Heater assembly to provide a temperature gradient
A heater assembly for an aerosol-generating system is provided, the heater assembly including: a liquid aerosol-forming substrate including at least two compounds, the first compound having a first boiling point and the second compound having a second boiling point; a retention material containing the liquid aerosol-forming substrate; and a heating element configured to heat the retention material by passing a current along a length of the heating element, the heating element being formed from a band of material, and a cross-sectional area of the band of material progressively decreasing along a length of the band of material from a maximum cross-sectional area of the band of material at a first end of the band of material to a minimum cross-sectional area of the band of material at a second end of the band of material, to provide a temperature gradient along a surface of the retention material.
1 . A heater assembly for an aerosol-generating system, the heater assembly comprising:
a liquid aerosol-forming substrate comprising at least two compounds, wherein the first compound has a first boiling point and the second compound has a second boiling point;
a retention material containing the liquid aerosol-forming substrate; and
a heating element configured to heat the retention material by passing a current along a length of the heating element, wherein the heating element is formed from a band of material, and wherein a cross-sectional area of the band of material progressively decreases along a length of the band of material from a maximum cross-sectional area of the band of material at a first end of the band of material to a minimum cross-sectional area of the band of material at a second end of the band of material, to provide a temperature gradient along a surface of the retention material.
2 . The heater assembly according to claim 1 , wherein the band of material is folded on itself to provide at least one overlapping portion having a greater thickness and a lower electrical resistance than adjacent non-overlapping portions of the band of material.
3 . The heater assembly according to claim 1 ,
wherein the heating element comprises a first heating element material and a second heating element material,
wherein the first heating element material is at a first position along a length of the band of material and the second heating element material is at a second position along the length of the band of material, and
wherein the first heating element material has a first electrical resistivity and the second heating element material has a second electrical resistivity different from the first electrical resistivity.
4 . The heater assembly according to claim 1 ,
further comprising a plurality of heating elements,
wherein at least one heating element of the plurality of heating elements provides a temperature gradient along a surface of the retention material.
5 . The heater assembly according to claim 1 , wherein the band of material is perforated or a mesh.
6 . The heater assembly according to claim 1 , wherein the retention material is a porous ceramic capillary retention material.
7 . A cartridge for an aerosol-generating system, the cartridge comprising the heater assembly according to claim 1 .
8 . The cartridge according to claim 7 ,
further comprising an air inlet and an air outlet,
wherein an air flow path is defined between the air inlet and the air outlet, and
wherein air drawn from the air inlet to the air outlet flows across, past, or through the heating element.
9 . The cartridge according to claim 8 , wherein the air inlet is located closest to a portion of the heating element with a lowest electrical resistance and the air outlet is located closest to a portion of the heating element with a highest electrical resistance.
10 . An aerosol-generating system comprising the heater assembly according to claim 1 .
11 . The aerosol-generating system according to claim 10 ,
further comprising an air inlet and an air outlet,
wherein an air flow path is defined between the air inlet and the air outlet, and
wherein air drawn from the air inlet to the air outlet flows across, past, or through the heating element.
12 . The aerosol-generating system according to claim 11 ,
wherein the air inlet is located closest to a portion of the heating element with a lowest electrical resistance, and
wherein the air outlet is located closest to a portion of the heating element with a highest electrical resistance.
13 . The aerosol-generating system according to claim 11 , wherein air in the air flow path passes across the surface of the retention material and the air flow path is in fluid contact with the aerosol-forming substrate.
14 . A method for heating an aerosol-forming substrate within a heater assembly for an aerosol-generating system,
the heater assembly comprising:
a liquid aerosol-forming substrate comprising at least two compounds, wherein the first compound has a first boiling point and the second compound has a second boiling point,
a retention material containing the aerosol-forming substrate, and
a heating element configured to heat the retention material, wherein the heating element is formed from a band of material, wherein a cross-sectional area of the band of material progressively decreases along a length of the band of material; and
the method comprising passing a current along the length of the band of material, such that the heating element provides a temperature gradient along a surface of the retention material.
15 . The method according to claim 14 , wherein the band of material is folded on itself to provide at least one overlapping portion having a greater thickness and a lower electrical resistance than adjacent non-overlapping portions of the band of material.