Electronic vapor provision device

Information

  • Patent Grant
  • 12285049
  • Patent Number
    12,285,049
  • Date Filed
    Wednesday, May 4, 2022
    3 years ago
  • Date Issued
    Tuesday, April 29, 2025
    8 months ago
  • CPC
    • A24F40/44
    • A24F40/40
    • A24F40/46
    • A24F40/10
  • Field of Search
    • CPC
    • A24F40/10
    • A24F40/40
    • A24F40/42
    • A24F40/44
    • A24F40/46
  • International Classifications
    • A24F40/40
    • A24F40/44
    • A24F40/46
    • A24F40/10
    • Term Extension
      182
Abstract
An electronic vapor provision device comprising a power cell and a vaporizer, wherein the vaporizer comprises a heater and a heater support, wherein the heater is one the inside of the heater support.
Description
TECHNICAL FIELD

The specification relates to electronic vapor provision devices.


BACKGROUND

Electronic vapor provision devices, such as electronic cigarettes, are typically cigarette-sized and typically function by allowing a user to inhale a nicotine vapor from a liquid store by applying a suction force to a mouthpiece. Some electronic vapor provision devices have an airflow sensor that activates when a user applies the suction force and causes a heater coil to heat up and vaporize the liquid.


SUMMARY

In an embodiment there is provided an electronic vapor provision device comprising a power cell and a vaporizer, where the vaporizer comprises a heating element and a heating element support, wherein the heating element is on the inside of the heating element support. One or more gaps may be provided between the heating element and the heating element support. Moreover, the electronic vapor provision device may have a mouthpiece section and the vaporizer may be part of the mouthpiece section. The heating element support may substantially fill the mouthpiece section.


In another embodiment there is provided a vaporizer for use in the vapor provision device, that comprises a heating element and a heating element support, wherein the heating element is on the inside of the heating element support.


In another embodiment there is provided an electronic vapor provision device comprising a liquid store; a wicking element configured to wick liquid from the liquid store to a heating element for vaporizing the liquid; an air outlet for vaporized liquid from the heating element; and a heating element support, wherein the heating element is on the inside of the heating element support. The heating element support may be the wicking element. Moreover, the electronic vapor provision device may include a power cell for powering the heating element.





BRIEF DESCRIPTION OF THE DRAWINGS

For a better understanding of the disclosure, and to show how example embodiments may be carried into effect, reference will now be made to the accompanying drawings in which:



FIG. 1 is a side perspective view of an electronic cigarette.



FIG. 2 is a schematic sectional view of an electronic cigarette having a parallel coil.



FIG. 3 is a side perspective view of a heating element coil.



FIG. 4 is a side perspective view of an outer heating element support.



FIG. 5 is a side perspective view of a heating element coil within an outer heating element support.



FIG. 6 is a side sectional view of a heating element coil within an outer heating element support.



FIG. 7 is an end view of a heating element coil within an outer heating element support, where a central channel has a square cross-section.



FIG. 8 is an end view of a heating element coil within an outer heating element support, where a central channel has a circular cross-section.



FIG. 9 is an end view of a heating element coil within an outer heating element support, where a central channel has an octagonal cross-section.



FIG. 10 is an end view of a heating element coil within an outer heating element support having an outer square cross-section, where a central channel has a square cross-section.



FIG. 11 is an end view of a heating element coil within an outer heating support having two sections.



FIG. 12 is an end view of a heating element coil within a side channel of a heating element support.



FIG. 13 is an end view of a heating element coil within a side channel of a heating element support, with a second support section.



FIG. 14 is an end view of a heating element coil within a side channel of a heating element support having a rectangular cross-section.



FIG. 15 is an end view of a heating element coil within a side channel of a heating element support having a rectangular cross-section, with a second support section.





DETAILED DESCRIPTION

In an embodiment there is provided an electronic vapor provision device comprising a power cell and a vaporizer, where the vaporizer comprises a heating element and a heating element support, wherein the heating element is on the inside of the heating element support. The electronic vapor provision device may be an electronic cigarette.


Having a separate heating element and support allows a finer heating element to be constructed. This is advantageous because a finer heating element can be more efficiently heated. Having the heating element on the inside of the support means that a much smaller and narrower heating element can be used since space is not needed inside the heating element to house a support. This enables a much larger and therefore stronger support to be used.


The heating element may not be supported on its inside. Having a heating element that is not supported on its inside means that a support does not interfere with the heating element on its inner region. This provides a greater heating element surface area which thereby increases the vaporization efficiency.


The heating element support may be a liquid store. A combined support and liquid store has the advantage that liquid can be easily transferred from the liquid store to the heating element supported by the liquid store. Also, by eliminating the need for a separate support, the device can be made smaller or a larger liquid store can be utilized for increased capacity.


One or more gaps may be provided between the heating element and the heating element support. Providing a gap between the heating element and the heating element support allows liquid to gather, and thereby be stored, in the gap region for vaporization. The gap can also act to wick liquid onto the heating element. Also, providing a gap between the heating element and support means that a greater surface area of the heating element is exposed thereby giving a greater surface area for heating and vaporization.


The heating element may be in contact with the heating element support at two or more locations. Moreover, the heating element may be in contact with the heating element support at points along the length of the support.


The heating element support may be a rigid and/or a solid support. Furthermore, the heating element support may be porous. For example, the heating element support may be formed of porous ceramic material.


The heating element support may be elongated in a lengthwise direction. Moreover, the heating element support may have a support channel and the heating element may be located in the support channel. Furthermore, the support channel may run in a lengthwise direction of the heating element support.


The support channel may be an internal support channel. Moreover, the support channel may be a central support channel. Alternatively, the support channel may be a side support channel, located on a side of the heating element support.


The support channel may be substantially cylindrical. Moreover, the cross-sectional shape of the support channel may be circular. Alternatively, the cross-sectional shape of the support channel may be a polygon. Furthermore, the cross-sectional shape of the support channel may have 4 sides, 6 sides or 8 sides. Cross-sections are sections perpendicular to the elongated lengthwise direction. These various shapes of support channel provide natural gaps between the support and a heating element coil within the support channel. These gaps lead to increased wicking, liquid storage and vaporization.


The heating element support may comprise a first support section and a second support section. Moreover, the heating element may be supported by the first support section and the second support section. For example, the heating element may be supported between the first support section and the second support section. Furthermore, the support channel may be provided between the first support section and the second support section and the heating element may be in the support channel. The first support section may provide a first side of the support channel and the second support section may provide a second side of the support channel.


Providing a support that comprises two separate sections provides an easier method of assembly. It also enables a more accurate and consistent positioning of the heating element relative to the support.


The heating element may run along the length of the support channel. Moreover, the heating element may be in contact with the support channel at points along the length of the support channel. The heating element may be in contact with the surface of the support channel along the length of the support channel.


The heating element may be a heating coil, such as a wire coil. The heating coil may be coiled so as to be supported along its length by the heating element support. The turns of the heating coil may be supported by the heating element support. The turns of the heating coil may be in contact with the heating element support. A gap may be provided between the heating coil and the heating element support. Moreover, the gap may be between a coil turn and heating element support. Furthermore, gaps may be between coil turns and the heating element support.


By providing a gap between a coil turn and the support, liquid can be wicked into the gap and held in the gap for vaporization. In particular, liquid can be wicked by the spaces between coil turns and into the gap between a coil turn and the support.


The vaporizer may have a vaporization cavity configured such that in use the vaporization cavity is a negative pressure region. At least part of the heating element may be inside the vaporization cavity, or the heating element may be entirely inside the vaporization cavity. For example, the vaporization cavity may be inside the heating element support. Moreover, the vaporization cavity may be inside a channel of the heating element support. At least part of the vaporization cavity may be inside the heating element.


By having the heating element in the vaporization cavity, which in turn is a negative pressure region when a user inhales through the electronic vapor provision device, the liquid is directly vaporized and inhaled by the user.


The electronic vapor provision device may further include a mouthpiece section and the vaporizer may be part of the mouthpiece section. Moreover, the heating element support may substantially fill the mouthpiece section.


The liquid store may not comprise an outer liquid store container.


Since the support is on the outside of the coil and can act as a liquid store, a liquid store container is not needed in addition to the liquid store, and the heating element support can fill the mouthpiece section to give greater storage capacity and a more efficient device.


The electronic vapor provision device may further include a heating element connecting wire and the heating element support may include a heating element connecting wire support section.


The heating element support may be substantially cylindrical. The outer cross-sectional shape of the heating element support may be a circle. Alternatively, the outer cross-sectional shape of the heating element support may be a polygon. The outer cross-sectional shape of the heating element support may have 4 sides.


Referring to FIG. 1 there is shown an embodiment of the electronic vapor provision device 1 in the form of an electronic cigarette 1 comprising a mouthpiece 2 and a body 3. The electronic cigarette 1 is shaped like a conventional cigarette having a cylindrical shape. The mouthpiece 2 has an air outlet 4 and the electronic cigarette 1 is operated when a user places the mouthpiece 2 of the electronic cigarette 1 in their mouth and inhales, drawing air through the air outlet 4. Both the mouthpiece 2 and body 3 are cylindrical and are configured to connect to each other coaxially so as to form the conventional cigarette shape.



FIG. 2 shows an example of the electronic cigarette 1 of FIG. 1. The body 3 is referred to herein as a battery assembly 5, and the mouthpiece 2 includes a liquid store 6 and a vaporizer 7. The electronic cigarette 1 is shown in its assembled state, wherein the detachable parts 2, 5 are connected. Liquid wicks from the liquid store 6 to the vaporizer 7. The battery assembly 5 provides electrical power to the vaporizer 7 via mutual electrical contacts of the battery assembly 5 and the mouthpiece 2. The vaporizer 7 vaporizes the wicked liquid and the vapor passes out of the air outlet 4. The liquid may for example comprise a nicotine solution.


The battery assembly 5 comprises a battery assembly casing 8, a power cell 9, electrical contacts 10 and a control circuit 11.


The battery assembly casing 8 comprises a hollow cylinder which is open at a first end 12. For example, the battery assembly casing 8 may be plastic. The electrical contacts 10 are located at the first end 12 of the casing 8, and the power cell 9 and control circuit 11 are located within the hollow of the casing 8. The power cell 9 may for example be a Lithium Cell.


The control circuit 11 includes an air pressure sensor 13 and a controller 14 and is powered by the power cell 9. The controller 14 is configured to interface with the air pressure sensor 13 and to control provision of electrical power from the power cell 9 to the vaporizer 7, via the electrical contacts 10.


The mouthpiece 2 further includes a mouthpiece casing 15 and electrical contacts 26. The mouthpiece casing 15 comprises a hollow cylinder which is open at a first end 16, with the air outlet 4 comprising a hole in the second end 17 of the casing 15. The mouthpiece casing 15 also comprises an air inlet 27, comprising a hole near the first end 16 of the casing 15. For example, the mouthpiece casing may be formed of aluminum.


The electrical contacts 26 are located at the first end of the casing 15. Moreover, the first end 16 of the mouthpiece casing 15 is releasably connected to the first end 12 of the battery assembly casing 8, such that the electrical contacts 26 of the mouthpiece 2 are electrically connected to the electrical contacts 10 of the battery assembly 5. For example, the device 1 may be configured such that the mouthpiece casing 15 connects to the battery assembly casing 8 by a threaded connection.


The liquid store 6 is situated within the hollow mouthpiece casing 15 towards the second end 17 of the casing 15. The liquid store 6 comprises a cylindrical tube of porous material saturated in liquid. The outer circumference of the liquid store 6 matches the inner circumference of the mouthpiece casing 15. The hollow of the liquid store 6 provides an air passageway 18. For example, the porous material of the liquid store 6 may comprise foam, wherein the foam is substantially saturated in the liquid intended for vaporization.


The vaporizer 7 comprises a vaporization cavity 19, a heating element support 20 and a heating element 21.


The vaporization cavity 19 comprises a region within the hollow of the mouthpiece casing 15 in which liquid is vaporized. The heating element 21 and a portion 22 of the support 20 are situated within the vaporization cavity 19.


The heating element support 20 is configured to support the heating element 21 and to facilitate vaporization of liquid by the heating element 21. The heating element support 20 is an outer support and is illustrated in FIGS. 4 to 7. The support 20 comprises a hollow cylinder of rigid, porous material and is situated within the mouthpiece casing 15, towards the first end 16 of the casing 15, such that it abuts the liquid store 6. The outer circumference of the support 20 matches the inner circumference of the mouthpiece casing 15. The hollow of the support comprises a longitudinal, central channel 23 through the length of the support 20. The channel 23 has a square cross-sectional shape, the cross-section being perpendicular to the longitudinal axis of the support.


The support 20 acts as a wicking element, as it is configured to wick liquid in the direction W from the liquid store 6 of the mouthpiece 2 to the heating element 21. For example, the porous material of the support 20 may be nickel foam, wherein the porosity of the foam is such that the described wicking occurs. Once liquid wicks W from the liquid store 6 to the support 20, it is stored in the porous material of the support 20. Thus, the support 20 is an extension of the liquid store 6.


The heating element 21 is formed of a single wire and comprises a heating element coil 24 and two leads 25, as is illustrated in FIGS. 3, 5, 6 and 7. For example, the heating element 21 may be formed of Nichrome. The coil 24 comprises a section of the wire where the wire is formed into a helix about an axis A. At either end of the coil 24, the wire departs from its helical form to provide the leads 25. The leads 25 are connected to the electrical contacts 26 and are thereby configured to route electrical power, provided by the power cell 9, to the coil 24.


The wire of the coil 24 is approximately 0.12 mm in diameter. The coil is approximately 25 mm in length, has an internal diameter of approximately 1 mm and a helix pitch of approximately 420 micrometers. The void between the successive turns of the coil 24 is therefore approximately 300 micrometers.


The coil 24 of the heating element 21 is located coaxially within the channel 23 of the support. The heating element coil 24 is thus coiled within the channel 23 of the heating element support 20. Moreover, the axis A of the coil 24 is thus parallel to the cylindrical axis B of the mouthpiece casing 15 and the longitudinal axis C of the electronic cigarette 1. Moreover, the device 1 is configured such that the axis A of the coil 24 is substantially parallel to airflow F through the device when a user sucks on the device. Use of the device 1 by a user is later described in more detail.


The coil 24 is the same length as the support 20, such that the ends of the coil 24 are flush with the ends of the support 20. The outer diameter of the helix of the coil 24 is similar to the cross-sectional width of the channel 23. As a result, the wire of the coil 24 is in contact with the surface 28 of the channel 23 and is thereby supported, facilitating maintenance of the shape of the coil 24. Each turn of the coil is in contact with the surface 28 of the channel 23 at a contact point 29 on each of the four walls 28 of the channel 23. The combination of the coil 24 and the support 20 provides a heating rod 30, as illustrated in FIGS. 5, 6 and 7. The heating rod 30 is later described in more detail with reference to FIGS. 5, 6 and 7.


The inner surface 28 of the support 20 provides a surface for liquid to wick onto the coil 24 at the points 29 of contact between the coil 24 and the channel 23 walls 28. The inner surface 28 of the support 20 also provides surface area for exposing wicked liquid to the heat of the heating element 21.


There exists a continuous inner cavity 31 within the electronic cigarette 1 formed by the adjacent hollow interiors' of the mouthpiece casing 15 and the battery assembly casing 8.


In use, a user sucks on the second end 17 of the mouthpiece casing 15. This causes a drop in the air pressure throughout the inner cavity 31 of the electronic cigarette 1, particularly at the air outlet 4.


The pressure drop within the inner cavity 31 is detected by the pressure sensor 13. In response to detection of the pressure drop by the pressure sensor 13, the controller 14 triggers the provision of power from the power cell 9 to the heating element 21 via the electrical contacts 10, 26. The coil of the heating element 21 therefore heats up. Once the coil 17 heats up, liquid in the vaporization cavity 19 is vaporized. In more detail, liquid on the coil 24 is vaporized, liquid on the inner surface 28 of the heating element support 20 is vaporized and liquid in the portions 22 of the support 20 which are in the immediate vicinity of the heating element 21 may be vaporized.


The pressure drop within the inner cavity 31 also causes air from outside of the electronic cigarette 1 to be drawn, along route F, through the inner cavity from the air inlet 27 to the air outlet 4. As air is drawn along route F, it passes through the vaporization cavity 19, picking up vaporized liquid, and the air passageway 18. The vaporized liquid is therefore conveyed along the air passageway 18 and out of the air outlet 4 to be inhaled by the user.


As the air containing the vaporized liquid is conveyed to the air outlet 4, some of the vapor may condense, producing a fine suspension of liquid droplets in the airflow. Moreover, movement of air through the vaporizer 7 as the user sucks on the mouthpiece 2 can lift fine droplets of liquid off of the heating element 21 and/or the heating element support 20. The air passing out of the air outlet 4 may therefore comprise an aerosol of fine liquid droplets as well as vaporized liquid.


With reference to FIGS. 5, 6 and 7, due to the cross-sectional shape of the channel, gaps 35 are formed between the inner surface 28 of the heating element support 20 and the coil 24. In more detail, where the wire of the coil 24 passes between contact points 29, a gap 35 is provided between the wire and the area of the inner surface 28 closest to the wire due to the wire substantially maintaining its helical form. The distance between the wire and the surface 28 at each gap 35 is in the range of 10 micrometers to 500 micrometers. The gaps 35 are configured to facilitate the wicking of liquid onto the coil 24 through capillary action at the gaps 35. The gaps 35 also provide areas in which liquid can gather prior to vaporization, and thereby provide areas for liquid to be stored prior to vaporization. The gaps 35 also expose more of the coil 24 for increased vaporization in these areas.


Many alternatives and variations are possible. For example, in embodiments, the electronic vapor provision device 1 may be configured such that the coil 24 is mounted perpendicular to a longitudinal axis C of the device. Moreover, FIGS. 8 to 15 show examples of different heating rod 30 configurations.



FIG. 8 shows another example heating element support 20. This is similar to the example above with the exception that the internal channel 23 has a circular cross-section rather than a square one. The coil 24 fits inside the channel 23 such that the coil turns are in contact with the channel walls 28. There is greater contact between the coil 24 and the channel walls 28 than the example above, with the entire coil 24 generally in contact with the channel walls 28 rather than contact at given points 29.


This increase in contact area means that more liquid can be transferred to the full length of the coil rather than particular points 29. However, since the coil 24 is generally in constant contact with the heating element support 20, less of the coil surface area is exposed. So in use, when the coil 24 heats up, there will be less vaporization surface.


These two examples show that a balance can be achieved between the amount of liquid on the coil 24 and the amount of vaporization surface exposed. This balance is varied by changing the amount of contact between the coil 24 and the channel 23 of the heating element support 20.



FIG. 9 shows an example where the amount of contact between the coil 24 and the channel 23 walls 28 lies between the examples shown in FIGS. 7 and 8. In this example, the channel 23 has an octagonal cross-section rather than a circle or a square. As such, the coil 24 has coil turns which are generally in contact with the channel 23 of the heating element support 20 at 8 points 29 of contact. More gaps 35 are provided by the configuration of FIG. 9 than the configuration of FIGS. 3 to 7. Moreover, the provided gaps 35 are smaller, leading to greater capillary action at the gaps.


When compared to the channel 23 with the square cross-section, the increased contact, greater number of gaps 35 and smaller gap sizes all facilitate increased liquid transfer onto the coil 24. The increased exposed coil 24 surface compared to the channel 23 with the circular cross-section allows for more exposed vaporization surface for increased vaporization.


In this way it can be seen that providing a heating element support 20 with an internal channel 23 having a regular polygon cross-section can be used to modify the amount of liquid transfer and the degree of vaporization by selecting the number of polygon sides. Thus, an optimum channel 23 cross-section can be selected.


In the examples above, the heating element support 20 has a cylindrical shape and therefore the outer surface cross-sectional shape is circular. This shape is advantageous because the mouthpiece 2 section is also cylindrical so the heating element support 20 can be efficiently fitted into the mouthpiece 2 to minimize wasted space.


Other outer surface cross-sectional shapes may for example be configured as shown in FIG. 10 having a heating element support 20 with a square outer cross-sectional shape.



FIG. 11 shows a heating element support 20 comprising a first support section 36 and a second support section 37. The heating element support 20 is generally cylindrical in shape and the first support section 36 and second support section 37 are half cylinders, with generally semi-circular cross-sections, which are joined together to form the cylindrical shape of the heating element support 20.


The first support section 36 and second support section 37 each comprise a side channel 38, or groove 38, running along their respective lengths, along the middle of their otherwise flat longitudinal faces. When the first support section 36 is joined to the second support section 37 to form the heating element support 20, their respective side channels 38 together form the heating elements support 20 internal channel 23.


In this example, the combined side channels 28 form an internal channel 23 having a square cross-sectional shape. Thus, the side channels 28 are each rectangular in cross-section. As in the examples above, the coil 24 is situated within the heating element support 20 internal channel 23. Having a heating element support 20 that comprises two separate parts 36, 37 facilitates manufacture of this component. During manufacturing, the coil 24 can be fitted into the side channel 28 of the first support section 36, and the second support section 37 can be placed on top to form the completed heating element support 20.


Other arrangements can also be considered to aid the construction of the heating element support 20 and coil 24 combination. FIG. 12 shows an example having a generally cylindrical heating element support 20 similar to that shown in FIG. 7. However, the internal channel 23 is comprises a side channel 38 and the coil is thus not completely enclosed. The coil 24 can therefore be easily fitted into the open side channel 23, 38. Because the channel 23, 38 is open, the coil 24 has coil turns that are in contact with the channel walls 28 at three points 29 of contact rather than four.



FIG. 13 shows an example similar to that shown in FIG. 12 where the heating element support 20 of FIG. 12 is a first support section 36 and a second support section 37 is arranged such that it runs along the open channel 23, 38, plugging the open channel 38 and thereby closing it, and providing a combined arrangement similar to that shown in FIG. 7. Thus the coil 24 is enclosed inside an internal combined channel 23 and the coil turns are in contact with the channel 23 at four points 29 of contact, three points 29 of contact with the first support section 36 and one point 29 of contact with the second support section 36.



FIG. 14 shows an example similar to that shown in FIG. 12 with the exception that the heating element support 20 has an outer rectangular cross-sectional shape. The coil 24 has coil turns having three points 29 of contact with the heating element support 20 channel 23.



FIG. 15 shows an example similar to that shown in FIG. 13 where a first support section 36 has an open side channel 38 and the coil 24 is fitted in this side channel. A second support section 37 is placed next to the first support section so that the coil 24 is enclosed between the support sections providing an arrangement similar to that shown in FIG. 10. The coil 24 has coil turns with four points 29 of contact with the heating element support 20 channel 23, 38, three with the first support section 36 and one with the second support section 37. Once the first support section 36 and the second support section 37 are joined to form the support 20, the formed support is substantially rectangular.


The wire of the coil 24 is described above as being approximately 0.12 mm thick. However, other wire diameters are possible. For example, the diameter of the coil 24 wire may be in the range of 0.05 mm to 0.2 mm. Moreover, the coil 24 length may be different to that described above. For example, the coil 24 length may be in the range of 20 mm to 40 mm.


The internal diameter of the coil 24 may be different to that described above. For example, the internal diameter of the coil 24 may be in the range of 0.5 mm to 2 mm.


The pitch of the helical coil 24 may be different to that described above. For example, the pitch may be between 120 micrometers and 600 micrometers.


Furthermore, although the distance of the voids between turns of the coil is described above as being approximately 300, different void distances are possible. For example, the void may be between 20 micrometers and 500 micrometers.


The size of the gaps 35 may be different to that described above.


In embodiments, the support 20 may be located partially or entirely within liquid store 6. For example, the support 20 may be located coaxially within the tube of the liquid store 6.


An air pressure sensor 13 is described herein. In embodiments, an airflow sensor may be used to detect that a user is sucking on the device 1.


The heating element 21 is not restricted to having a uniform coil 24. Moreover, in embodiments the coil 24 is described as being the same length as the support 20. However, the coil 24 may be shorter in length than the support 20 and may therefore reside entirely within the bounds of the support 20. Alternatively, the coil 24 may be longer than the support 20.


An electronic vapor provision device 1 comprising an electronic cigarette 1 is described herein. However, other types of electronic vapor provision device 1 are possible.


Liquid may not be wicked and/or stored by the support 20 and could instead be wicked from the liquid store 6 to the coil and/or the inner surface 28 of the support 20 by a separate wicking element. In this case, the support 20 may not be porous.


Internal support channels 23 with cross-sectional shapes other than those described could be used.


The electronic vapor provision device 1 is not restricted to the sequence of components described and other sequences could be used such as the control circuit 11 being in the tip of the device 1 or the liquid store 6 being in the body 3 rather than the mouthpiece 2.


The electronic vapor provision device 1 of FIG. 2 is described as comprising two detachable parts, the mouthpiece 2 and the body 3, comprising the battery assembly 5. Alternatively, the device 1 may be configured such these parts 2, 5 are combined into a single integrated unit. In other words, the mouthpiece 2 and the body 3 may not be detachable.


Reference herein to a vaporization cavity 19 may be replaced by reference to a vaporization region.


Although examples have been shown and described it will be appreciated by those skilled in the art that various changes and modifications might be made without departing from the scope of the invention.


In order to address various issues and advance the art, the entirety of this disclosure shows by way of illustration various embodiments in which the claimed invention(s) may be practiced and provide for superior electronic vapor provision. The advantages and features of the disclosure are of a representative sample of embodiments only, and are not exhaustive and/or exclusive. They are presented only to assist in understanding and teach the claimed features. It is to be understood that advantages, embodiments, examples, functions, features, structures, and/or other aspects of the disclosure are not to be considered limitations on the disclosure as defined by the claims or limitations on equivalents to the claims, and that other embodiments may be utilized and modifications may be made without departing from the scope and/or spirit of the disclosure. Various embodiments may suitably comprise, consist of, or consist essentially of, various combinations of the disclosed elements, components, features, parts, steps, means, etc. In addition, the disclosure includes other inventions not presently claimed, but which may be claimed in future. Any feature of any embodiment can be used independently of, or in combination with, any other feature.

Claims
  • 1. An electronic vapor provision device comprising a power cell and a vaporizer, where the vaporizer comprises a heating element and a heating element support, wherein the heating element is on the inside of the heating element support, wherein one or more gaps are provided between the heating element and the inner surface of the heating element support, wherein the heating element is in contact with the heating element support at two or more locations, wherein the heating element support is elongated in a lengthwise direction, wherein the vaporizer further comprises a vaporization region configured such that in use the vaporization region is a negative pressure region, wherein at least part of the heating element is inside the vaporization region,wherein the heating element support is substantially cylindrical, wherein the outer cross-sectional shape of the heating element support is a circle, andwherein the heating element support includes a support channel in which the heating element is located, wherein the cross-sectional shape of the heating element support channel is a polygon.
  • 2. The electronic vapor provision device of claim 1, wherein the electronic vapor provision device further comprises a mouthpiece section and the vaporizer is part of the mouthpiece section.
  • 3. The electronic vapor provision device of claim 1, wherein the heating element is located such that the axis of the heating element is substantially parallel to airflow though the device when a user sucks on the device.
  • 4. The electronic vapor provision device of claim 1, wherein the heating element is the same length as the heating element support, such that ends of the heating element are flush with ends of the heating element support.
  • 5. The electronic vapor provision device of claim 1, wherein the distance between the heating element and the inner surface of the heating element support at each gap is in the range of 10 micrometers to 500 micrometers.
  • 6. The electronic vapor provision device of claim 1, wherein the heating element is not supported on its inside.
  • 7. The electronic vapor provision device of claim 1, wherein the heating element support is porous.
  • 8. The electronic vapor provision device of claim 1, wherein the vaporization region is inside the heating element support.
  • 9. A mouthpiece section adapted to detachably couple to a battery assembly of an electronic vapor provision device comprising a power cell, wherein the mouthpiece section comprises a vaporizer, where the vaporizer comprises a heating element and a heating element support, wherein the heating element is on the inside of the heating element support, wherein one or more gaps are provided between the heating element and the inner surface of the heating element support, wherein the heating element is in contact with the heating element support at two or more locations, wherein the heating element support is elongated in a lengthwise direction, wherein the vaporizer further comprises a vaporization region configured such that in use the vaporization region is a negative pressure region, wherein at least part of the heating element is inside the vaporization region, wherein the heating element support is substantially cylindrical, wherein the outer cross-sectional shape of the heating element support is a circle, wherein the heating element support includes a support channel in which the heating element is located, and wherein the cross-sectional shape of the heating element support channel is a polygon.
Priority Claims (1)
Number Date Country Kind
1212603 Jul 2012 GB national
RELATED APPLICATION

This application is a continuation of application Ser. No. 16/750,077, filed Jan. 23, 2020, which is a continuation of application Ser. No. 15/959,687, filed Apr. 23, 2018, now patented as U.S. Pat. No. 10,582,729, issued Mar. 10, 2022, which in turn is a divisional of application Ser. No. 14/415,540, filed Jan. 16, 2015, now patented as U.S. Pat. No. 9,974,335, issued May 22, 2018, which in turn is a National Phase entry of PCT Application No. PCT/EP2013/064950, filed Jul. 15, 2013, which claims the benefit of United Kingdom Application No. GB1212603.3, filed Jul. 16, 2012, each of which is hereby fully incorporated herein by reference.

US Referenced Citations (240)
Number Name Date Kind
2057353 Whittemore, Jr. Oct 1936 A
2809634 Hirotada Oct 1957 A
2937648 Meyer May 1960 A
2991788 Brost Jul 1961 A
3111396 Ball Nov 1963 A
3148996 Vukasovich et al. Sep 1964 A
3239117 Letchworth Mar 1966 A
3402724 Blount et al. Sep 1968 A
3431393 Katsuda Mar 1969 A
3433632 Elbert et al. Mar 1969 A
3521643 Toth Jul 1970 A
3604428 Moukaddem Sep 1971 A
3804100 Fariello Apr 1974 A
3844199 Block et al. Oct 1974 A
3964902 Fletcher et al. Jun 1976 A
4009713 Simmons et al. Mar 1977 A
4031906 Knapp Jun 1977 A
4094119 Sullivan Jun 1978 A
4145001 Weyenberg et al. Mar 1979 A
4161283 Hyman Jul 1979 A
4193513 Bull Mar 1980 A
4219031 Full et al. Aug 1980 A
4503851 Braunroth Mar 1985 A
4588976 Jaselli May 1986 A
4676237 Wood et al. Jun 1987 A
4735217 Gerth et al. Apr 1988 A
4827950 Banerjee et al. May 1989 A
4830028 Lawson et al. May 1989 A
4846199 Rose Jul 1989 A
4848374 Chard et al. Jul 1989 A
4885129 Leonard et al. Dec 1989 A
4917301 Munteanu Apr 1990 A
4922901 Brooks et al. May 1990 A
4924886 Litzinger May 1990 A
4947874 Brooks et al. Aug 1990 A
4947875 Brooks et al. Aug 1990 A
4978814 Honour Dec 1990 A
5027837 Clearman et al. Jul 1991 A
5046514 Bolt Sep 1991 A
5060671 Counts et al. Oct 1991 A
5065776 Lawson et al. Nov 1991 A
5095647 Zobele et al. Mar 1992 A
5095921 Losee et al. Mar 1992 A
5099861 Clearman et al. Mar 1992 A
5115823 Keritsis May 1992 A
5121881 Lembeck Jun 1992 A
5129409 White et al. Jul 1992 A
5144962 Counts et al. Sep 1992 A
5167242 Turner et al. Dec 1992 A
5179966 Losee et al. Jan 1993 A
5247947 Clearman et al. Sep 1993 A
5322075 Deevi et al. Jun 1994 A
5369723 Counts et al. Nov 1994 A
5388574 Ingebrethsen Feb 1995 A
5390864 Alexander Feb 1995 A
5415186 Casey et al. May 1995 A
5415486 Wouters et al. May 1995 A
5479948 Counts et al. Jan 1996 A
5497792 Prasad et al. Mar 1996 A
5501236 Hill et al. Mar 1996 A
5505214 Collins et al. Apr 1996 A
5540241 Kim Jul 1996 A
5553791 Alexander Sep 1996 A
5611360 Tang Mar 1997 A
5636787 Gowhari Jun 1997 A
5649554 Sprinkel et al. Jul 1997 A
5666977 Higgins et al. Sep 1997 A
5692291 Deevi et al. Dec 1997 A
5692526 Adams et al. Dec 1997 A
5743251 Howell et al. Apr 1998 A
5865185 Collins et al. Feb 1999 A
5954060 Cardarelli Sep 1999 A
6095505 Miller Aug 2000 A
6155268 Takeuchi Dec 2000 A
6275650 Lambert Aug 2001 B1
6280793 Atwell et al. Aug 2001 B1
6532965 Abhulimen et al. Mar 2003 B1
6652804 Neumann et al. Nov 2003 B1
6681998 Sharpe et al. Jan 2004 B2
6701921 Sprinkel et al. Mar 2004 B2
6790496 Levander et al. Sep 2004 B1
7100618 Dominguez Sep 2006 B2
7112712 Ancell Sep 2006 B1
7263228 Mori Aug 2007 B2
7400940 Mcrae et al. Jul 2008 B2
7540286 Cross et al. Jun 2009 B2
7767698 Warchol et al. Aug 2010 B2
7832410 Hon Nov 2010 B2
7992554 Radomski et al. Aug 2011 B2
8156944 Han Apr 2012 B2
8205622 Pan Jun 2012 B2
8365742 Hon Feb 2013 B2
8375957 Hon Feb 2013 B2
8393331 Hon Mar 2013 B2
8430106 Potter et al. Apr 2013 B2
8490628 Hon Jul 2013 B2
8511318 Hon Aug 2013 B2
8689805 Hon Apr 2014 B2
8752545 Buchberger Jun 2014 B2
8833364 Buchberger Sep 2014 B2
8948578 Buchberger Feb 2015 B2
8975764 Abehasera Mar 2015 B1
9623205 Buchberger Apr 2017 B2
9943108 Lord Apr 2018 B2
9974335 Lord May 2018 B2
10111466 Lord Oct 2018 B2
10278421 Lord May 2019 B2
10582729 Lord Mar 2020 B2
10588354 Lord Mar 2020 B2
20010042546 Umeda et al. Nov 2001 A1
20020016370 Shytle et al. Feb 2002 A1
20020079309 Cox et al. Jun 2002 A1
20030005620 Ananth et al. Jan 2003 A1
20030049025 Neumann et al. Mar 2003 A1
20030063902 Pedrotti et al. Apr 2003 A1
20030079309 Vandenbelt et al. May 2003 A1
20030106552 Sprinkel et al. Jun 2003 A1
20030200964 Blakley et al. Oct 2003 A1
20040031485 Rustad et al. Feb 2004 A1
20040065749 Kotary et al. Apr 2004 A1
20040129793 Nguyen et al. Jul 2004 A1
20050204799 Koch Sep 2005 A1
20050268911 Cross et al. Dec 2005 A1
20060078477 Althouse et al. Apr 2006 A1
20060131439 Lakatos et al. Jun 2006 A1
20070014549 Demarest et al. Jan 2007 A1
20070062548 Horstmann et al. Mar 2007 A1
20070102013 Adams et al. May 2007 A1
20070107879 Radomski et al. May 2007 A1
20070137667 Zhuang et al. Jun 2007 A1
20070155255 Galauner et al. Jul 2007 A1
20070283972 Monsees et al. Dec 2007 A1
20080092912 Robinson et al. Apr 2008 A1
20080216828 Wensley et al. Sep 2008 A1
20080241255 Rose et al. Oct 2008 A1
20090095311 Han Apr 2009 A1
20090188490 Han Jul 2009 A1
20090272379 Thorens et al. Nov 2009 A1
20090288668 Inagaki Nov 2009 A1
20090293888 Williams et al. Dec 2009 A1
20090293892 Williams et al. Dec 2009 A1
20090302019 Selenski et al. Dec 2009 A1
20100006113 Urtsev et al. Jan 2010 A1
20100024834 Oglesby et al. Feb 2010 A1
20100059070 Potter et al. Mar 2010 A1
20100065653 Wingo et al. Mar 2010 A1
20100083959 Siller Apr 2010 A1
20100108059 Axelsson et al. May 2010 A1
20100236546 Yamada et al. Sep 2010 A1
20110005535 Xiu Jan 2011 A1
20110011396 Fang Jan 2011 A1
20110036363 Urtsev et al. Feb 2011 A1
20110094523 Thorens Apr 2011 A1
20110126848 Zuber et al. Jun 2011 A1
20110155153 Thorens et al. Jun 2011 A1
20110168194 Hon Jul 2011 A1
20110209717 Han Sep 2011 A1
20110226236 Buchberger Sep 2011 A1
20110232654 Mass Sep 2011 A1
20110277756 Terry et al. Nov 2011 A1
20110277757 Terry et al. Nov 2011 A1
20110290267 Yamada et al. Dec 2011 A1
20110297166 Takeuchi et al. Dec 2011 A1
20110303231 Li et al. Dec 2011 A1
20120006343 Renaud et al. Jan 2012 A1
20120111347 Hon May 2012 A1
20120145169 Wu Jun 2012 A1
20120179512 Okeeffe Jul 2012 A1
20120227753 Newton Sep 2012 A1
20120234821 Shimizu Sep 2012 A1
20120255567 Rose et al. Oct 2012 A1
20120260927 Liu Oct 2012 A1
20120279512 Hon Nov 2012 A1
20120285475 Liu Nov 2012 A1
20120285476 Hon Nov 2012 A1
20130037041 Worm et al. Feb 2013 A1
20130056013 Terry et al. Mar 2013 A1
20130074857 Buchberger Mar 2013 A1
20130081619 Seakins et al. Apr 2013 A1
20130081623 Buchberger Apr 2013 A1
20130192615 Tucker et al. Aug 2013 A1
20130192623 Tucker et al. Aug 2013 A1
20130213417 Chong et al. Aug 2013 A1
20130213419 Tucker et al. Aug 2013 A1
20130284192 Peleg et al. Oct 2013 A1
20130298905 Levin et al. Nov 2013 A1
20130306085 Sanchez et al. Nov 2013 A1
20130333700 Buchberger Dec 2013 A1
20130340779 Liu Dec 2013 A1
20140000638 Sebastian et al. Jan 2014 A1
20140007863 Chen Jan 2014 A1
20140024834 Mergelsberg et al. Jan 2014 A1
20140060528 Liu Mar 2014 A1
20140060529 Zhang Mar 2014 A1
20140060554 Collett et al. Mar 2014 A1
20140060555 Chang et al. Mar 2014 A1
20140069444 Cyphert et al. Mar 2014 A1
20140202454 Buchberger Jul 2014 A1
20140209105 Sears et al. Jul 2014 A1
20140238396 Buchberger Aug 2014 A1
20140238423 Tucker et al. Aug 2014 A1
20140238424 Macko et al. Aug 2014 A1
20140261490 Kane Sep 2014 A1
20140270730 Depiano et al. Sep 2014 A1
20140283825 Buchberger Sep 2014 A1
20140286630 Buchberger Sep 2014 A1
20140299125 Buchberger Oct 2014 A1
20140299142 Dincer et al. Oct 2014 A1
20140338680 Abramov et al. Nov 2014 A1
20150020831 Weigensberg et al. Jan 2015 A1
20150114411 Buchberger Apr 2015 A1
20150150302 Metrangolo et al. Jun 2015 A1
20150157055 Lord Jun 2015 A1
20150196058 Lord Jul 2015 A1
20150201675 Lord Jul 2015 A1
20150208728 Lord Jul 2015 A1
20150245654 Memari et al. Sep 2015 A1
20150258288 Sullivan Sep 2015 A1
20150333552 Alarcon Nov 2015 A1
20150333561 Alarcon Nov 2015 A1
20160073693 Reevell Mar 2016 A1
20160106154 Lord Apr 2016 A1
20160106155 Reevell Apr 2016 A1
20160250201 Rose et al. Sep 2016 A1
20160278436 Verleur et al. Sep 2016 A1
20160295923 Lin Oct 2016 A1
20160353804 Lord Dec 2016 A1
20170042245 Buchberger et al. Feb 2017 A1
20170114965 Maglica et al. Apr 2017 A1
20170143042 Batista et al. May 2017 A1
20170173278 Buchberger Jun 2017 A1
20170197043 Buchberger Jul 2017 A1
20170197044 Buchberger Jul 2017 A1
20170197046 Buchberger Jul 2017 A1
20170208865 Nettenstrom et al. Jul 2017 A1
20170251725 Buchberger et al. Sep 2017 A1
20180192705 Lord Jul 2018 A1
20180199618 Fuisz et al. Jul 2018 A1
20180235284 Lord Aug 2018 A1
20210100285 Spencer et al. Apr 2021 A1
Foreign Referenced Citations (225)
Number Date Country
508244 Dec 2010 AT
6393173 Jun 1975 AU
2309376 Nov 2000 CA
2864238 Aug 2013 CA
103974639 Aug 2014 CA
698603 Sep 2009 CH
1040496 Mar 1990 CN
2082939 Aug 1991 CN
2092880 Jan 1992 CN
2220168 Feb 1996 CN
2249068 Mar 1997 CN
1205849 Jan 1999 CN
2719043 Aug 2005 CN
1925757 Mar 2007 CN
201054977 May 2008 CN
201079011 Jul 2008 CN
101277623 Oct 2008 CN
201238609 May 2009 CN
101500443 Aug 2009 CN
201375023 Jan 2010 CN
201379072 Jan 2010 CN
201468000 May 2010 CN
101795505 Aug 2010 CN
101843368 Sep 2010 CN
101878958 Nov 2010 CN
202085723 Dec 2011 CN
202172846 Mar 2012 CN
102655773 Sep 2012 CN
202722498 Feb 2013 CN
202750708 Feb 2013 CN
103070472 May 2013 CN
203168033 Sep 2013 CN
103750573 Apr 2014 CN
103929988 Jul 2014 CN
103974369 Aug 2014 CN
104095293 Oct 2014 CN
203943069 Nov 2014 CN
204120237 Jan 2015 CN
104349687 Feb 2015 CN
106102863 Nov 2016 CN
822964 Nov 1951 DE
1950439 Apr 1971 DE
3148335 Jul 1983 DE
3218760 Dec 1983 DE
3844022 Feb 1990 DE
3936687 May 1990 DE
29713866 Oct 1997 DE
19630619 Feb 1998 DE
19654945 Mar 1998 DE
10330681 Jun 2004 DE
202006013439 Oct 2006 DE
102006004484 Aug 2007 DE
102007011120 Sep 2008 DE
202013100606 Feb 2013 DE
015651 Oct 2011 EA
201100197 Mar 2012 EA
0280262 Aug 1988 EP
0295122 Dec 1988 EP
0358002 Mar 1990 EP
0444553 Sep 1991 EP
0488488 Jun 1992 EP
0532194 Mar 1993 EP
0712584 May 1996 EP
0845220 Jun 1998 EP
0893071 Jan 1999 EP
1166814 Jan 2002 EP
1166847 Jan 2002 EP
1283062 Feb 2003 EP
0845220 Sep 2003 EP
1486226 Dec 2004 EP
1736065 Dec 2006 EP
2018886 Jan 2009 EP
2022349 Feb 2009 EP
1736065 Jun 2009 EP
2113178 Nov 2009 EP
2119375 Nov 2009 EP
2327318 Jun 2011 EP
2340729 Jul 2011 EP
2394520 Dec 2011 EP
2404515 Jan 2012 EP
2444112 Apr 2012 EP
2444411 Apr 2012 EP
2695531 Feb 2014 EP
2698070 Feb 2014 EP
2762019 Aug 2014 EP
2835062 Feb 2015 EP
2939553 Nov 2015 EP
2083643 Sep 2017 EP
960469 Apr 1950 FR
25575 Mar 1912 GB
1313525 Apr 1973 GB
2333466 Jul 1999 GB
2488257 Aug 2012 GB
2496105 May 2013 GB
1196511 Dec 2014 HK
1226611 Oct 2017 HK
S5130900 Mar 1976 JP
S5752456 Mar 1982 JP
S59106340 Jun 1984 JP
S6196763 May 1986 JP
S6196765 May 1986 JP
H02124081 May 1990 JP
H0339077 Feb 1991 JP
H05103836 Apr 1993 JP
H05309136 Nov 1993 JP
H06315366 Nov 1994 JP
H07502188 Mar 1995 JP
H0878142 Mar 1996 JP
H08299862 Nov 1996 JP
H1189551 Apr 1999 JP
H11507234 Jun 1999 JP
2002527153 Aug 2002 JP
3392138 Mar 2003 JP
2004332069 Nov 2004 JP
2005537918 Dec 2005 JP
2006504431 Feb 2006 JP
2007259864 Oct 2007 JP
2007267749 Oct 2007 JP
2009502136 Jan 2009 JP
2009504431 Feb 2009 JP
3153675 Sep 2009 JP
2009537119 Oct 2009 JP
2010520742 Jun 2010 JP
3164992 Dec 2010 JP
2011518567 Jun 2011 JP
2012517229 Aug 2012 JP
5130900 Jan 2013 JP
2013545473 Dec 2013 JP
2014076065 May 2014 JP
2014525237 Sep 2014 JP
2015506170 Mar 2015 JP
2015524257 Aug 2015 JP
20050037919 Apr 2005 KR
20110006928 Jan 2011 KR
20110006928 Jul 2011 KR
101081481 Nov 2011 KR
2004116065 Jun 2005 RU
2311859 Dec 2007 RU
2336001 Oct 2008 RU
89927 Dec 2009 RU
94815 Jun 2010 RU
103281 Apr 2011 RU
2420290 Jun 2011 RU
110608 Nov 2011 RU
115629 May 2012 RU
122000 Nov 2012 RU
124120 Jan 2013 RU
2480485 Apr 2013 RU
145715 Sep 2014 RU
158129 Dec 2015 RU
1641182 Apr 1991 SU
201225862 Jul 2012 TW
9406313 Mar 1994 WO
9502712 Jan 1995 WO
9527412 Oct 1995 WO
9632854 Oct 1996 WO
9639880 Dec 1996 WO
9748293 Dec 1997 WO
9836651 Aug 1998 WO
0009188 Feb 2000 WO
0021598 Apr 2000 WO
02058747 Aug 2002 WO
2002061701 Aug 2002 WO
03028409 Apr 2003 WO
03050405 Jun 2003 WO
03083283 Oct 2003 WO
03101454 Dec 2003 WO
2004022128 Mar 2004 WO
2004022242 Mar 2004 WO
2004022243 Mar 2004 WO
2004080216 Sep 2004 WO
2005106350 Nov 2005 WO
2006048774 May 2006 WO
2006082571 Aug 2006 WO
2006124757 Nov 2006 WO
2007012007 Jan 2007 WO
2007042941 Apr 2007 WO
2007078273 Jul 2007 WO
2007131449 Nov 2007 WO
2008015441 Feb 2008 WO
2008029381 Mar 2008 WO
2009015410 Feb 2009 WO
2009022232 Feb 2009 WO
2009132793 Nov 2009 WO
2010045670 Apr 2010 WO
2010045671 Apr 2010 WO
2010091593 Aug 2010 WO
2011060788 May 2011 WO
2011079932 Jul 2011 WO
2011106788 Sep 2011 WO
2011107737 Sep 2011 WO
2011109849 Sep 2011 WO
2011124033 Oct 2011 WO
2011137453 Nov 2011 WO
2011146372 Nov 2011 WO
2011160788 Dec 2011 WO
2012025496 Mar 2012 WO
2012072264 Jun 2012 WO
2012072762 Jun 2012 WO
2012156700 Nov 2012 WO
2013034453 Mar 2013 WO
2013034460 Mar 2013 WO
2013057185 Apr 2013 WO
2013060784 May 2013 WO
2013076098 May 2013 WO
2013082173 Jun 2013 WO
2013083631 Jun 2013 WO
2013083634 Jun 2013 WO
2013098395 Jul 2013 WO
2013116558 Aug 2013 WO
2013116571 Aug 2013 WO
2013148810 Oct 2013 WO
2013149404 Oct 2013 WO
2013178766 Dec 2013 WO
2014061477 Apr 2014 WO
2014104078 Jul 2014 WO
2014106093 Jul 2014 WO
2014130695 Aug 2014 WO
2014136872 Sep 2014 WO
2014140320 Sep 2014 WO
2014150131 Sep 2014 WO
2015117702 Aug 2015 WO
2016156493 Oct 2016 WO
2016162446 Oct 2016 WO
2017055866 Apr 2017 WO
Non-Patent Literature Citations (110)
Entry
“Cambridge Dictionary Sleeve Definition”, available at <dictionary/Cambridge.org/dictionary/English/sleeve>, Feb. 9, 2019.
“Canada Office Action, Application No. 2,878,973, mailed Jan. 22, 2016”.
“Canadian Office Action, Application No. 2,878,959, dated Jan. 18, 2016”.
“Chinese First Office Action for Chinese Application No. 200980152395.4 date issued Dec. 3, 2012”.
“Chinese Office Action and Chinese Search Report, Chinese Application No. CN201680020844.X, mailed Jun. 24, 2019”.
“Chinese Office Action and Search Report, Chinese Application No. 201680020842.0, mailed Jun. 21, 2019”.
“Chinese Office Action, Application No. 201680020844.X, dated Jul. 2, 2019”.
“Chinese Office Action, Chinese Application No. 201380038055.5, dated Jul. 11, 2017”.
“Chinese Office Action, Chinese Application No. 201380038055.5, mailed on Apr. 18, 2016”.
“Chinese Office Action, Chinese Application No. 201680020758.9, mailed Jul. 23, 2019”.
“Chinese Second Office Action and Search Report, Application No. 201680020844.X, dated May 22, 2020”.
“Communication pursuant to Article 94(3) EPC for European Application No. 16189742.6, mailed on Dec. 4, 2020”.
“Decision to Grant in Russian Application No. 2014120213, dated Oct. 26, 2016”.
“Decision to Grant mailed Oct. 24, 2019 for Russian Application No. 2019118770”.
“European Extended Search Report, Application No. 18195423.1, dated Jan. 29, 2019”.
“European Notice of Opposition, Application No. EP2871984, dated Jun. 6, 2017”.
“European Search Report for European Application No. 16189742.6 mailed Mar. 17, 2017”.
“European Search Report received for European Patent Application No. 16166656.5 dated Oct. 11, 2016”.
“Exam Report from European Application 16189742.6-1006, dated Dec. 19, 2019”.
“Examination Report for Australian Application No. 2015293686, dated Jul. 25, 2018”.
“Examination Report for European Application No. 15741289.1, dated Jun. 15, 2018”.
“Extended European Search Report for Application No. 16177005.2, mailed on Oct. 26, 2016”.
“Extended European Search Report for European Application No. 15178588.8, mailed on Apr. 22, 2016”.
“Extended European Search Report received for European Patent Application No. 17189951.1, mailed on Jan. 4, 2018”.
“Extended European Search Report, European Application No. 19174777.3, mailed Nov. 11, 2019”.
“GB Search Report, Application No. GB1505593.2, mailed Sep. 22, 2015,”.
“GB Search Report, GB Application No. GB1505595.7, mailed Oct. 20, 2015”.
“International Preliminary Report on Patentability for Appl. No. PCT/EP2016/057064, mailed on Oct. 12, 2017”.
“International Preliminary Report on Patentability for Application No. PCT/AT2012/000017, issued on Aug. 13, 2013”.
“International Preliminary Report on Patentability for Application No. PCT/EP2012/070647, mailed on May 1, 2014”.
“International Preliminary Report on Patentability for Application No. PCT/EP2016/057060, mailed on Jul. 12, 2017”.
“International Preliminary Report on Patentability for Application No. PCT/EP2016/057097, mailed on Oct. 12, 2017”.
“International Preliminary Report on Patentability for Application No. PCT/GB2014/051332, mailed on Nov. 12, 2015”.
“International Preliminary Report on Patentability for Application No. PCT/GB2014/051333, completed on Aug. 5, 2015”.
“International Preliminary Report on Patentability for Application No. PCT/GB2014/051334, mailed on Nov. 12, 2015”.
“International Preliminary Report on Patentability for corresponding International Application No. PCT/GB2015/051213 mailed on Jul. 14, 2016”.
“International Preliminary Report on Patentability, mailed Oct. 27, 2014, for Application No. PCT/EP2013/064952, filed Jul. 15, 2013”.
“International Preliminary Report on Patentability, mailed Oct. 31, 2014, for Application No. PCT/EP2013/064950, filed Jul. 15, 2013.”.
“International Search Report and Written Opinion for Application No. PCT/EP2016/057097, mailed on Sep. 28, 2016”.
“International Search Report and Written Opinion received for PCT Application No. PCT/EP2012/003103, mailed on Nov. 26, 2012”.
“International Search Report and Written Opinion received for PCT Application No. PCT/GB2014/051333, mailed on Jul. 17, 2014”.
“International Search Report and Written Opinion received for PCT Application No. PCT/GB2014/051334 mailed Jul. 21, 2014”.
“International Search Report and Written Opinion received for PCT Patent Application No. PCT/GB2014/051332, mailed on Jul. 21, 2014”.
“International Search Report and Written Opinion received for PCT Patent Application No. PCT/EP2012/070647, mailed on Feb. 6, 2013”.
“International Search Report and Written Opinion received for PCT Patent Application No. PCT/AT2012/000017, mailed on Jul. 3, 2012”.
“International Search Report and Written Opinion, mailed Dec. 2, 2013, for Application No. PCT/EP2013/064950, filed Jul. 15, 2013”.
“International Search Report and Written Opinion, mailed Oct. 11, 2013, for Application No. PCT/EP2013/064952, filed Jul. 15, 2013”.
“International Search Report and Written Opinion, PCT Application No. PCT/EP2016/057064, mailed Oct. 19, 2016”.
“International Search Report for corresponding International Application No. PCT/GB2015/051213 mailed on Jul. 16, 2015”.
“International Search Report received for PCT Patent Application No. PCT/AT2009/000413 mailed on Jan. 25, 2010”.
“International Search Report received for PCT Patent Application No. PCT/AT2009/000414 mailed on Jan. 26, 2010”.
“International Search Report, International Application No. PCT/EP2016/057060, mailed Sep. 28, 2016”.
“Japanese Office Action for Japanese Application No. 2015-522066 dated Dec. 8, 2015”.
“Japanese Office Action, Application No. 2015-522066, dated Jan. 5, 2016”.
“Japanese Office Action, Application No. 2015-522064, dated Jan. 5, 2015”.
“Japanese Office Action, Application No. 2017-551218, dated Oct. 30, 2018”.
“Japanese Office Action, Application No. 2019-124231, mailed Oct. 27, 2020”.
“Japanese Office Action, Japanese Application No. 2015-522064, mailed Dec. 28, 2015”.
“Japanese Office Action, Japanese Application No. 2017-551205, mailed Oct. 2, 2018”.
“Japanese Office Action, Japanese Application No. 2017-551206, mailed Oct. 23, 2019”.
“Japanese Office Action, Japanese Application No. 2017551218, mailed Aug. 6, 2019”.
“Japanese Office Action, Japanese Application No. 2015-522065, dated Jan. 5, 2016”.
“Korean Decision for Refusal for Korean Application No. KR2020110006928 dated Jan. 10, 2019”.
“Korean Notice Trial Decision to Reject for Korean Application No. 10-2015-7001257 mailed Aug. 14, 2019”.
“Korean Office Action, Application No. 10-2015-7001256, dated Sep. 7, 2016”.
“Korean Office Action, Application No. 10-2015-7001257, dated Sep. 8, 2016”.
“Korean Office Action, Application No. 10-2017-7034160, dated Jul. 18, 2018”.
“Notice of Opposition Letter from EPO Opposition against for EP2358418 mailed on Mar. 1, 2017”.
“Office Action dated Aug. 24, 2018 for Chinese Application No. 201580040255.3”.
“Office Action for Canadian Application No. 2,954,848, dated Dec. 18, 2017”.
“Office Action for Chinese Application No. 201811153475.9, mailed on Apr. 22, 2021”.
“Office Action for Japanese Application No. 2017-504040, dated Feb. 22, 2018”.
“Office Action for Japanese Application No. 2017-504040, dated Oct. 9, 2018”.
“Office Action for Japanese Application No. 2018-206299, dated Apr. 13, 2021”.
“Office Action for Japanese Application No. 2018-206299, dated Oct. 6, 2020”.
“Office Action mailed Mar. 15, 2018 for Korean Application No. 2017-7002235”.
“Office Action received for Chinese Patent Application No. 201480024988.3, mailed on Dec. 30, 2016”.
“Office Action received for Chinese Patent Application No. 201480024978.X mailed on Jan. 18, 2017”.
“Office Action received for Chinese Patent Application No. 201480024988.3, mailed on Sep. 11, 2017”.
“Office Action received for Russian Patent Application No. 2015146847, mailed on Sep. 22, 2017”.
“Reasons for Rejection received for Japanese Patent Application No. 2015-137361, mailed on May 31, 2016”.
“Reasons for Rejection received for Japanese Patent Application No. 2011-532464, mailed on Oct. 7, 2013”.
“Reasons for Rejection received for Japanese Patent Application No. 2014-179732, mailed on Sep. 8, 2015”.
“Reasons for Rejection received for Japanese Patent Application No. 2016-134648 mailed May 23, 2017”.
“Russian Decision to Grant for Russian Application No. 2015100878 dated Sep. 19, 2016”.
“Russian Decision to Grant, Application No. 2015100881/12, dated Apr. 6, 2016”.
“Russian Office Action, Russian Application No. 2018118998, mailed Sep. 24, 2018”.
“Search Report mailed May 17, 2020 for Chinese Application No. 201680020844.X”.
“Search Report mailed Jan. 15, 2018, for Japanese Application No. 2017-504040”.
“Search Report received for Russian Patent Application No. 2015146843/12 (072088), mailed on Apr. 24, 2017”.
“Search Report, GB Application No. GB1505597.3, mailed Oct. 7, 2015”.
“Translation of Chinese Second Office Action for Chinese Application No. 200980152395.4 date issued Aug. 20, 2013”.
“Written Opinion for Application No. PCT/EP2016/057060, mailed on Sep. 28, 2016”.
“Written Opinion of the International Preliminary Examining Authority for International Application No. PCT/GB2015/051213 mailed on Mar. 29, 2016”.
“Written Opinion, International Application No. PCT/EP2016/057060, mailed Apr. 7, 2017”.
Aerosols , “Pulmonary Pharmacology: Delivery Devices and Medications”, available at http://www.ceu.org/cecourses/z98107/ch4.htm , Sep. 6, 2017 , 2 pages.
Christopher, Lord , “Application and File History for U.S. Appl. No. 14/415,552, filed Jan. 16, 2015”.
Christopher, Lord , “Application and File History for U.S. Appl. No. 15/959,687, filed Apr. 23, 2018”.
Diener Electronic , “Plasma Technology”, The Company Diener Electronic GmbH+Co. KG, www.plasma.de , Oct. 17, 2017 , 19 Pages.
Dunn , et al. , “Heat Pipes”, 4th edition, ISBN 0080419038 , 1994 , 14 Pages.
Kynol , “Standard Specifications of Kynol Activated Carbon Fiber Products”, published by Kynol , Sep. 19, 2013 , 2 pages.
Lord , et al. , “Application and File History for U.S. Appl. No. 14/415,540, filed Jan. 16, 2015”.
Lord , et al. , “Application and File History for U.S. Appl. No. 15/914,139, filed Mar. 7, 2018”.
Rudolph, G , “The Influence of CO2 on the Sensory Characteristics of the Favor-System”, BAT Cigarettenfabriken GmbH, http://legacy.library.ucsf.edu/tid/sla51f00 , 24 pages.
Sutton , “Application and File History for U.S. Appl. No. 15/563,065, filed Sep. 29, 2017”.
Sutton , et al. , “Application and File History for U.S. Appl. No. 15/563,078, filed Sep. 29, 2017”.
Sutton , et al. , “Application and File History for U.S. Appl. No. 15/563,086, filed Sep. 29, 2017”.
European Notice Of Opposition in European Application No. EP18195423.1, dated Feb. 28, 2024, 37 pages.
European Search Report and Written Opinion in International Appln. No. 23176770.8, dated Nov. 16, 2023, 28 pages.
Office Action For Russian Application No. 2020124363, mailed on Feb. 17, 2021, 3 pages.
Related Publications (1)
Number Date Country
20220256920 A1 Aug 2022 US
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Number Date Country
Parent 14415540 US
Child 15959687 US
Continuations (2)
Number Date Country
Parent 16750077 Jan 2020 US
Child 17736909 US
Parent 15959687 Apr 2018 US
Child 16750077 US