductor may be electrically connected to a power source. The aerosol generating device may include a chamber for receiving at least a portion of the cartridge. The induction coil may be disposed around at least a portion of the chamber. For example, the induction coil may be spiraled around at least a portion of the chamber. Thus, when the cartridge, or a portion thereof, is received within the chamber, the induction coil may be disposed around or spiral around the mesh heater. Thus, when the cartridge is coupled to the device, the power source of the device may be configured to pass a current through the inductor to generate a varying electromagnetic field, thereby heating the susceptor material of the mesh heater.

[0109] The aerosol generating device may include a controller, which may be configured to control the supply of power from the power source, and thus the heating of the mesh heater.

[0110] The following provides a non-exhaustive list of non-limiting examples. These examples are described in sections. Any one or more of the features of these examples may be combined with any one or more features of another example, embodiment, or aspect described herein.

[0111] A. A cartridge for use in an aerosol generation system, the cartridge comprising: a porous ceramic body having a porosity of 30% to 65%; A cartridge comprising: a mesh heater engaged with a porous ceramic body, the mesh heater including a plurality of openings, each opening having a dimension between 50 microns and 200 microns. B. A cartridge as described in paragraph A, wherein, in use, the liquid aerosol-forming substrate is drawn from the porous ceramic body into an opening in the mesh heater. C. A cartridge according to paragraphs A or B, wherein in use, the liquid aerosol-forming substrate is drawn into the openings of the mesh heater by capillary action. D. The cartridge according to any one of paragraphs A to C, wherein the mesh heater is substantially flat or substantially planar. E. The cartridge of paragraph D, wherein, in use, the direction of bulk liquid aerosol-forming substrate movement is substantially perpendicular to the plane of the mesh heater. F. The cartridge of any of paragraphs A to E, wherein the mesh heater or a portion thereof is substantially parallel to the first plane of the porous ceramic body. G. The cartridge of paragraph F, wherein the mesh heater is attached to the first surface of the porous ceramic body. H. The cartridge of paragraphs F or G, wherein the porous ceramic body includes a second surface substantially opposite the first surface. I. The cartridge of paragraph H, wherein, in use, the liquid aerosol-forming substrate moves in a direction from the second surface to the first surface, for example, from the second surface to the first surface. J. The cartridge according to any one of paragraphs A to I, wherein the cartridge comprises a liquid aerosol-forming substrate storage component for storing a liquid aerosol-forming substrate. K. The cartridge of paragraph J, wherein the liquid aerosol-forming substrate storage component is in fluid communication with the porous ceramic body. L. The cartridge of paragraph H or I, wherein the cartridge includes a liquid aerosol-forming substrate storage component for storing a liquid aerosol-forming substrate, the liquid aerosol-forming substrate storage component being in fluid communication with the second surface of the porous ceramic body. M. The cartridge according to any one of paragraphs A to L, wherein the mesh heater contains a metal. N. The mesh heater includes a steel cartridge as described in paragraph M. O. The cartridge of any of paragraphs A to N, wherein the mesh heater comprises a network of wires. P. The mesh heater is a cartridge according to paragraph O, comprising a woven wire mesh. Q. The cartridge described in any of paragraphs A to P, wherein the mesh heater is a hybrid mesh heater including a network of wires and fibers, and the fibers have a different material composition than the wires. R. The cartridge according to paragraph Q, wherein the wire comprises a metal. S. A cartridge according to paragraph R, wherein the wire comprises steel. T. A cartridge described in any one of paragraphs Q to S, wherein the wire is substantially perpendicular to the fibers. U. A cartridge as described in any of paragraphs Q-T, wherein the mesh heater comprises a woven wire and fiber mesh. V. A cartridge described in any one of paragraphs Q to U, wherein the fibers have an average diameter that is 80% to 120% of the average diameter of the wire. W. A cartridge according to any of paragraphs Q through V, wherein the fibers have an average diameter of at least 10 microns. X. A cartridge described in any of paragraphs Q to W, wherein the fibers have an average diameter of less than 100 microns. Y. The cartridge according to any one of paragraphs Q to X, wherein the fibers are glass fibers. Z. The cartridge according to any one of paragraphs Q to X, wherein the fibers are rayon fibers. AA. The cartridge of any of paragraphs O-Z, wherein the wire has an average diameter of at least 10 microns. AB. The cartridge of any of paragraphs O-AA, wherein the wire has an average diameter of less than 100 microns. AC. The cartridge according to any one of paragraphs A to N, wherein the mesh heater includes a sheet. AD. A cartridge according to paragraph AC, wherein the seat is made of metal. AE. The cartridge of paragraphs AC or AD, wherein the sheet includes a plurality of apertures. AF. The cartridge according to any one of paragraphs AC to AE, wherein the sheet is perforated. AG. The cartridge of any of paragraphs AC-AF, wherein the sheet includes a heating track disposed thereon. AH. The cartridge of any of paragraphs A-AG, wherein the mesh heater is substantially flat or substantially planar and the thickness of the mesh heater is greater than 30 microns. AI. The cartridge of any of paragraphs A-AH, wherein the mesh heater engages with the porous ceramic body over substantially the entire surface of the mesh heater. AJ. The cartridge of paragraph AI, wherein the mesh heater contacts the porous ceramic body over substantially the entire surface of the mesh heater. AK. The cartridge of any of paragraphs A-AJ, wherein the porous ceramic body comprises one or more of steatite, alumina, and zirconia. AL. The cartridge of any of paragraphs A-AK, wherein the porous ceramic body includes pores having an average pore size of 2.5 microns to 40 microns. AM. The cartridge of any one of paragraphs A to AL, wherein the porous ceramic body includes a first portion and a protrusion. AN. The cartridge of paragraph AM, wherein the protrusion is located on the periphery of the first portion. AO. The cartridge of paragraph AN, wherein the protrusion extends around substantially the entire periphery of the first portion. AP. A cartridge according to any one of paragraphs AM to AO, wherein the protrusion extends substantially perpendicularly from the surface of the first portion. AQ. A cartridge described in any of paragraphs AM-AP, wherein the first portion includes a length, a width perpendicular to the length, and a thickness perpendicular to the length and width, and the length and width are at least twice the thickness. AR. The cartridge of any of paragraphs AM-AP, wherein the first portion has a substantially circular cross-section. AS. The cartridge of paragraph AR, wherein the first portion has a diameter and a thickness, and the diameter is at least twice the thickness. AT. A cartridge described in any one of paragraphs AM to AS, wherein the first portion has a thickness of at least 1.5 mm. AU. A cartridge described in any one of paragraphs AM to AT, wherein the first portion has a thickness of less than 6 mm. AV. The cartridge of any one of paragraphs AM to AU, wherein the protrusion has a width of at least 1.5 mm. AW. The cartridge according to any one of paragraphs AM to AV, wherein the protrusion has a width of less than 6 mm. AX. The cartridge of any of paragraphs A-AW, wherein the porous ceramic body includes a channel extending therethrough. AY. A cartridge described in any of paragraphs AM-AW, wherein the first portion of the porous ceramic body includes a channel extending therethrough. AZ. The cartridge of paragraph AY, wherein the channel extends substantially through the thickness of the first portion. BA. The cartridge of paragraphs AX, AY, or AZ, wherein the mesh heater is substantially flat or substantially planar and the channels extend substantially perpendicular to the plane of the mesh heater. BB. A cartridge according to any of paragraphs AX-BA, wherein the channel has a diameter of at least 300 microns. BC. A cartridge according to any of paragraphs AX-BB, wherein the channel has a diameter of less than 800 microns. BD. A cartridge according to any of paragraphs A-BC, wherein the mesh heater is attached to the porous ceramic body by solder points. BE. The cartridge of paragraph BD, wherein the solder points comprise silver or tin. BF. A cartridge described in any one of paragraphs A to BE, comprising a metal segment positioned between the porous ceramic body and the mesh heater. BG. The cartridge of paragraph BF, wherein the mesh heater is bonded to the porous ceramic body by segments of metal. BH. The cartridge of paragraphs BF or BG, wherein the metal segment comprises silver or tin. BI. A cartridge described in any one of paragraphs A to BH, wherein the mesh heater is located between the porous ceramic body and the second ceramic coating layer. BJ. The cartridge of paragraph BI, wherein the second ceramic coating layer comprises a ceramic material and the porous ceramic body comprises a ceramic material. BK. The cartridge of paragraphs BI or BJ, wherein the second ceramic coating layer has a thickness of less than 5,000 microns. BL. The cartridge of paragraphs BI, BJ, or BK, wherein the second ceramic coating layer has a thickness of at least 10 microns. BM. The cartridge of any one of paragraphs BI to BL, wherein the second ceramic coating layer covers less than 80% of the surface of the mesh heater. BN. A cartridge according to any one of paragraphs BI to BM, wherein the second coating layer is in contact with a mesh heater. BO. The cartridge of any of paragraphs BI-BN, wherein the mesh heater is attached to the porous ceramic body by a second ceramic coating layer. BP. The cartridge according to any one of paragraphs A to BO, wherein the cartridge includes an electrical contact electrically connected to the mesh heater. BQ. A cartridge as described in paragraph BP, wherein the electrical contacts include tin, silver, gold, copper, aluminum, steel such as stainless steel, phosphor bronze, tin alloyed with antimony, tin alloyed with zirconium, tin alloyed with bismuth, or tin alloyed with other components that improve resistance to organic acids. BR. An aerosol generating system comprising an aerosol generating device and a cartridge according to any one of paragraphs A to BQ. BS. The aerosol generation system of paragraph BR, wherein the aerosol generation device is configured to be coupled to the cartridge. BT. The aerosol generation system of paragraphs BR or BS, wherein the aerosol generation device includes a power source configured to provide power to the mesh heater to resistively heat the mesh heater. BU. An aerosol generation system according to paragraphs BR or BS, wherein the aerosol generation device comprises a power source, the cartridge or the aerosol generation device comprises an inductor, and the power source and inductor are configured to inductively heat the mesh heater.

[0112] The embodiments will now be further described with reference to the figures. [Brief explanation of the drawings]

[0113] [Figure 1] FIG. 1 shows a cross-sectional view of an aerosol generation system incorporating a cartridge having a first heater assembly. [Figure 2] FIG. 2 shows a cross-sectional view of a cartridge incorporating the first heater assembly. [Figure 3] FIG. 3 shows a perspective view of the first heater assembly. [Figure 4] FIG. 4 shows a cross-sectional view of the first heater assembly. [Figure 5] FIG. 5 shows a perspective view of a second heater assembly. [Figure 6] FIG. 6 shows a cross-sectional view of a second heater assembly. [Figure 7] FIG. 7 shows a perspective view of a third heater assembly. [Figure 8] FIG. 8 shows a cross-sectional view of a third heater assembly. [Figure 9] FIG. 9 shows a cross-sectional view of an aerosol generation system incorporating a cartridge with a third heater assembly. DETAILED DESCRIPTION OF THE INVENTION

[0114] 1 shows a cross-sectional view of an aerosol generation system 100. The aerosol generation system 100 comprises an aerosol generating device 150 and a cartridge 200. In this embodiment, the aerosol generation system 100 is an electrically operated smoking system.

[0115] The aerosol generating device 150 is portable and has a size comparable to that of a conventional cigar or cigarette. The device 150 includes a battery 152, such as a lithium iron phosphate battery, and a controller 154 electrically connected to the battery 152. The device 150 also includes two electrical contacts 156, 158 electrically connected to the battery 152. This electrical connection is a wired connection and is not shown in FIG. 1.

[0116] Cartridge 200 includes an air inlet 202, an air outlet 204, and a first heater assembly 300. Air inlet 202 is in fluid communication with air outlet 204. Heater assembly 300 is positioned downstream of air inlet 202 and upstream of air outlet 204. Heater assembly 300 includes a porous ceramic body 302 and a substantially planar mesh heater 304 engaged with porous ceramic body 302.

[0117] The mesh heater 304 comprises a hybrid mesh including stainless steel wires 306 and glass fibers 308. The stainless steel wires 306 are interwoven with the glass fibers 308 and are substantially perpendicular to the glass fibers 308. Thus, the mesh heater 304 comprises a woven hybrid mesh. The mesh heater 304 is attached to the porous ceramic body 302 by two solder points 310, 312. In this embodiment, the solder points 310, 312 are formed from tin, although silver or another suitable material may be used. Each of these solder points 310, 312 is electrically connected to electrical contacts 214, 216 on the cartridge. This electrical connection is a wired connection and is not shown in FIG. 1 . Through this electrical connection, the stainless steel wires 306 are electrically connected to the electrical contacts 214, 216.

[0118] The porous ceramic body 302 contains numerous pores within which the liquid aerosol-forming substrate is held.

[0119] 1, the aerosol generation device 150 is coupled to a cartridge 200. In this embodiment, the cartridge 200 is coupled to the aerosol generation device 150 via protrusions 206, 208 that form a snap-fit ​​connection with corresponding openings 160, 162 on the aerosol generation device 150.

[0120] The cartridge 200 further includes a liquid aerosol-forming substrate storage component 288 in fluid communication with the porous ceramic body 302. The liquid aerosol-forming substrate storage component 288 contacts the first portion 320 of the porous ceramic body 302. The liquid aerosol-forming substrate storage component 1008 may be adhered to the porous ceramic body 302 with an adhesive, held in place by friction, or held in place by another suitable means. The liquid aerosol-forming substrate storage component 288 in this example is a capillary material having a fibrous or sponge-like structure, although in other embodiments, a liquid aerosol-forming substrate reservoir or tank may be used. The capillary material is formed from polyester, although any suitable material may be used. The capillary material is saturated with the aerosol-forming substrate. Thus, in FIG. 1 , the aerosol-forming substrate is stored within the pores of the porous ceramic body 302 and within the liquid aerosol-forming substrate storage component 288.

[0121] In use, a user draws on the air outlet 204 of the cartridge 200. At the same time, the user presses a button (not shown) on the aerosol generating device 150. Pressing the button sends a signal to the controller 154, which then supplies power from the battery 152 to the mesh heater 302 via the device's electrical contacts 156, 158 and the cartridge's electrical contacts 214, 216. This causes current to flow through the stainless steel wire 306 of the mesh heater 304, which resistively heats the stainless steel wire 306 and heats the mesh heater 304 as a whole. In other embodiments, an airflow or pressure sensor is located within the cartridge 200 and electrically connected to the controller 154. The airflow or pressure sensor detects that the user is drawing on the air outlet 204 of the cartridge 200 and sends a signal to the controller 154, which then supplies power to the mesh heater 304. Thus, in these embodiments, the user does not need to press a button to heat the mesh heater 304. The liquid aerosol-forming substrate held within the pores of the porous ceramic body 302 is drawn by capillary action into the openings of the mesh heater 304. The mesh heater 304 heats the liquid aerosol-forming substrate, vaporizing it.

[0122] As the liquid aerosol-forming substrate is drawn from the porous ceramic body 302 into the openings of the mesh heater 304 and vaporized, the liquid aerosol-forming substrate is also drawn from the liquid aerosol-forming substrate storage component 288 into the porous ceramic body 302. Thus, the user may be able to generate more aerosol than if the liquid aerosol-forming substrate storage component 288 were not present.

[0123] As a user draws on the air outlet 204 of the cartridge 200, air is drawn into the air inlet 202. This air then moves around the heater assembly 300 and toward the air outlet 204. This air flow entrains vapor formed by heating the liquid aerosol-forming substrate by the mesh heater 304. This entrained vapor then cools and condenses to form an aerosol. This aerosol is then delivered to the user via the air outlet 204.

[0124] 2 shows a cross-sectional view of a cartridge 200 incorporating a first embodiment of a heater assembly 300. In FIG. 2, the cartridge 200 is no longer coupled to the aerosol generating device 150.

[0125] 3 and 4 show a perspective view and a cross-sectional view, respectively, of a first heater assembly 300. FIG. 3 also shows the liquid aerosol-forming substrate storage component 288. The heater assembly 300 includes a porous ceramic body 302 and a mesh heater 304. The mesh heater 304 contacts the porous ceramic body 302 over substantially the entire surface of the mesh heater 304.

[0126] The stainless steel wires 306 and glass fibers 308 of the mesh heater 304 are interwoven. Thus, the mesh heater 304 comprises a woven hybrid mesh. The stainless steel wires 306 and glass fibers 308 of the mesh heater 304 have diameters of approximately 17 microns. The thickness of the mesh heater 304 is approximately 51 microns. In FIG. 3, the openings 309 of the mesh heater are visible. These openings 309 each have a dimension of approximately 70 microns. In this example, the openings 309 have a substantially square cross-section, with a dimension equal to the length of a side of the square cross-section.

[0127] The porous ceramic body 302 is formed entirely from alumina. The porous ceramic body 302 contains pores with pore sizes between 2.5 microns and 40 microns. The average pore size is about 10 microns. The porosity of the porous ceramic body 302 is about 40%.

[0128] The porous ceramic body 302 includes a first portion 320 and a protrusion 322. The first portion 320 has a substantially circular cross-section. The circular cross-section has a diameter of approximately 15 mm. The first portion 320 has a thickness of approximately 2 mm.

[0129] The protrusion 322 has a substantially annular or ring-like cross-section. The protrusion 322 is located on the periphery of the first portion 320 and extends around substantially the entire periphery of the first portion 320. The protrusion 322 extends approximately 10 mm substantially perpendicularly from the surface of the first portion 320. The protrusion 322 has a width of approximately 2 mm. The width of a substantially annular protrusion is the difference between the outer diameter and the inner diameter of the annular portion.

[0130] The first portion 320 of the porous ceramic body 302 includes a channel 314 extending therethrough. The channel 314 extends substantially through the thickness of the first portion 320. As such, the channel 314 extends substantially perpendicular to the plane of the mesh heater 304. The channel 314 has a diameter of approximately 500 microns.

[0131] 5 and 6 show a perspective view and a cross-sectional view, respectively, of a second heater assembly 500. FIG. 5 also shows the liquid aerosol-forming substrate storage component 288.

[0132] The second heater assembly 500 includes a porous ceramic body 502 and a mesh heater 504. The porous ceramic body 502 is identical to the porous ceramic body 302 of the first heater assembly 300.

[0133] The mesh heater 504 comprises a hybrid mesh including stainless steel wires 506 and rayon fibers 508. The stainless steel wires 506 are interwoven with the rayon fibers 508 and are substantially perpendicular to the rayon fibers 508. The mesh heater 504 engages the porous ceramic body 502. Specifically, the mesh heater 504 is attached to the porous ceramic body 502. To attach the mesh heater 504 to the porous ceramic body 502, two segments of metal 510, 512 are applied to the porous ceramic body 502. In this embodiment, the metal segments 510, 512 are formed from tin, although silver or other suitable materials may be used. The mesh heater 504 is then positioned such that the metal segments 510, 512 are between the porous ceramic body 502 and the mesh heater 504. The mesh heater 504 is then forced into the metal segments 510, 512 toward the porous ceramic body 502. Metal segments 510, 512 bond porous ceramic body 502 to mesh heater 504. In some embodiments, the metal segments are coated onto the mesh heater. In some embodiments, heat is applied while forcing the mesh heater toward the porous ceramic body.

[0134] The second heater assembly 500 also includes two electrodes 511, 513. These electrodes are formed from tin and are in contact with several stainless steel wires 506 and rayon fibers 508 of the mesh heater 504. When the second heater assembly 500 replaces the first heater assembly 300 in the cartridge 200 shown in Figures 1 and 2, the electrodes 511, 513 are each electrically connected to electrical contacts 214, 216 on the cartridge 200. This electrical connection is a wired connection and is not shown in Figures 1 or 2. The stainless steel wire 506 is electrically connected to the electrical contacts 214, 216 through this electrical connection.

[0135] The stainless steel wires 506 and rayon fibers 508 of the mesh heater 504 have a diameter of about 17 microns. The thickness of the mesh heater 504 is approximately 51 microns. In Figure 5, the openings 509 in the mesh heater are visible. These openings each have a dimension of about 70 microns. In this example, the openings 509 have a substantially square cross-section, with a dimension equal to the length of a side of the square cross-section.

[0136] Mesh heater 504 contacts porous ceramic body 502 over substantially the entire surface of mesh heater 504. In use, a liquid aerosol-forming substrate held within the pores of porous ceramic body 502 is drawn into openings 509 in mesh heater 504.

[0137] In use, the second heater assembly 500 functions in much the same way as the first heater assembly 300. The second heater assembly 500 can replace the first heater assembly 300 shown in the aerosol generation system of Figure 1. In this case, the system 100 functions similarly, but power is supplied to the mesh heater 504 of the second heater assembly 500 through the tin electrodes 511, 513 (rather than through the solder points 310, 312 of the first heater assembly 300).

[0138] 7 and 8 show a perspective view and a cross-sectional view of a third heater assembly 700. FIG. 7 also shows the liquid aerosol-forming substrate storage component 1008.

[0139] The third heater assembly 700 includes a porous ceramic body 702 and a mesh heater 704. The porous ceramic body 702 is identical to the porous ceramic body of the first heater assembly 302.

[0140] Mesh heater 704 includes stainless steel perforated plates 706. The stainless steel of plates 706 of mesh heater 704 is an effective susceptor material. Thus, plates 706 act as susceptors.

[0141] To attach the plate 706 to the porous ceramic body 702, the plate 706 is placed in contact with the porous ceramic body 702. A coating layer 708 of ceramic paste is then applied over the plate 706. A portion of the paste is located on the plate 706 and a portion of the paste is located on the porous ceramic body 702. The paste applied to the porous ceramic body 702 can be applied across the periphery of the plate 706, through the openings 709 in the plate 706, or both, as in this example. At least a portion of the plate 706 is located between the coating layer 708 and the porous ceramic body 702. The coating layer 708 is then sintered. The porous ceramic body 702 is sintered simultaneously. In this example, the coating layer 708 is formed from the same alumina as the alumina of the porous ceramic body 702. The coating layer 708 bonds the porous ceramic body 702 to the plate 706.

[0142] The perforations in plate 706 form openings 709 having a substantially circular cross-section. In Figure 7, the openings 709 in mesh heater 704 are visible. These openings each have a dimension of approximately 75 microns. In this example, openings 709 have a substantially circular cross-section, with a dimension equal to the diameter of the circular cross-section.

[0143] The mesh heater 704 contacts the porous ceramic body 702 over substantially the entire surface of the mesh heater 704 .

[0144] 9 shows a cross-sectional view of an aerosol generation system 900. The aerosol generation system 900 comprises an aerosol generating device 950 and a cartridge 1000 having a third heater assembly 700. In this embodiment, the aerosol generation system 900 is an electrically operated smoking system.

[0145] The aerosol generating device 950 is portable and has a size comparable to a conventional cigar or cigarette. The device 950 includes a battery 952, such as a lithium iron phosphate battery, and a controller 954 electrically connected to the battery 952. The device 950 also includes an induction coil 956 electrically connected to the battery 952. The device 950 also includes an air inlet 958 and an air outlet 960 in fluid communication with the air inlet 958.

[0146] The cartridge 1000 includes an air inlet 1002, an air outlet 1004, and a third heater assembly 700. The air inlet 1002 is in fluid communication with the air outlet 1004. The heater assembly 700 is positioned downstream of the air inlet 1002 and upstream of the air outlet 1004. As shown in FIG. 9 , when the cartridge 1000 is coupled to an aerosol generating device 950, the air outlet 960 of the device 950 is adjacent to the air inlet 1002 of the cartridge 1000. Thus, during use, when a user draws on the air outlet 1004 of the cartridge 1000, air passes through the air inlet 958 of the device 950, then through the air outlet 960 of the device 950, then through the air inlet 1002 of the cartridge 1000, then through the heater assembly 700, and then out the air outlet 1004 of the cartridge 1000.

[0147] In FIG. 9, cartridge 1000 is coupled to aerosol generation device 950 by mating threads 1006 of cartridge 1000 with corresponding threads 962 of aerosol generation device 950 .

[0148] The cartridge 1000 further includes a liquid aerosol-forming substrate storage component 1008 in fluid communication with the porous ceramic body 702. The liquid aerosol-forming substrate storage component 1008 contacts the first portion 720 of the porous ceramic body 702. The liquid aerosol-forming substrate storage component 1008 may be adhered to the porous ceramic body 702 with an adhesive, held in place by friction, or held in place by another suitable means. The liquid aerosol-forming substrate storage component 1008 in this example is a capillary material having a fibrous or spongy structure. The capillary material is formed from polyester, although any suitable material may be used. The capillary material is saturated with the aerosol-forming substrate. Thus, in FIG. 9 , the aerosol-forming substrate is stored within the pores of the porous ceramic body 702 and within the liquid aerosol-forming substrate storage component 1008.

[0149] During use, a user draws on the air outlet 1004 of the cartridge 1000. At the same time, the user presses a button (not shown) on the aerosol generating device 950. This button press sends a signal to the controller 954, causing the battery 952 to supply high-frequency current to the induction coil 956. This causes the induction coil to generate a varying electromagnetic field. The mesh heater 704 is positioned within this magnetic field. This varying electromagnetic field therefore generates eddy currents and hysteresis losses in the stainless steel plate 706, which acts as a susceptor heating element for the cartridge 1000. Thus, the plate 706 is inductively heated. In another embodiment, an airflow or pressure sensor is located within the device 950 and electrically connected to the controller 954. The airflow or pressure sensor detects that the user is drawing on the air outlet 1004 of the cartridge 1000 and sends a signal to the controller 954 to power the mesh heater 704. Thus, in these embodiments, the user does not need to press a button to heat mesh heater 704. The liquid aerosol-forming substrate held in the pores of porous ceramic body 702 is drawn by capillary action into the openings in plate 706 of mesh heater 704. Mesh heater 704 heats the liquid aerosol-forming substrate, vaporizing it.

[0150] As a user draws on the air outlet 1004 of the cartridge 1000, air is drawn into the air inlet 958 of the device 950, then through the air outlet 960 of the device 950, and then through the air inlet 1002 of the cartridge 1000. This air then moves around the heater assembly 700 and toward the air outlet 1004. This air flow entrains vapor formed by heating of the liquid aerosol-forming substrate by the mesh heater 704. This entrained vapor then cools and condenses to form an aerosol. This aerosol is then delivered to the user via the air outlet 1004.

[0151] As the liquid aerosol-forming substrate is drawn from the porous ceramic body 702 into the openings 709 of the mesh heater 704 and vaporized, the liquid aerosol-forming substrate is also drawn from the liquid aerosol-forming substrate storage component 1008 into the porous ceramic body 702. Thus, the user may be able to generate more aerosol than if the liquid aerosol-forming substrate storage component 1008 were not present.

[0152] For purposes of this specification and the appended claims, unless otherwise indicated, all numbers expressing amounts, quantities, percentages, and the like are to be understood in all instances as modified by the term "about." Also, all ranges include the disclosed maximum and minimum points, as well as any intermediate ranges therebetween, which may or may not be specifically recited herein. Thus, in this context, the number A is to be understood as A±10%.

Claims

1. 1. A cartridge for use in an aerosol generation system, said cartridge comprising: a porous ceramic body having a porosity of 30% to 65%; and a mesh heater engaged with the porous ceramic body, the mesh heater including a plurality of openings, each opening having a dimension of 50 microns to 200 microns; The cartridge, wherein the mesh heater is a hybrid mesh heater comprising a network of wires and fibers, the fibers having a different material composition than the wires.

2. 10. The cartridge of claim 1, wherein, in use, a liquid aerosol-forming substrate is drawn from the porous ceramic body into the openings in the mesh heater by capillary action.

3. 3. The cartridge of claim 1, wherein the fibers comprise one or both of glass fibers and rayon fibers.

4. The cartridge of any preceding claim, wherein the mesh heater is in contacting engagement with the porous ceramic body over substantially the entire surface of the mesh heater.

5. The cartridge of claim 4 , wherein the mesh heater contacts the porous ceramic body over substantially the entire surface of the mesh heater.

6. A cartridge according to any preceding claim, wherein the porous ceramic body comprises pores having an average pore size of from 2.5 microns to 40 microns.

7. The cartridge of any preceding claim, wherein the porous ceramic body comprises a first portion and a protrusion.

8. The cartridge of claim 7 , wherein the protrusion is located on the periphery of the first portion and extends around substantially the entire periphery of the first portion.

9. A cartridge according to any preceding claim, wherein the porous ceramic body includes channels extending therethrough, the channels having a diameter of between 300 microns and 800 microns.

10. A cartridge according to any preceding claim, comprising a metal segment located between the porous ceramic body and the mesh heater.

11. A cartridge according to any preceding claim, wherein the mesh heater is located between the porous ceramic body and a second ceramic coating layer.

12. The cartridge of claim 11 , wherein the mesh heater is attached to the porous ceramic body by the coating layer of the second ceramic.

13. An aerosol generation system comprising an aerosol generating device and a cartridge according to any one of claims 1 to 12.

14. 14. The aerosol generation system of claim 13, wherein the aerosol generation device comprises a power supply configured to provide power to the mesh heater to resistively heat the mesh heater.

15. 14. The aerosol generation system of claim 13, wherein the aerosol generation device comprises a power source, the cartridge or the aerosol generation device comprises an inductor, and the power source and the inductor are configured to inductively heat the mesh heater.

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