Aerosol products
The aerosol product design with elongated strips and susceptor material ensures uniform heating and efficient vapor generation, addressing optimization challenges and enabling mass production for aerosol-generating devices.
Patent Information
- Application Number
- JP2023509704
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-21
- Filing Date
- 2021-09-17
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2041-09-17
AI Technical Summary
Existing aerosol-generating devices face challenges in optimizing aerosol characteristics and achieving uniform heating of aerosol-generating substrates, while also requiring efficient mass production of aerosol products.
The design of an aerosol product comprising elongated strips with a susceptor material and carrier strips arranged to form a rod-shaped article, ensuring effective heat transfer and uniform heating, facilitated by electromagnetic coupling, and manufactured using a continuous web production process.
This design achieves uniform heating and efficient vapor generation, enhancing user acceptance and enabling mass production of aerosol products for handheld devices.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates generally to aerosol product articles, and more particularly to aerosol product articles for use in an aerosol generating device that heats the aerosol product article to generate an aerosol for a user to inhale. The present disclosure is particularly applicable to aerosol product articles for use in portable (handheld) aerosol generating devices. [Background technology]
[0002] The popularity and use of reduced-risk or modified-risk devices (also known as aerosol-generating devices or vapor-generating devices) has grown rapidly in recent years as an alternative to the use of traditional tobacco products. A variety of devices and systems are available that heat or warm an aerosol-generating material to produce an aerosol for inhalation by the user.
[0003] Commonly available reduced-risk or improved-risk devices are heated substrate aerosol-generating devices, or so-called heated non-combustion devices. This type of device generates an aerosol or vapor by heating an aerosol-generating substrate, typically to a temperature in the range of 150°C to 300°C. Heating the aerosol-generating substrate to a temperature within this range, without burning the aerosol-generating substrate, generates a vapor that typically cools and condenses to form an aerosol that is inhaled by the user of the device.
[0004] Currently available aerosol-generating devices can provide heat to the aerosol-generating substrate using one of many different methods. One such method is to provide an aerosol-generating device that employs an induction heating system. In such devices, an induction coil is provided within the device to heat the aerosol-generating substrate, and an inductively heatable susceptor is provided. When a user operates the device, electrical energy is supplied to the induction coil, thereby generating an alternating electromagnetic field. The susceptor, coupled with the electromagnetic field, generates heat, which is transferred to the aerosol-generating substrate, for example, by conduction, and as the aerosol-generating substrate heats, an aerosol is generated. Summary of the Invention
[0005] The characteristics of the aerosol generated by an aerosol generating device depend on many factors, including the structure of the aerosol product used in the aerosol generating device. Therefore, it is desirable to provide an aerosol product that allows the characteristics of the aerosol generated during use of the product to be optimized. It is also generally desirable to provide an aerosol generating article that can be easily and reliably mass-produced.
[0006] According to a first aspect of the present disclosure, a plurality of elongated first strips containing an aerosol-forming material; at least one second elongated strip comprising an inductively heatable susceptor material; at least one elongated carrier strip to which at least one elongated second strip is adhered; and An aerosol product is provided, comprising: each of the plurality of first elongated strips has a width that is smaller than a width of the at least one second elongated strip; a width of the at least one elongated carrier strip greater than a width of the at least one second elongated strip; The first elongated strip, at least one second elongated strip and at least one elongated carrier strip are arranged to form a rod-shaped aerosol product article.
[0007] The aerosol-generating article is for use in an aerosol-generating device that heats an aerosol-generating material without burning the aerosol-generating material to volatilize at least one component of the aerosol-generating material, thereby generating a heated vapor that cools and condenses to form an aerosol for inhalation by a user of the aerosol-generating device. The aerosol-generating device is a handheld, portable device.
[0008] Generally speaking, a vapor is a substance that is in the gas phase below its critical temperature, meaning that the vapor can be condensed into a liquid by increasing the pressure without decreasing the temperature, while an aerosol is a suspension of fine solid particles or liquid droplets in air or another gas. However, it should be noted that the terms "aerosol" and "vapor" can be used interchangeably herein, particularly with respect to the type of inhalable medium produced that is inhaled by the user.
[0009] The combination of a first elongated strip (aerosol-generating strip) and a second, wider elongated strip (elongated susceptor) in the aerosol product article allows for effective heat transfer from the second elongated strip to the first elongated strip during use of the aerosol product article in an aerosol generating device. By adhering the second elongated strip to the wider, elongated carrier strip, the positioning of the second elongated strip relative to the first elongated strip is facilitated, further ensuring effective heat transfer from the second elongated strip to the first elongated strip. This allows for effective and uniform heating of the first elongated strip, and therefore reliable vapor generation. The aerosol product article according to the present disclosure can also be efficiently manufactured and relatively easily mass-produced.
[0010] The at least one second elongated strip may have first and second oppositely facing surfaces, and one of the first and second oppositely facing surfaces may be entirely covered by the at least one elongated carrier strip, thereby ensuring that the second elongated strip is securely adhered to the elongated carrier strip and enabling reliable positioning of the second elongated strip and the elongated carrier strip relative to the first elongated strip.
[0011] The aerosol product comprises an inductively heatable susceptor material. only A second strip of have The second elongated strip may be positioned at a radially central position within the rod-shaped aerosol product article and may extend along the longitudinal axis of the rod-shaped aerosol product article. This arrangement may help ensure uniform heating of the multiple first elongated strips surrounding the centrally located second elongated strip (elongated susceptor). This may also help ensure good electromagnetic coupling between the second elongated strip (elongated susceptor) and an electromagnetic field generator (e.g., an induction coil) of the aerosol generation device during use of the aerosol product article.
[0012] The elongated carrier strip and the second elongated strip adhered thereto may define a first region and a second region within the cross section of the rod-shaped aerosol product article. The elongated carrier strip may have a first major surface and a second major surface. The second elongated strip may be adhered to the second major surface. The first region may face the first major surface. The second region may face the second major surface. Both the first region and the second region may include a plurality of first elongated strips. Multiple first elongated strips may be provided in the first region and the second region on opposite sides of the second elongated strip and the elongated carrier strip. This facilitates uniform heating of the first elongated strips in the first region and the second region, thereby ensuring that an acceptable amount of vapor is produced by the first elongated strips in the first region and the second region.
[0013] Each of the plurality of first elongated strips may have a distal end, and at least one second elongated strip may also have a distal end. The distal end of the first elongated strip may form the distal end of the aerosol product article. The distal end of the at least one second elongated strip may be located inward from the distal end of the first elongated strip. For example, the length of the at least one second elongated strip may be shorter than the length of each of the first elongated strips. This arrangement prevents the distal end of the second elongated strip (the elongated susceptor) from being visible at the distal end of the aerosol product article, thereby increasing user acceptance of the aerosol product. Furthermore, the second elongated strip (the elongated susceptor) is completely embedded in the first elongated strip (the aerosol-generating strip), which allows for more efficient aerosol or vapor generation because the second elongated strip is completely surrounded by the first elongated strip, thereby maximizing heat transfer from the second elongated strip to the first elongated strip.
[0014] The length of the at least one elongated carrier strip may be equal to the length of each of the first elongated strips, which may facilitate manufacturing of the aerosol product.
[0015] At least one elongate carrier strip may comprise an aerosol-forming material, which facilitates manufacturing of the aerosol product article and allows heat transferred from the second elongate strip to heat both the plurality of first elongate strips and the elongate carrier strip, thereby maximizing vapor generation during use of the aerosol product article.
[0016] The first elongated strip may have a number of different orientations within the cross-section of the rod-shaped aerosol product article, which helps to ensure uniform heat transfer from the second elongated strip to the first elongated strip, thereby maximizing the amount of vapor produced during use of the aerosol product article.
[0017] The at least one second elongated strip may have a thickness of 1 μm to 500 μm, preferably 10 μm to 100 μm. The second elongated strip (elongated susceptor) having these thickness dimensions is particularly suitable for being inductively heated during use of the aerosol product, and may also facilitate the manufacture of the aerosol product.
[0018] Each of the plurality of first elongated strips may have a length of 5 mm to 50 mm. Each of the plurality of first elongated strips may have a length of 10 mm to 30 mm.
[0019] Each of the plurality of first elongated strips may have a thickness of 50 μm to 500 μm, and in some cases 150 μm to 300 μm. Each of the plurality of first elongated strips may have a thickness of 220 μm.
[0020] Each of the plurality of first elongated strips may have a width of approximately 0.1 mm to 5.0 mm, and optionally 0.5 mm to 2.0 mm. Each of the plurality of first elongated strips may have a width of 1.0 mm. These width dimensions ensure that the aerosol product includes an optimal number of first elongated strips (aerosol-generating strips) to ensure uniform airflow through the aerosol product and the production of an acceptable amount of vapor or aerosol. If the width of the first elongated strips (aerosol-generating strips) is too small, the strength of the strips may be reduced, which may result in difficulty in mass-producing the aerosol product.
[0021] The inductively heatable susceptor material may include a metal. The metal is typically selected from the group consisting of stainless steel and carbon steel. However, the inductively heatable susceptor material may include any suitable material, including, but not limited to, one or more of aluminum, iron, nickel, stainless steel, carbon steel, and alloys thereof, such as nickel-chromium or nickel-copper. By applying an electromagnetic field in the vicinity of the aerosol product article during use in the aerosol generation device, the elongated second strip (elongated susceptor) may generate heat due to eddy currents and magnetic hysteresis losses resulting in the conversion of electromagnetic energy to thermal energy.
[0022] The aerosol-forming material can be any type of solid or semi-solid material. Examples of types of aerosol-forming solids include powders, granules, pellets, shreds, strands, particles, gels, strips, loose-leaf, cut-leaf, cut-filler, porous materials, foamed materials, or sheets. The aerosol-forming material can include plant-derived materials, particularly tobacco. It can advantageously include reconstituted tobacco, for example, containing tobacco and one or more of cellulose fiber, tobacco stem fiber, and inorganic fillers such as CaCO3.
[0023] Accordingly, aerosol-generating devices intended for use with aerosol-producing articles may be referred to as "heated tobacco devices," "heated non-combustion tobacco devices," "tobacco product vaporizers," etc., and are understood to be devices suitable for producing these effects. The features disclosed herein are equally applicable to devices designed to vaporize any aerosol-generating substrate.
[0024] The aerosol-generating article may be wrapped in a paper wrapper.
[0025] The aerosol product article may be substantially rod-shaped, roughly resembling a cigarette, with a tubular region in which the aerosol-generating substrate is arranged in a suitable manner. The aerosol product article may include a filter portion at the proximal end of the aerosol product article, for example, comprising cellulose acetate fibers. The filter portion may constitute a mouthpiece filter and may be coaxially aligned with the aerosol-generating substrate, which is primarily composed of a plurality of elongated first strips and, optionally, an elongated carrier strip. Some designs may also include one or more vapor collection regions, cooling regions, and other structures. For example, the aerosol product article may include at least one tubular portion upstream of the filter portion. The tubular portion can function as a vapor cooling region. The vapor cooling region advantageously allows heated vapor generated by heating the aerosol-generating strips (the elongated first strips and, preferably, the elongated carrier strips) to cool and condense to form an aerosol with suitable properties for inhalation by a user, for example, through the filter portion.
[0026] The aerosol-forming material may include an aerosol-forming agent. Examples of aerosol-forming agents include polyhydric alcohols, such as glycerin or propylene glycol, and mixtures thereof. Typically, the aerosol-forming material may contain about 5% to about 50% aerosol-forming agent by dry weight. In some embodiments, the aerosol-forming material may contain about 10% to about 20% aerosol-forming agent by dry weight, and in some cases, about 15% aerosol-forming agent by dry weight.
[0027] Upon heating, the aerosol-forming material can release volatile compounds, which may include nicotine and flavor compounds such as tobacco flavors. [Brief explanation of the drawings]
[0028] [Figure 1a] 1 is a schematic cross-sectional side view showing an example of an aerosol product. FIG. [Figure 1b] FIG. 1b is an enlarged cross-sectional view taken along line AA in FIG. 1a. [Figure 2a]1 is a schematic diagram of a first embodiment of an apparatus and method for producing the aerosol product shown in FIGS. 1a and 1b. [Figure 2b] 2b is a plan view of the aerosol-generating substrate and susceptor patch as they move in the direction indicated by the arrow extending through the apparatus shown in FIG. 2a. [Figure 3] FIG. 2 is a plan view showing a cross section of a continuous web of susceptor material showing bonded and unbonded regions. [Figure 4] 2b is a functional diagram of a portion of the apparatus and method of FIG. 2a, illustrating generally the formation of susceptor patches from a continuous web of susceptor material and the application of the susceptor patches to the surface of a continuous web of aerosol-generating substrate. [Figure 5] FIG. 2 is a schematic perspective view of a susceptor cutting unit. [Figure 6] 2b is a schematic diagram showing a strip cutting unit of the apparatus of FIG. 2a; FIG. [Figure 7a] FIG. 1B is a schematic diagram illustrating a second embodiment of an apparatus and method for producing the aerosol product shown in FIGS. 1a and 1b. [Figure 7b] 7b is a plan view of the aerosol-generating substrate and susceptor patch as they move in the direction indicated by the arrow extending through the apparatus shown in FIG. 7a. [Figure 8] FIG. 7b is a functional diagram of a portion of the apparatus and method of FIG. 7a, illustrating generally the formation of susceptor patches from a continuous web of susceptor material and the application of the susceptor patches to the surface of a continuous strip of aerosol-generating substrate. [Figure 9] 7b is a schematic diagram showing a strip cutting unit of the apparatus of FIG. 7a; FIG. DETAILED DESCRIPTION OF THE INVENTION
[0029] Embodiments of the present disclosure will now be described, by way of example only, with reference to the accompanying drawings, in which:
[0030] 1a and 1b, there is shown an example of an aerosol product article 1 for use with an aerosol generating device comprising an induction heating system that inductively heats the aerosol product article to produce an aerosol for inhalation by a user of the device. Such devices are known in the art and will not be described in further detail herein. The aerosol product article 1 is elongated and substantially cylindrical, having a distal end 11a and a proximal end (or mouth end) 11b. The circular cross section facilitates handling of the article 1 by a user and insertion of the article 1 into a cavity or heating compartment of the aerosol generating device.
[0031] The aerosol product article 1 includes an aerosol-generating substrate 10 having a first end 10a and a second end 10b, and an inductively heatable susceptor 12. The aerosol-generating substrate 10 and the inductively heatable susceptor 12 are positioned within and enclosed by a wrapper 14. The wrapper 14 comprises a substantially electrically non-conductive and non-magnetically permeable material. In the illustrated example, the wrapper 14 is a paper wrapper, which may include tobacco paper.
[0032] The aerosol product 1 typically has a total length, measured between the distal end 11a and the proximal (mouthpiece) end 11b, of 30 mm to 100 mm, preferably 50 mm to 70 mm. The aerosol-generating substrate 10 typically has a total length, measured between the first end 10a and the second end 10b, of 5 mm to 50 mm, preferably 10 mm to 30 mm. The aerosol product 1 typically has a diameter of 5 mm to 10 mm, preferably 6 mm to 8 mm.
[0033] The aerosol-generating substrate 10 includes a plurality of first elongated strips 15 containing an aerosol-generating material. The first elongated strips 15 constitute an aerosol-generating strip 16 and are oriented substantially in the longitudinal direction of the aerosol product article 1. The first elongated strips 15 are typically not folded in the longitudinal direction to ensure that the air flow path is not obstructed and that uniform air flow through the article 1 can be achieved.
[0034] The inductively heatable susceptor 12 includes second elongated strips 13 comprising inductively heatable susceptor material. The second elongated strips 13 can therefore be considered to be strip- or blade-like elongated susceptors 12 that are also oriented substantially in the longitudinal direction of the aerosol product article 1. As clearly shown in Figure 1b, each of the first elongated strips 15 has a width that is smaller than the width of the second elongated strips 13.
[0035] The aerosol product article 1 includes at least one elongated carrier strip 17 having a first major surface 17a and a second major surface 17b. The elongated carrier strip 17 includes an aerosol-generating material and thus also constitutes an aerosol-generating strip 16. The elongated carrier strip 17 is oriented substantially in the longitudinal direction of the aerosol product article 1. The elongated carrier strip 17 has the same length as the first elongated strip 15, and therefore all of the aerosol-generating strips 16 within the aerosol product article 1 have the same length.
[0036] The second elongated strip 13 is adhered to an elongated carrier strip 17, which, as clearly shown in Figure lb, has a width greater than that of the second elongated strip 13. The second elongated strip 13 has oppositely facing first and second faces 13b, 13c. The second face 13c is adhered to the second main face 17b of the elongated carrier strip 17 and is covered in its entirety by the elongated carrier strip 17, more particularly by the second main face 17b.
[0037] The first elongated strips 15, the second elongated strips 13, and the elongated carrier strips 17 are arranged to form a substantially rod-shaped aerosol product article 1, and the first elongated strips 15 may be randomly distributed across the cross-section of the rod-shaped aerosol product article 1 so as to have a plurality of different orientations within the cross-section of the aerosol product article 1. Although not apparent from FIG. 1b, it will be understood that a sufficient number of first elongated strips 15 are provided to substantially cover the cross-section of the aerosol-generating substrate 10, and a fewer number of first elongated strips 15 are shown merely for illustrative purposes. The second elongated strips 13 and the elongated carrier strips 17 are positioned approximately centrally within the cross-section of the aerosol-generating substrate 10, and thus the aerosol product article 1. Such an arrangement helps ensure uniform heat transfer from the second elongated strips 13 to the first elongated strips 15.
[0038] As best seen in Figure lb, the centrally located elongated carrier strip 17 and the attached second elongated strips 13 define a first region 5 and a second region 6 within the cross-section of the aerosol-generating substrate 10, and hence the aerosol product article 1. The first region 5 faces a first major surface 17a of the elongated carrier strip 17, and the second region 6 faces a second major surface 17b of the elongated carrier strip 17. Both the first region 5 and the second region 6 comprise a plurality of first elongated strips 15.
[0039] As best seen in FIG. 1a, each of the plurality of first elongated strips 15 has a distal end 15a, and the second elongated strips 13 have a distal end 13a. The distal end 15a of the first elongated strips 15 forms the first end 10a of the aerosol-generating substrate 10 and, correspondingly, the distal end 11a of the aerosol product article 1. The second elongated strips 13 are shorter than the first elongated strips 15 and the elongated carrier strips 17. The distal end 13a of the second elongated strips 13 is located inward from the distal end 15a of the first elongated strips 15. The distal end 13a of the second elongated strips 13 (i.e., the elongated susceptor 12) is therefore not visible at the distal end 11a of the aerosol product article 1.
[0040] The aerosol product article 1 includes a mouthpiece portion 20 positioned downstream of an aerosol-generating substrate 10. The aerosol-generating substrate 10 and the mouthpiece portion 20 are arranged in coaxial alignment within a wrapper 14, which holds the elements in place to form a rod-shaped aerosol product article 1.
[0041] In the illustrated embodiment, the mouthpiece portion 20 includes the following elements, arranged sequentially and coaxially in a downstream direction, i.e., from the distal end 11a to the proximal (mouthpiece) end 11b of the aerosol product 1: a cooling portion 22, a central hole portion 23, and a filter portion 24. The cooling portion 22 includes a hollow paper tube 22a that is thicker than the paper wrapper 14. The central hole portion 23 may include a hardening mixture including cellulose acetate fibers and a plasticizer and functions to increase the strength of the mouthpiece portion 20. The filter portion 24 typically includes cellulose acetate fibers and functions as a mouthpiece filter. As heated vapor flows from the aerosol-generating substrate 10 toward the proximal (mouthpiece) end 11b of the aerosol product 1, the vapor cools and condenses as it passes through the cooling portion 22 and the central hole portion 23, forming an aerosol with suitable properties for inhalation by a user through the filter portion 24.
[0042] The first elongated strip 15 and the elongated carrier strip 17 typically comprise a plant-derived material such as tobacco. The first elongated strip 15 and the elongated carrier strip 17 may advantageously comprise reconstituted tobacco containing tobacco and one or more of cellulose fiber, tobacco stem fiber, and an inorganic filler such as CaCO3.
[0043] The first elongated strip 15 and the elongated carrier strip 17 typically contain an aerosol-forming agent, such as glycerin or propylene glycol. Typically, the first elongated strip 15 and the elongated carrier strip 17 contain an aerosol-forming agent content of about 5% to about 50% on a dry weight basis. Upon heating, the first elongated strip 15 and the elongated carrier strip 17 release volatile compounds, optionally including flavor compounds such as nicotine or tobacco flavors.
[0044] During use of the article 1 in an aerosol-generating device, when a time-varying electromagnetic field is applied near the second elongated strip 13, heat is generated in the second elongated strip 13 due to eddy currents and magnetic hysteresis losses. This heat is transferred from the second elongated strip 13 to the first elongated strip 15 and the elongated carrier strip 17, heating the first elongated strip 15 and the elongated carrier strip 17 without combustion, thereby releasing one or more volatile compounds and producing vapor. As a user inhales through the filter portion 24, the heated vapor is drawn through the article 1 from the first end 10a of the aerosol-generating substrate 10 toward the second end 10b of the aerosol-generating substrate 10 and downstream toward the filter portion 24. As described above, as the heated vapor flows through the cooling portion 22 and the central hole portion 23 toward the filter portion 24, the heated vapor cools and condenses to form an aerosol with properties suitable for inhalation by a user through the filter portion 24.
[0045] Apparatus 30, 230 and methods suitable for producing aerosol products according to the present disclosure, such as the aerosol product 1 shown in Figures 1a and 1b and described above, are described below.
[0046] Manufacturing of Aerosol Products: Embodiment 1 Referring to Figure 2a, there is shown a schematic diagram of an apparatus 30 and method for producing the aerosol product 1 described above and shown in Figures 1a and 1b. Figure 2b is a plan view of the aerosol-generating substrate 10 and susceptor patch 28 as they move through the apparatus 30 in the direction of the arrows in Figure 2b.
[0047] The apparatus 30 includes a substrate supply reel 32 (e.g., a first bobbin) that carries a continuous web 34 of aerosol-generating substrate 10 having a substantially flat surface with a centerline 18, and a first supply roller 36 that controls the supply of the continuous web 34 of aerosol-generating substrate 10. The apparatus 30 may also include a web tension adjuster and a web edge control system, as will be understood by those skilled in the art, although these additional elements are not required in the context of the present disclosure and are therefore omitted for the sake of brevity.
[0048] The apparatus 30 includes a susceptor supply reel 38 (eg, a second bobbin) that carries a continuous web 40 of susceptor material, supply rollers 42, 44 that control the supply of the continuous web 40 of susceptor material, an adhesive applicator unit 46, and a susceptor cutting unit 48.
[0049] Apparatus 30 further includes an optional heater 50 , a strip cutting unit 52 , a feed roller 54 , a rod forming unit 56 and a rod cutting unit 58 .
[0050] Preparation of susceptor patches During operation, a continuous web 34 of aerosol-generating substrate 10 is continuously fed from substrate supply reel 32. Simultaneously, a continuous web 40 of susceptor material is continuously fed from susceptor supply reel 38 via supply rollers 42, 44 to adhesive applicator unit 46. Adhesive applicator unit 46 applies adhesive 47 to the surface of continuous web 40 of susceptor material. In the illustrated example, adhesive applicator unit 46 applies adhesive 47 to the surface of continuous web 40 of susceptor material intermittently and across the entire width of web 40. In this manner, discrete bonded areas 60 (see FIGS. 3 and 4 ) are formed on the surface of continuous web 40 of susceptor material, and adhesive-free areas 62 are formed between adjacent bonded areas 60 in the direction of travel of continuous web 40 of susceptor material.
[0051] The continuous web 40 of susceptor material is fed from the adhesive applicator unit 46 to a susceptor cutting unit 48, which continuously cuts the continuous web 40 to form a plurality of susceptor patches 28. As best shown in FIG. 2b, the continuous web 40 of susceptor material, and thus the susceptor patches 28, have a width that is substantially smaller than the width of the continuous web 34 of aerosol-generating substrate 10. For example, the continuous web 34 of aerosol-generating substrate 10 may have a width of approximately 140 mm, while the continuous web 40 of susceptor material, and thus the susceptor patches 28, may have a width of approximately 0.1 mm to 7 mm. In some embodiments, the susceptor patches 28 may have a length of approximately 5 mm to 50 mm in the direction of travel of the continuous web 40 of susceptor material and a thickness of approximately 1 μm to 500 μm.
[0052] To minimize contamination of the susceptor cutting unit 48 with the adhesive 47 applied to the continuous web 40 of susceptor material by the adhesive applicator unit 46, the susceptor cutting unit 48 cuts the continuous web 40 of susceptor material at areas 62 where no adhesive is applied, i.e., at locations between the adhesive areas 60 on the surface of the continuous web 40 of susceptor material. This can be achieved by synchronizing the operation of the susceptor cutting unit 48 with the movement of the continuous web 40 of susceptor material.
[0053] 5, the susceptor cutting unit 48 includes a rotary cutting unit 64 that includes a support drum 66 and a cutting drum 68. The support drum 66 supports the continuous web of susceptor material 40 at its outer periphery and includes a plurality of circumferentially spaced recesses 70 about its outer periphery. The support drum 66 is typically a suction drum, and the continuous web of susceptor material 40 and the susceptor patches 28 are supported around the periphery of the suction drum by suction applied through suction ports 67. The cutting drum 68 includes a plurality of circumferentially spaced cutting elements 72, e.g., protruding cutting blades, about its periphery, which cooperate with (e.g., extend into) the circumferentially spaced recesses 70 during synchronized rotation of both the support drum 66 and the cutting drum 68 in opposite directions, as indicated by the arrows in FIG. 5. As a result, the continuous web of susceptor material 40 is continuously sheared to form a plurality of susceptor patches 28. As will become apparent from the following description, each susceptor patch 28 corresponds to a second elongated strip 13 (ie, an elongated susceptor 12) in the finished aerosol product article 1 shown in Figures 1a and 1b and described above.
[0054] Application of susceptor patch The susceptor patches 28 provided by the susceptor cutting unit 48 can be applied to the surface of the continuous web 34 of the aerosol-generating substrate 10 so that a predetermined fixed gap 74 exists between the edges of each successive susceptor patch 28, as shown in, for example, FIGS. 2B and 4 . The predetermined fixed gap 74 can be, for example, 1 mm to 20 mm. To create the predetermined fixed gap 74 between the edges of adjacent susceptor patches 28, the susceptor cutting unit 48 enables relative movement between the continuous web 40 of susceptor material and the support drum 66 for a predetermined period of time immediately after the continuous web 40 of susceptor material carried by the support drum 66 is cut by the cutting drum 68 to form the susceptor patches 28. This relative movement allows the continuous web 40 of susceptor material to remain stationary or move at a reduced speed for a short period of time after the susceptor patches 28 are cut from the continuous web 40 of susceptor material. Relative movement between the continuous web 40 of susceptor material and the support drum 66 may be achieved, for example, by reducing the suction force applied to the continuous web 40 of susceptor material by the support drum 66 while simultaneously maintaining an appropriate suction force between the already-cut susceptor patches 28 and the support drum 66 to ensure that no relative movement occurs between the susceptor patches 28 and the support drum 66. In this manner, the susceptor patches 28 cut from the continuous web 40 of susceptor material by the susceptor cutting unit 48 may be transported for a short period of time at a faster speed than the continuous web 40 of susceptor material from which the susceptor patches 28 were cut, thereby creating a desired predetermined fixed spacing 74 between the edges of adjacent susceptor patches 28.
[0055] The susceptor patches 28, coated with adhesive 47, are continuously and sequentially adhered to the flat surface of the continuous web 34 of aerosol-generating substrates 10 substantially along the centerline 18. Exposed side regions 90 of the continuous web 34 of aerosol-generating substrates are formed on both sides of the susceptor patches 28 because, as described above, the continuous web 34 of aerosol-generating substrates 10 is substantially wider than the susceptor patches 28 (see FIG. 2b). Adjacent susceptor patches 28 are also spaced apart in the direction of movement of the continuous web 34 of aerosol-generating substrates 10 by a given fixed gap 74 between the edges of the susceptor patches 28, which is created when the susceptor patches 28 are formed in the susceptor cutting unit 48.
[0056] To ensure that the susceptor patches 28 and the substantially flat surface of the continuous web 34 of aerosol-generating substrate 10 are adequately bonded, the susceptor patches 28 can be pressed against the substantially flat surface by a cam roller 76, as shown schematically in Figure 2a. The rotation of the cam roller 76 is synchronized with the movement of the continuous web 34 of aerosol-generating substrate 10 so that a pressing force is applied to the successive susceptor patches 28 but not to the spaced regions between the successive susceptor patches 28.
[0057] Depending on the properties of the adhesive 47 applied by the adhesive applicator unit 46 to the continuous web 40 of susceptor material (and thus to the susceptor patches 28), the continuous web 34 of aerosol-generating substrates 10 and the susceptor patches 28 adhered thereto may be heated by an optional heater 50. This helps to cure or stabilize the adhesive 47, thereby ensuring a good bond between each susceptor patch 28 and the flat surface of the continuous web 34 of aerosol-generating substrates 10. The heating temperature must be carefully selected based on the properties of both the aerosol-generating substrates 10 and the adhesive 47 so that sufficient heating is achieved to cure or stabilize the adhesive 47 while simultaneously avoiding or at least minimizing the release of volatile components from the aerosol-generating substrates 10.
[0058] Cutting the strip The continuous web 34 of aerosol-generating substrate 10, with spaced apart susceptor patches 28 adhered to its flat surface, is fed to the strip cutting unit 52. The strip cutting unit 52 cuts only the exposed side regions 90 of the continuous web 34 of aerosol-generating substrate 10, without cutting the susceptor patches 28, to form a plurality of continuous aerosol-generating strips 16 along the susceptor patches 28. In one embodiment, the strip cutting unit 52 cuts the exposed side regions 90 of the continuous web 34 of aerosol-generating substrate 10 to form aerosol-generating strips 16 having a strip width of approximately 1 mm.
[0059] 2a and 6, the strip cutting unit 52 is a rotary cutter unit 78 and includes first and second cutting drums 80, 82. The first cutting drum 80 includes a circumferentially extending first cutting arrangement 84, and the second cutting drum 82 includes a circumferentially extending second cutting arrangement 86. The first and second cutting arrangements 84, 86 cooperate (e.g., intermesh) to shear an exposed side region 90 of the continuous web 34 of the aerosol-generating substrate 10 in the direction of movement of the continuous web 34 to form a continuous aerosol-generating strip 16, specifically the elongated first strip 15 shown in FIGS. 1a and 1b.
[0060] To cut only the exposed side region 90 of the continuous web 34 of aerosol-generating substrate 10 to form the elongated first strips 15, the first and second cutting drums 80, 82 define a non-cutting region 92 therebetween to accommodate the susceptor patches 28 and the portions of the continuous web 34 of aerosol-generating substrate 10 to which the susceptor patches 28 are adhered. In the illustrated embodiment, the first cutting drum 80 is formed without a first cutting arrangement 84 in the non-cutting region 92. Similarly, the second cutting drum 82 is formed without a second cutting arrangement 86 in the non-cutting region 92. Furthermore, the first cutting drum 80 includes a circumferentially extending recess 94 on its surface in the non-cutting region 92, so that at least a portion of the susceptor patch 28 can be accommodated in the circumferentially extending recess 94 during cutting of the exposed side region 90 of the continuous web 34 of aerosol-generating substrate 10. It will therefore be understood that when the exposed side regions 90 of the continuous web 34 of the aerosol-generating substrate 10 are cut to form the elongated first strips 15 by cooperation between the first and second cutting arrangements 84, 86 of the first and second cutting drums 80, 82, respectively, the central portions of the continuous web 34 of the aerosol-generating substrate 10 that are not cut into strips and that are contained in the non-cutting regions 92 constitute the elongated carrier strips 17 described above with reference to Figure 1b.
[0061] Rod formation The aerosol-generating strip 16 formed by cutting the exposed side region 90 of the continuous web 34 of aerosol-generating substrate 10, the elongated carrier strip 17, and the adhered susceptor patches 28 are conveyed to the rod-forming unit 56, where they are formed into a continuous rod 88. If desired, a continuous sheet of wrapper paper (not shown) can be supplied to the rod-forming unit 56 from a supply reel (not shown) or to a separate packaging unit (also from a supply reel) that can be positioned downstream of the rod-forming unit 56. As the sheet of wrapper paper is conveyed and guided through the rod-forming unit 56 or the separate packaging unit, it can be wrapped around the aerosol-generating strip 16 and the susceptor patches 28 to wrap the continuous rod 88 in the wrapper 14.
[0062] Cutting the rod The continuous rod 88 (optionally circumscribed by the wrapper 14) is then conveyed to the rod cutting unit 58 and cut to a predetermined length at appropriate locations to form a plurality of aerosol product articles 1. The aerosol product articles 1 formed by the rod cutting unit 58 may have a length of 5 mm to 50 mm, preferably 10 mm to 30 mm. It will be understood that this length corresponds to the length of the aerosol-generating substrate 10 described above and shown in FIGS. 1a and 1b. The continuous rod 88 is preferably repeatedly cut by the rod cutting unit 58 at substantially the midpoint between the edges of the susceptor patches 28. In this manner, the rod cutting unit 58 does not cut the susceptor patches 28, thereby reducing wear on the cutting element. Furthermore, because the susceptor patches 28 are shorter than the aerosol-generating strip 16, the ends of the individual susceptor patches 28 (i.e., the elongated second strip 13) are not visible at either end of the aerosol product articles 1 formed by the rod cutting unit 58. It will be appreciated that this type of method is particularly suitable for mass production of the aerosol product 1.
[0063] Final assembly A further unit (not shown) may be located downstream of rod cutting unit 58 and configured to provide one or more additional elements, such as mouthpiece portion 20 described above, and assemble these together with the individual aerosol product articles 1 formed by rod cutting unit 56 to form the finished aerosol product article 1, for example as shown in FIG. 1 . In this case, a separate packaging unit may be provided downstream of rod cutting unit 58 so that the assembled elements can be packaged together to form the finished aerosol product article 1. The further unit may form part of apparatus 30, or may be a separate, independent unit that forms part of the final assembly line.
[0064] Manufacturing of Aerosol Products: Embodiment 2 Referring to Figure 7a, there is shown a schematic diagram of a second embodiment of an apparatus 230 and method for producing the aerosol product 1 described above and shown in Figures 1a and 1b. Figure 7b is a plan view of the aerosol-generating substrate 10 and susceptor patch 28 as they move through the apparatus 230 in the direction of the arrows in Figure 7b. The apparatus 230 and method are similar to the apparatus 30 and method described above and shown in Figures 2-6, and corresponding elements are identified using the same reference numerals.
[0065] The apparatus 230 includes a substrate supply reel 32 (e.g., a first bobbin) carrying a continuous web 34 of aerosol-generating substrate 10 having a substantially flat surface, and a first supply roller 36 for controlling the supply of the continuous web 34 of aerosol-generating substrate 10. The apparatus 230 may also include a web tension adjuster and a web edge control system, as will be understood by those skilled in the art, although these additional elements are not essential to the description of the present disclosure and are therefore omitted for the sake of brevity.
[0066] The apparatus 230 further includes a rotary cutter unit 290, including, for example, a circular cutting knife, which cuts the continuous web 34 of aerosol-generating substrates 10 along one edge 19 to separate a continuous strip 218 of aerosol-generating substrates 10 from the continuous web 34. The continuous strip 218 of aerosol-generating substrates 10 corresponds to the elongated carrier strip 17 in the finished aerosol product 1 shown in Figures 1a and 1b and described above. The continuous strip 218 of aerosol-generating substrates 10 has a substantially flat surface and is transported by transport rollers 92, 94 in a direction away from the continuous web 34 of aerosol-generating substrates 10, for example, upward as best shown in Figure 7a, so that the continuous strip 218 and the continuous web 34 can be processed separately by the apparatus 230.
[0067] The apparatus 230 also includes a susceptor supply reel 38 (eg, a second bobbin) that carries a continuous web 40 of susceptor material, supply rollers 42, 44 that control the supply of the continuous web 40 of susceptor material, an adhesive applicator unit 46, and a susceptor cutting unit 48.
[0068] Apparatus 230 further includes an optional heater 50 , feed rollers 51 , strip cutting unit 52 , feed rollers 54 , rod forming unit 56 and rod cutting unit 58 .
[0069] Preparation of susceptor patches During operation, the continuous web 34 of aerosol-generating substrate 10 is continuously fed from the substrate supply reel 32, and a continuous strip 218 of aerosol-generating substrate 10 is separated from the edge 19 of the continuous web 34 by the rotary cutter unit 290 and conveyed away from the continuous web 34 by the transport rollers 92, 94 as described above. Simultaneously, the continuous web 40 of susceptor material is continuously fed from the susceptor supply reel 38 via the feed rollers 42, 44 to the adhesive applicator unit 46. The adhesive applicator unit 46 applies an adhesive 47 to the surface of the continuous web of susceptor material 40. In the illustrated example, the adhesive applicator unit 46 applies the adhesive 47 intermittently to the surface of the continuous web of susceptor material 40 and across the entire width of the web 40. In this manner, discrete adhesive regions 60 (see Figures 3 and 8) are formed on the surface of the continuous web 40 of susceptor material, and between adjacent adhesive regions 60 in the direction of movement of the continuous web 40 of susceptor material, regions 62 where no adhesive is applied are formed.
[0070] The continuous web 40 of susceptor material is fed from the adhesive applicator unit 46 to a susceptor cutting unit 48, which continuously cuts the continuous web 40 of susceptor material to form a plurality of susceptor patches 28. The structure and operation of the susceptor cutting unit 48 is the same as that described above with respect to Figure 5. As will become apparent from the following description, each susceptor patch 28 corresponds to the elongated second strip 13 (i.e., the elongated susceptor 12) in the finished aerosol product article 1 shown in Figures 1a and 1b and described above.
[0071] As best shown in Figure 7b, the continuous web of susceptor material 40, and therefore the susceptor patches 28, have a width that is less than the width of the continuous strip 218 of aerosol-generating substrate 10. For example, the continuous web of susceptor material 40, and therefore the susceptor patches 28, may have a width of about 0.1 mm to 7 mm. In some embodiments, the susceptor patches 28 may have a length of about 5 mm to 50 mm in the direction of movement of the continuous web of susceptor material 40, and a thickness of about 1 μm to 500 μm.
[0072] To minimize contamination of the susceptor cutting unit 48 with the adhesive 47 applied to the continuous web 40 of susceptor material by the adhesive applicator unit 46, the susceptor cutting unit 48 cuts the continuous web 40 of susceptor material at areas 62 where no adhesive is applied, i.e., at locations between the adhesive areas 60 on the surface of the continuous web 40 of susceptor material. This can be achieved by synchronizing the operation of the susceptor cutting unit 48 with the movement of the continuous web 40 of susceptor material.
[0073] Application of susceptor patch The susceptor patches 28 provided by the susceptor cutting unit 48 can be applied to the plane of the continuous strip 218 of aerosol-generating substrate 10 such that there is a given fixed spacing 74 between the edges of each successive susceptor patch 28, as shown, for example, in Figures 7b and 8. The given fixed spacing 74 can be, for example, between 1 mm and 20 mm, and is achieved in the same way as described above with respect to the apparatus 30 and the corresponding method.
[0074] The susceptor patches 28 coated with adhesive 47 are successively and sequentially adhered to the flat surface of the continuous strip 218 of aerosol-generating substrate 10 substantially along the center of the continuous strip 218. Adjacent susceptor patches 28 are spaced apart in the direction of movement of the continuous strip 218 of aerosol-generating substrate 10 by a given fixed gap 74 between the edges of the susceptor patches 28 that is created when the susceptor patches 28 are formed in the susceptor cutting unit 48.
[0075] To ensure that the substantially flat surfaces of the susceptor patches 28 and the continuous strip 218 of aerosol-generating substrate 10 are adequately bonded, the susceptor patches 28 can be pressed against the substantially flat surface by a cam roller 76, shown schematically in FIG. 7 a. The rotation of the cam roller 76 is synchronized with the movement of the continuous strip 218 of aerosol-generating substrate 10 such that a pressing force is applied to the successive susceptor patches 28 but not to the spaced apart areas between the successive susceptor patches 28.
[0076] Depending on the properties of the adhesive 47 applied by the adhesive applicator unit 46 to the continuous web 40 of susceptor material (and thus the susceptor patches 28), the continuous strip 218 of aerosol-generating substrate 10 and the susceptor patches 28 adhered thereto may be heated by an optional heater 50. As noted above, this helps to cure or stabilize the adhesive 47, thereby ensuring a good bond between each susceptor patch 28 and the planar surface of the continuous strip 218 of aerosol-generating substrate 10.
[0077] Cutting the strip After the continuous strip 218 of aerosol-generating substrate 10 has been separated from the edge 19 of the continuous web 34 of aerosol-generating substrate 10 by the rotary cutter unit 290, the remaining web 34 of aerosol-generating substrate 10 is fed to a strip cutting unit 52 (best seen in FIG. 9 ). The strip cutting unit 52 cuts the continuous web 34 of aerosol-generating substrate 10 across its entire width to form a plurality of continuous aerosol-generating strips 16 that correspond to the first elongated strips 15 in the finished aerosol product 1 shown in FIGS. 1 a and 1 b and described above. In one embodiment, the strip cutting unit 52 cuts the continuous web 34 of aerosol-generating substrate 10 to form aerosol-generating strips 16 having a strip width of about 1 mm.
[0078] 7a and 9, the strip cutting unit 52 is a rotary cutter unit 78 and includes first and second cutting drums 80, 82. The first cutting drum 80 includes a circumferentially extending first cutting arrangement 84, and the second cutting drum 82 includes a circumferentially extending second cutting arrangement 86. The first and second cutting arrangements 84, 86 cooperate (e.g., intermesh) to shear the continuous web 34 of aerosol-generating substrate 10 in the direction of movement of the continuous web 34 to form continuous aerosol-generating strips 16, specifically the elongated first strips 15 shown in FIGS. 1a and 1b.
[0079] Rod formation The aerosol-generating strips 16 cut from the continuous web 34 of aerosol-generating substrate 10 are transported to the rod-forming unit 56, where they are formed into a continuous rod 88. The continuous strip 218 of aerosol-generating substrate 10 having the susceptor patches 28 adhered thereto is also transported by the supply roller 51 to the rod-forming unit 56 and combined with the aerosol-generating strips 16 to form the continuous rod 88. If desired, a continuous sheet of wrapper paper (not shown) can be supplied to the rod-forming unit 56 from a supply reel (not shown) or to a separate packaging unit (also from a supply reel) that may be located downstream of the rod-forming unit 56. As the sheet of wrapper paper is transported and guided through the rod-forming unit 56 or a separate packaging unit, it can be wrapped around the aerosol-generating strips 16 and the susceptor patches 28 to package the continuous rod 88 in the wrapper 14.
[0080] Cutting the rod The continuous rod 88 (optionally circumscribed by the wrapper 14) is then conveyed to the rod cutting unit 58 and cut to length at appropriate locations to form a plurality of aerosol product articles 1. The aerosol product articles 1 formed by the rod cutting unit 58 may have a length of 5 mm to 50 mm, preferably 10 mm to 30 mm. It will be understood that this length corresponds to the length of the aerosol-generating substrate 10 described above and shown in FIGS. 1a and 1b. The continuous rod 88 is preferably repeatedly cut by the rod cutting unit 58 at substantially the midpoint between the edges of the susceptor patches 28. In this manner, the rod cutting unit 58 does not cut the susceptor patches 28, thereby reducing wear on the cutting elements. Furthermore, because the susceptor patches 28 are shorter than the aerosol-generating strips 16, the ends of the individual susceptor patches 28 (i.e., the elongated second strips 13) are not visible at either end of the aerosol product articles 1 formed by the rod cutting unit 58. It will be appreciated that this type of method is particularly suitable for mass production of the aerosol product 1.
[0081] Final assembly A further unit (not shown) may be located downstream of rod cutting unit 58 and configured to provide one or more additional elements, such as mouthpiece portion 20 described above, and assemble these together with the individual aerosol product items 1 formed by rod cutting unit 56 to form the finished aerosol product item 1, for example as shown in FIG. 1 . In this case, a separate packaging unit may be provided downstream of rod cutting unit 58 so that the assembled elements can be packaged together to form the finished aerosol product item 1. The further unit may form part of apparatus 230, or may be a separate, independent unit that forms part of the final assembly line.
[0082] While the preceding paragraphs describe several exemplary embodiments, it should be understood that various modifications may be made to these embodiments without departing from the scope of the appended claims. Thus, the breadth and scope of the claims should not be limited to the above-described exemplary embodiments.
[0083] Any combination of the above-described features in all possible variations thereof is encompassed by the present disclosure unless otherwise indicated herein or clearly contradicted by context.
[0084] Unless the context clearly indicates otherwise, throughout this specification and claims, the words "comprise", "comprising", and the like are to be construed in an inclusive sense, i.e., "including but not limited to," rather than in an exclusive or exhaustive sense.
Claims
1. An aerosol product (1), comprising: a plurality of elongated first strips (15) containing an aerosol-forming material; at least one second elongated strip (13) comprising an inductively heatable susceptor material; at least one elongated carrier strip (17) to which said at least one elongated second strip (13) is adhered; Including, each of the plurality of first elongated strips (15) has a width smaller than a width of the at least one second elongated strip (13); the width of said at least one elongated carrier strip (17) is greater than said width of said at least one second elongated strip (13); the first elongated strip (15), the at least one second elongated strip (13) and the at least one carrier elongated strip (17) are arranged to form a rod-shaped aerosol product item (1); Aerosol product (1).
2. 2. The aerosol product article of claim 1, wherein the at least one elongated second strip (13) has oppositely facing first and second surfaces (13b, 13c), and one of the oppositely facing first and second surfaces (13b, 13c) is covered in its entirety by the at least one elongated carrier strip (17).
3. The aerosol product product of claim 1 or 2, wherein the aerosol product product has only one elongated second strip (13) comprising an inductively heatable susceptor material, the elongated second strip (13) being positioned at a radially central position within the rod-shaped aerosol product product (1) and extending along the longitudinal axis of the rod-shaped aerosol product product (1).
4. 4. The aerosol product article according to any one of claims 1 to 3, wherein the at least one elongated carrier strip (17) and the at least one second elongated strip (13) adhered thereto define a first region (5) and a second region (6) within the cross section of the rod-shaped aerosol product article (1).
5. 5. The aerosol product of claim 4, wherein the at least one elongated carrier strip (17) has a first major surface (17a) and a second major surface (17b), the at least one elongated second strip (13) is adhered to the second major surface (17b), the first region (5) facing the first major surface (17a) and the second region (6) facing the second major surface (17b).
6. 6. An aerosol product article according to claim 4 or 5, wherein both the first region (5) and the second region (6) comprise a plurality of said first elongated strips (15).
7. 7. The aerosol product according to claim 1, wherein each of the plurality of first elongated strips (15) has a distal end (15a), the at least one second elongated strip (13) has a distal end (13a), the distal end (15a) of the first elongated strip (15) forms the distal end (11a) of the aerosol product article (1), and the distal end (13a) of the at least one second elongated strip (13) is located inward from the distal end (15a) of the first elongated strip (15), whereby the distal end (13a) of the at least one second elongated strip (13) is not visible at the distal end (11b) of the aerosol product article (1).
8. An aerosol product article according to any one of claims 1 to 7, wherein the length of said at least one elongated second strip (13) is smaller than the length of each of said elongated first strips (15).
9. An aerosol product article according to any one of the preceding claims, wherein the length of said at least one elongated carrier strip (17) is equal to the length of each of said first elongated strips (15).
10. An aerosol product article according to any one of claims 1 to 9, wherein the at least one elongate carrier strip (17) comprises an aerosol-forming material.
11. The aerosol product article according to any one of claims 1 to 10, further comprising a filter portion (24) at the proximal end (11b) of the aerosol product article (1) and at least one tubular portion (22, 23) upstream of the filter portion (24).
12. The aerosol product article according to any one of claims 1 to 11, wherein the first elongated strip (15) has a plurality of different orientations within the cross section of the rod-shaped aerosol product article (1).
13. An aerosol product article according to any one of the preceding claims, wherein said at least one second elongated strip (13) has a thickness of between 1 μm and 500 μm, preferably between 10 μm and 100 μm.
14. 14. An aerosol product article according to any one of claims 1 to 13, wherein each of the plurality of elongated first strips (15) has a length of between 5 mm and 50 mm, preferably each of the plurality of elongated first strips (15) has a length of between 10 mm and 30 mm.
15. 15. An aerosol product article according to any one of claims 1 to 14, wherein each of the plurality of elongated first strips (15) has a thickness of between 50 μm and 500 μm, preferably each of the plurality of elongated first strips (15) has a thickness of between 150 μm and 300 μm.
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