magnetic connector
The magnetic connector with resilient contacts and magnetic elements addresses the challenge of stable connection between aerosol generating devices and charging units, enabling easy and reliable power transfer and data transmission despite orientations and vibrations.
Patent Information
- Application Number
- JP2024006545
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-01-19
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2038-07-19
AI Technical Summary
Existing electrically operated aerosol generating systems face challenges in efficiently connecting the aerosol generating device and charging unit, particularly during orientations and vibrations, requiring improved electrical connectors that facilitate easy and stable connections.
The system incorporates a magnetic connector with resilient contacts and magnetic elements that ensure stable electrical engagement by overcoming the biasing force of resilient contacts, allowing connection in various orientations and reducing disengagement due to vibrations.
The magnetic connector provides a self-aligning and self-engaging mechanism that enhances connection speed and stability, ensuring reliable power transfer and data transmission between the aerosol generating device and charging unit, even under normal user movements.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an electrically operated aerosol generation system. In particular, the present invention relates to an electrically operated aerosol generation system including an aerosol generator and a charging unit. The present invention also relates to an electrical connector for an electrically operated aerosol generation system. [Background technology]
[0002] Electrically operated aerosol generating systems generally comprise an aerosol-forming substrate and an atomizer, the atomizer operating to atomize the aerosol-forming substrate to form an aerosol for inhalation by a user. Typically, electrically operated aerosol generating systems also comprise an aerosol generator including a power supply for providing power to the atomizer. The atomizer may be an electric heater.
[0003] In some systems, the aerosol-generating device is configured to receive an aerosol-generating article comprising a solid aerosol-forming substrate, such as a collection of crimped tobacco sheets. In these systems, the device typically includes an atomizer arranged to heat the aerosol-forming substrate when the article is received in the device. The article may also include a filter wrapped with an aerosol-forming substrate in the form of a rod similar to a conventional cigarette. In other systems, the device is configured to receive a cartridge comprising an atomizer and a liquid aerosol-forming substrate. Such cartridges are also referred to as cartomizers. A common type of atomizer used in cartomizers includes a heater wire coil wound around an elongated core immersed in a liquid aerosol-forming substrate.
[0004] Some electrically operated aerosol generating systems include a charging unit for recharging the power supply of the electrically operated aerosol generating device. The charging unit may include a housing, a rechargeable power supply housed within the housing, and a recess for receiving the electrically operated aerosol generating device. Typically, the charging unit is portable and can be carried with the device by a user to extend the operating time of the device.
[0005] It would be desirable to improve the speed and ease with which a user can electrically connect an aerosol generating device and a charging unit. It would also be desirable to provide an electrical connector for an electrically operated aerosol generating system that allows electrical connection between the aerosol generating device and the charging unit in any orientation of the device and charging unit and during vibrations caused by normal user movement. It would also be desirable to provide a means for improving the electrical connection between the aerosol generating device and the charging unit. Summary of the Invention
[0006] According to a first aspect of the present invention, there is provided an aerosol generation system comprising: an aerosol generation device for receiving an aerosol-forming substrate and generating an aerosol from the aerosol-forming substrate, the aerosol generation device including a rechargeable power source; a charging unit electrically connectable to the aerosol generation device to supply power to the aerosol generation device for recharging the rechargeable power source; and an electrical connector. The electrical connector includes a first connector portion and a second connector portion removably electrically connectable to the first connector portion. The first connector portion includes a plurality of electrical contacts and a first magnetic element. The second connector portion includes a plurality of electrical contacts, at least one of the plurality of electrical contacts being a resilient contact operable between an extended position and a recessed position and biased to return to the extended position, and a second magnetic element. The aerosol generation device includes one of the first connector portion and the second connector portion, and the charging unit includes the other of the first connector portion and the second connector portion. The first connector portion and the second connector portion are positionable in a first connection position, wherein at least one resilient contact of the second connector portion is in an extended position, the first connector portion is positioned in contact with the at least one resilient contact, the first magnetic element and the second magnetic element are magnetically attracted to each other, and the force of magnetic attraction between the first magnetic element and the second magnetic element is greater than the force required to move the at least one resilient contact from the extended position to the recessed position.
[0007] The at least one resilient contact of the second connector portion enables the first connector portion and the second connector portion to maintain electrical connection over a range of positions along the length of movement of the at least one resilient contact between the extended position and the recessed position. The length of movement of the at least one resilient contact between the extended position and the recessed position can be any suitable distance. The length of movement of the at least one resilient contact between the extended position and the recessed position may be at least 0.1 millimeters, at least 0.2 millimeters, or at least 0.3 millimeters. The length of movement of the at least one resilient contact between the extended position and the recessed position may be between about 0.1 millimeters and about 1.5 millimeters, between about 0.2 millimeters and about 1 millimeter, or between about 0.3 mm and about 0.7 mm.
[0008] The at least one resilient contact of the second connector portion is biased back to the extended position. When the at least one resilient contact is depressed by the first connector portion from the extended position toward the recessed position, the at least one resilient contact applies a biasing force to the first portion toward the extended position. The first and second magnetic elements are arranged to provide a magnetic attractive force between the first and second connector portions that acts in a direction opposite to the biasing force of the at least one resilient contact. When the first and second connecting portions are in the first connecting position, the magnetic attractive force between the first and second magnetic elements is greater than the force required to move the at least one resilient contact from the extended position to the recessed position. Advantageously, this magnetic attractive force can overcome the biasing force of the at least one resilient contact when the first and second connector portions are in the first connecting position and draw the first and second connector portions together. In other words, when the first connector portion and the second connector portion are in the first connected position, the first connector portion and the second connector portion tend to be drawn toward each other by the force of magnetic attraction, and at least one resilient contact of the second connector portion is pressed down by the first connector portion from the expanded position to the recessed position.
[0009] Advantageously, when a user moves the aerosol generating device and the charging unit into electrical engagement, the force of magnetic attraction between the first magnetic element and the second magnetic element is such that when the first connector portion and the second connector portion engage in the first connected position, the at least one resilient contact is depressed from the extended position toward the recessed position, so that the user does not experience resistance from the biasing force of the at least one resilient contact. In other words, the force of magnetic attraction between the first magnetic element and the second magnetic element in the first connected position is sufficiently great to hide or mask the biasing force of the at least one resilient contact from the user electrically engaging the aerosol generating device with the charging unit.
[0010] When the first connector portion and the second connector portion are in the first connected position, the force of magnetic attraction between the first magnetic element and the second magnetic element can be any suitable magnitude. When the first connector portion and the second connector portion are in the first connected position, the force of magnetic attraction between the first magnetic element and the second magnetic element can be at least 0.1 Newtons, at least 0.15 Newtons, or at least 0.2 Newtons, at least 0.5 Newtons, at least 1 Newton, or at least 1.5 Newtons. When the first connector portion and the second connector portion are in the first connected position, the force of magnetic attraction between the first magnetic element and the second magnetic element can be at least 0.15 Newtons. When the first connector portion and the second connector portion are in the first connected position, the force of magnetic attraction between the first magnetic element and the second magnetic element can be about 0.1 Newtons to about 10 Newtons, about 0.5 Newtons to about 5 Newtons, or about 1.5 Newtons to about 4.0 Newtons.
[0011] In some preferred embodiments, the first connector portion and the second connector portion may further be positionable in a second connection position, wherein the plurality of electrical contacts of the first connector portion are electrically connected to at least one of the plurality of electrical contacts of the second connector portion, the first magnetic element and the second magnetic element are magnetically attracted to each other, and at least one resilient contact of the second connector portion is in a recessed position.
[0012] When the first and second connector portions are positioned in the second connected position, the at least one resilient contact in the recessed position applies a biasing force to the first connector portion. In some embodiments, when the first and second connector portions are positioned in the second connected position, the force of magnetic attraction between the first and second magnetic elements is greater than the biasing force applied to the first connector portion by the at least one resilient contact. This force of magnetic attraction ensures that the biasing force of the at least one resilient contact of the second connector portion cannot bias the first and second connector portions out of the second connected position.
[0013] In some preferred embodiments, when the first and second connector portions are in the second connected position, the force of magnetic attraction between the first and second magnetic elements is greater than the weight of the aerosol generating device, ensuring that the first and second connector portions can be held in the second connected position regardless of the orientation of the system.
[0014] When the first connector portion and the second connector portion are not electrically engaged, the force of magnetic attraction between the first magnetic element and the second magnetic element may draw the first connector portion and the second connector portion together and electrically engage them. Advantageously, this provides a degree of self-alignment and self-engagement for the first connector portion and the second connector portion, facilitating electrical engagement. This may further improve the speed and ease with which a user can electrically connect a device and a charging unit. When the first connector portion and the second connector portion are electrically connected, the force of magnetic attraction between the first magnetic element and the second magnetic element increases the force required to disengage the first connector portion and the second connector portion. Advantageously, this substantially inhibits or prevents the first connector portion and the second connector portion from unintentionally disengaging through, for example, vibration and rotation during transport.
[0015] When the first connector portion and the second connector portion are in the second connected position, the force of magnetic attraction between the first magnetic element and the second magnetic element can be any suitable magnitude. When the first connector portion and the second connector portion are in the second connected position, the force of magnetic attraction between the first magnetic element and the second magnetic element can be at least 0.5 Newtons, at least 1 Newton, at least 1.5 Newtons, at least 2 Newtons, at least 3 Newtons, or at least 4 Newtons. When the first connector portion and the second connector portion are in the second connected position, the force of magnetic attraction between the first magnetic element and the second magnetic element can be at least 1 Newton. When the first connector portion and the second connector portion are in the second connected position, the force of magnetic attraction between the first magnetic element and the second magnetic element can be about 0.5 Newtons to about 10 Newtons, about 1 Newton to about 5 Newtons, or about 1.5 Newtons to about 4 Newtons. When the first connector portion and the second connector portion are in the second connected position, the force of magnetic attraction between the first magnetic element and the second magnetic element can be from about 1.5 Newtons to about 4 Newtons.
[0016] In some embodiments, at least one of the first magnetic element and the second magnetic element may form one or more electrical contacts of the first connector portion and the second connector portion. In some preferred embodiments, one or more of the electrical contacts of the first connector portion comprises the first magnetic element. In embodiments where the magnetic element does not form one or more electrical contacts, the magnetic element may be electrically isolated from the electrical contacts of the connector portions. In some embodiments, at least one of the first magnetic element and the second magnetic element comprises a permanent magnet. In some preferred embodiments, the second magnetic element of the second connector portion comprises a permanent magnet.
[0017] As used herein, the term "magnetic element" is used to describe an element that includes a magnetic material. As used herein, the term "magnetic material" is used to describe a material that can interact with a magnetic field, including both paramagnetic and ferromagnetic materials. A magnetizable material may be a paramagnetic material, such that it only becomes magnetized in the presence of an external magnetic field. Alternatively, a magnetizable material may be a material (e.g., a ferromagnetic material) that becomes magnetized in the presence of an external magnetic field and remains magnetized even after the external magnetic field is removed. As used herein, the term "magnetic material" includes both types of magnetizable materials, as well as already magnetized materials.
[0018] At least one of the first magnetic element and the second magnetic element can include an alloy of neodymium, such as neodymium, iron, and boron. In other words, at least one of the first magnetic element and the second magnetic element can be a neodymium magnet. At least one of the first magnetic element and the second magnetic element can include a ferromagnetic stainless steel, such as SS430 stainless steel.
[0019] As used herein, "electrical contact" or "electrical engagement" is used to describe an electrical connection between a first connector portion and a second connector portion that allows electrical current to flow between the first connector portion and the second connector portion.
[0020] As used herein, the term "aerosol-generating device" refers to a device that interacts with an aerosol-forming substrate to generate an aerosol that can be inhaled directly into the user's lungs through the user's mouth. In certain embodiments, the aerosol-generating device may heat the aerosol-forming substrate to promote the release of volatile compounds. The aerosol-generating device may interact with an aerosol-generating article that includes the aerosol-forming substrate or a cartridge that includes the aerosol-forming substrate. An electrically operated aerosol-generating device may include an atomizer, such as an electric heater, for heating the aerosol-forming substrate to form an aerosol.
[0021] As used herein, the term "aerosol-generating article" refers to an article that includes an aerosol-forming substrate capable of emitting a volatile compound that can form an aerosol. In certain embodiments, an aerosol-generating article may comprise an aerosol-forming substrate that is capable of emitting a volatile compound that can form an aerosol upon heating.
[0022] As used herein, the terms "upstream," "downstream," "proximal," and "distal" are used to describe the relative positions of components or portions of components of the aerosol generating device, the aerosol-generating article, and the charging unit.
[0023] As used herein, the term "longitudinal" is used to describe the direction between the downstream, proximal or oral end and the opposite upstream or distal end, and the term "transverse" is used to describe the direction perpendicular to the longitudinal axis.
[0024] As used herein, the term "length" is used to describe the maximum longitudinal dimension between the distal or upstream end and the proximal or downstream end of a component, aerosol generating device, aerosol generating article, and charging unit.
[0025] As used herein, the term "diameter" is used to describe the largest transverse dimension of components, aerosol generating devices, aerosol-generating articles, and charging units.
[0026] As used herein, the term "transverse cross section" is used to describe a cross section of a component, an aerosol generating device, an aerosol generating article, and a charging unit, respectively, in a direction perpendicular to the major axis of the component, the aerosol generating device, the aerosol generating article, and the charging unit.
[0027] The first and second magnetic elements may have any suitable shape. For example, the first and second magnetic elements may be substantially circular, oval, or square. The first and second magnetic elements may have the same shape. The first and second magnetic elements may have different shapes. The first and second magnetic elements may be substantially annular. The first and second magnetic elements may comprise an annular body, ring, or tube of the magnetic element. Providing an annular body, ring, or tube of the magnetic element may be advantageous because the annular body or tube may include a central passage through which an electrical connector may pass to connect one or more electrical contacts of the connector portion to a power source of the device or charging unit.
[0028] The first magnetic element may be disposed in any suitable location on the first connector portion. The first magnetic element may include a body of a magnetic element disposed substantially rearward of the electrical contacts of the first connector portion. In other words, one or more of the electrical contacts of the first connector portion may be on the first magnetic element. The first magnetic element may include one or more bodies of a magnetic element disposed between or around the electrical contacts of the second connector portion. In some preferred embodiments, one or more of the electrical contacts of the first connector portion may include the first magnetic element.
[0029] The second magnetic element may be disposed at any suitable location on the second connector portion. The second magnetic element may include a magnetic element body disposed substantially rearward of the electrical contacts of the connector portion of the charging unit. In other words, one or more of the electrical contacts of the second connector portion may be on the second magnetic element. One or more of the electrical contacts of the second connector portion may include the second magnetic element. The second magnetic element may include one or more magnetic element bodies disposed between or around the electrical contacts of the second connector portion. In some preferred embodiments, the second magnetic element may include two magnetic element bodies disposed on either side of the electrical contacts of the second connector portion such that the electrical contacts of the second connector portion are disposed between the two magnetic element bodies. The two magnetic element bodies may be substantially arcuate and may have the same or similar curvature as the third electrical contact of the first connector portion.
[0030] The electrical contacts of the first connector portion and the second connector portion may be any suitable type of electrical contact. The electrical contacts may be pin contacts. The pin contacts may extend or protrude outward from the surface, generally substantially perpendicular to the plane of the surface. The pin contacts may be resilient pin contacts or "pogo pin" contacts. Stated differently, the pin contacts may be resilient or spring-loaded contacts. At least one of the electrical contacts of the second connector portion is a resilient pin contact. The electrical contacts may be plate contacts. The plate contacts may extend substantially on or within a plane, or on or along the surface. The electrical contacts may be provided on a printed circuit board. In some embodiments, all of the electrical contacts may be the same type of electrical contact. In other embodiments, the electrical contacts may include different types of electrical contacts. The electrical contacts of the first connector portion may include one type of electrical contact, and the electrical contacts of the second connector portion may include a different type of electrical contact.
[0031] In some preferred embodiments, the electrical contacts of the first connector portion are plate electrical contacts. In other words, generally, the electrical contacts of the first connector portion extend substantially on or within a plane or on or along a surface of the first connector portion. In some preferred embodiments, the first connector portion includes one or more surfaces, and each of the electrical contacts of the first connector portion extends substantially on or along one of the one or more surfaces of the first connector portion. In some embodiments, the electrical contacts of the first connector portion may extend substantially on or within the same plane. In some embodiments, the electrical contacts of the first connector portion may extend in different planes.
[0032] The electrical contacts of the first connector portion may be arranged in any suitable arrangement. In certain embodiments, the first connector portion includes a substantially circular surface, and the first electrical contact of the first connector portion is arranged substantially in the center of the circular surface. In certain embodiments, the second and third electrical contacts of the first connector portion are arranged around the periphery of the first connector portion. Generally, the second and third electrical contacts of the first connector portion are spaced radially outward from the first electrical contact. In some embodiments, the second and third electrical contacts may be spaced the same distance from the first electrical contact. In some embodiments, the third electrical contact may be spaced further from the first electrical contact than the second electrical contact.
[0033] The plurality of electrical contacts of the first connector portion may be circularly symmetric about the axis of the first connector portion, and the plurality of electrical contacts of the first connector portion and the plurality of electrical contacts of the second connector portion may be electrically connectable at any orientation of the first connector portion relative to the second connector portion about the axis of the first connector portion.
[0034] The first electrical contact of the first connector portion may be substantially circular. In some embodiments, the second electrical contact and the third electrical contact of the first connector portion are substantially annular. In other words, the second electrical contact and the third electrical contact may each form a ring that substantially surrounds the first electrical contact. The second electrical contact and the third electrical contact of the first connector portion may form concentric rings that surround the first electrical contact.
[0035] In some preferred embodiments, the electrical contacts of the second connector portion are pin electrical contacts. In other words, the electrical contacts of the second connector portion generally extend outwardly from a plane or surface of the second connector portion, generally perpendicular to the plane or surface. The second connector portion includes one or more surfaces, and each electrical contact of the second connector portion extends perpendicularly from one of the one or more surfaces of the second connector portion.
[0036] In some embodiments, all of the electrical contacts of the second electrical connector portion are resilient contacts, which can advantageously help to maintain a reliable electrical connection between the first and second connector portions when they are electrically engaged and exposed to vibrations and small movements caused by user movement.
[0037] In some particularly preferred embodiments, the first electrical connector portion includes a face and a recess substantially centrally disposed on the face, the recess having a closed end, an open end at the face, and a sidewall extending between the open and closed ends. A first electrical contact of the plurality of electrical contacts may be disposed at the closed end of the recess. A second electrical contact of the plurality of electrical contacts may be disposed on a sidewall of the recess and substantially surround the first electrical contact. A third electrical contact of the plurality of electrical contacts may be disposed on the face and substantially surround the first electrical contact.
[0038] In some particularly preferred embodiments, the second connector portion includes a face and a protrusion disposed substantially centrally on the face, the protrusion having an end surface and a sidewall extending between the face and the end surface of the protrusion. A first electrical contact of the plurality of electrical contacts may be disposed on the end surface of the protrusion. A second electrical contact of the plurality of electrical contacts may be disposed on at least one side wall of the protrusion. A third electrical contact of the plurality of electrical contacts may be disposed on the face. The third electrical contact of the plurality of electrical contacts may be a resilient pin contact. The first electrical contact of the plurality of electrical contacts may also be a resilient pin contact. The second electrical contact of the plurality of electrical contacts may be a resilient contact. The second connector portion may include a pair of third electrical contacts disposed on opposite sides of the face. Each of the pair of third electrical contacts may be a resilient pin contact.
[0039] In these particularly preferred embodiments, the first connector portion and the second connector portion may be electrically engaged by inserting the protrusion of the second connector portion into the recess of the first connector portion. When the first connector portion and the second connector portion are electrically engaged,
[0040] a first electrical contact of the second connector portion at the end face of the protrusion may be in electrical engagement with a first electrical contact of the first connector portion at the closed end of the recess;
[0041] a second electrical contact of the second connector portion on the sidewall of the protrusion may be in electrical engagement with a second electrical contact of the first connector portion on the sidewall of the recess;
[0042] A third electrical contact of the second connector portion on the substantially planar surface may be in electrical engagement with a third electrical contact of the first connector portion on the substantially planar surface.
[0043] In these particularly preferred embodiments, the recesses and protrusions of the first and second connector portions may be annularly cylindrical, which may allow the first and second connector portions to freely rotate relative to one another about the axes of the recesses and protrusions, which may allow the first and second connector portions to electrically engage regardless of the angular position of the first connector portion relative to the second connector portion.
[0044] The second electrical contact of the second connector portion disposed on the sidewall of the protrusion may fit tightly inside the recess of the first connector portion, such as by a friction fit or an interference fit, to achieve reliable electrical engagement with the second electrical contact of the first connector portion on the sidewall of the recess. The second electrical contact of the second connector portion and the recess may be configured so that the second electrical contact of the second connector portion snaps into the recess when the protrusion is received within the recess and the first and second connector portions are electrically engaged.
[0045] The depression may have any suitable shape and size. The depression may be substantially cylindrical. The depression may have a substantially circular cross-section. The diameter of the depression is smaller than the diameter of the face. The diameter of the depression may be 75% or less of the diameter of the face, or may be about 50% or less of the diameter of the face.
[0046] The protrusions may have any suitable shape and size. The protrusions may be substantially cylindrical. The protrusions may have a substantially circular cross section. The diameter of the protrusions is smaller than the diameter of the face. The diameter of the protrusions may be 75% or less of the diameter of the face, or may be about 50% or less of the diameter of the face.
[0047] In some embodiments, the intersection between the end face of the protrusion and the sidewall may be beveled, rounded, or chamfered to facilitate positioning of the protrusion within the recess of the first connector portion.
[0048] The second connector portion may include a body to which the electrical contacts are attached. The protrusion may be integrally formed with the body or may be a separate part secured to the body portion.
[0049] The aerosol generating device may have a proximal end and a distal end opposite the proximal end. The proximal end is the end at which a user draws on the aerosol generating device to inhale the aerosol generated by the device. Thus, the proximal end may also be referred to as the oral end. One of a first connector portion and a second connector portion may be provided at the distal end of the aerosol generating device. One of the first connector portion and the second connector portion may be provided on the distal end surface of the aerosol generating device. The aerosol generating device may include the first connector portion or the second connector portion at the distal end of the device. The aerosol generating device may include the first connector portion or the second connector portion on the distal end surface.
[0050] The charging unit may include a recess for receiving at least a distal portion of the aerosol generating device, and the charging unit may include a first connector portion or a second connector portion at a distal end of the recess.
[0051] The first connector portion and the second connector portion can be positioned in the second connection position when the distal end of the aerosol generating device is received in the distal end of the recess of the charging unit.
[0052] In some preferred embodiments, the aerosol generating device includes a first connector portion or a second connector portion at a distal end of the device, the charging unit includes a recess for receiving at least the distal portion of the aerosol generating device, and the other first connector portion and second connector portion are disposed at the distal end of the recess, and the first connector portion and second connector portion are positionable in a second connection position when the distal end of the aerosol generating device is received in the distal end of the charging unit.
[0053] In these preferred embodiments, when the first contact and the second contact are in the first connected position, the force of magnetic attraction between the first magnetic element and the second magnetic element may be greater than the combination of the friction force between the aerosol generating device and the recess in the charging unit and the biasing force required to operate the at least one resilient contact between the extended position and the recessed position.
[0054] The aerosol generating device has one of the first connector portion and the second connector portion, and the charging unit has the other of the first connector portion and the second connector portion. In some embodiments, the aerosol generating device may include the first connector portion, and the charging unit may include the second connector portion. Advantageously, because the electrical contacts of the second connector portion include at least one resilient contact, providing the second connector on the charging unit may substantially protect the at least one resilient contact from damage.
[0055] In embodiments where the device includes a connector portion at the distal end face, the first magnetic element may be disposed within the device proximal to the connector portion. In some preferred embodiments where the device includes a connector portion at the distal end face, at least one of the electrical contacts of the first connector portion may include the first magnetic element.
[0056] When the charging unit includes a recess and the connector portion of the charging unit is disposed at the closed end of the recess, the first magnetic element and the second magnetic element may be arranged such that the north and south magnetic poles of the magnetic elements are substantially aligned with the longitudinal axis of the recess, whereby the magnetic retaining means may attract the aerosol generating device into the recess and help position the first and second connector portions in electrical engagement.
[0057] In a preferred embodiment, one of the first magnetic element and the second magnetic element comprises a permanent magnet.
[0058] In some embodiments, one of the first magnetic element and the second magnetic element comprises a plurality of permanent magnets. In some preferred embodiments, the second magnetic element comprises a plurality of permanent magnets.
[0059] In some preferred embodiments, one of the first magnetic element and the second magnetic element includes a first permanent magnet and a second permanent magnet. The first permanent magnet and the second permanent magnet may be spaced apart within the connector portion. In some of these embodiments, the north-south magnetic poles of the first permanent magnet may be oriented in the same direction as the north-south magnetic poles of the second permanent magnet. In some preferred embodiments, the north-south magnetic poles of the first permanent magnet are oriented in the opposite direction to the north-south magnetic poles of the second permanent magnet. In these preferred embodiments, a magnetic circuit may be formed when the first connector portion and the second connector portion are positioned at the first connecting position and the second connecting position, and the first permanent magnet and the second permanent magnet are magnetically connected in a magnetic circuit via the magnetic element of the other connector portion.
[0060] As used herein, a "magnetic circuit" refers to a magnetic connection between two permanent magnets such that magnetic field lines pass from one magnetic element to another magnetic element. The magnetic field lines may pass from the first permanent magnet to the second permanent magnet through the magnetic element of the other connector portion when the first and second connector portions are in the first and second connected positions.
[0061] In some particularly preferred embodiments, the second connector portion includes a first permanent magnet and a second permanent magnet.
[0062] As used herein, references to the "direction" of the north and south magnetic poles of a magnet are used to refer to the direction of the magnetic field lines generated by the magnet.
[0063] As used herein, reference to the "magnetic polarity" of a portion of a magnet refers to a magnetic pole, such as the north or south pole of the magnet.
[0064] In embodiments in which one of the first and second magnetic elements includes a plurality of permanent magnets, each permanent magnet may include a body extending between two opposing ends. Each end of the body may have a north-south magnetic pole. The orientation of the north-south magnetic pole at a first end of the end may be oppositely oriented relative to the north-south magnetic pole at an opposite end of the body. The body may have a length extending between the two opposing ends, and the north-south magnetic pole at each end may be oriented substantially perpendicular to the length of the body. When multiple permanent magnets are provided in the second connector, the orientation of the north-south magnetic pole at each end of each permanent magnet may be substantially parallel to the direction of movement of the resilient contact between the extended position and the recessed position.
[0065] In other words, the body of each of the plurality of permanent magnets may have an upper side and a lower side opposite the upper side, the upper side and lower side extending the length of the body between two opposing ends. The upper side at a first end of the end may have a first magnetic pole and the lower side at the first end of the end may have a second magnetic pole opposite the first magnetic pole. The north-south magnetic poles at the first end of the end may have a first direction perpendicular to the length of the body. The upper side at a second end of the end opposite the first end may have a second magnetic pole opposite the polarity of the upper side at the first end of the end. The lower side at the second end of the end may have a first magnetic pole opposite the polarity of the upper side at the second end of the end. The north-south magnetic poles at the second end of the end may have a second direction perpendicular to the length of the body, opposite the first direction.
[0066] In some particularly preferred embodiments, the second connector includes a second magnetic element including two permanent magnets. Each permanent magnet has a body extending between two opposing ends. Each permanent magnet has a first end with north-south magnetic poles having a first direction and a second end with north-south magnetic poles having a second direction opposite the first direction. The two permanent magnets can be positioned within the second connector portion such that each permanent magnet experiences a magnetic repulsion force from the other permanent magnet.
[0067] Each of the permanent magnets may have a first end face at a first end and a second end face at a second end. The first end face and the second end face may be disposed substantially parallel to each other. In these embodiments, the first magnetic element and the second magnetic element may be substantially arcuate. The first end face and the second end face may be substantially planar.
[0068] In some embodiments, the arcuate permanent magnet may be positioned within the second connector portion such that the first end face of the first permanent magnet directly faces the second end face of the second permanent magnet and the second end face of the first permanent magnet directly faces the first end face of the second permanent magnet. When the first and second permanent magnets are arcuate, the first and second permanent magnets may form a substantially annular magnetic structure. The two permanent magnets may be spaced apart such that a gap is provided between the opposing faces of the permanent magnets. The first and second permanent magnets may substantially surround the electrical contacts of the second connector portion.
[0069] The first end face of the first permanent magnet may have north-south magnetic poles oriented in the same direction as the north-south magnetic poles of the second end face of the second permanent magnet. The second end face of the first permanent magnet may have north-south magnetic poles oriented in the same direction as the north-south magnetic poles of the first end face of the second permanent magnet. In other words, the first end face of the first permanent magnet and the second end face of the second permanent magnet are arranged to magnetically repel each other. Similarly, the second end face of the first permanent magnet and the first end face of the second permanent magnet are arranged to magnetically repel each other.
[0070] This arrangement may further increase the force of magnetic attraction between the first magnetic element of the first connector portion and the second magnetic element of the second connector portion when the first connector portion and the second connector portion are in the first and second connected positions.
[0071] Another way to describe the arrangement is that the first end face of the first permanent magnet faces the second end face of the second permanent magnet, and vice versa. The first end face of the first permanent magnet magnetically repels the second end face of the second permanent magnet, and vice versa. The upper side of the first end face of the first permanent magnet and the upper side of the second end face of the second permanent magnet have the same magnetic polarity. The lower side of the first end face of the first permanent magnet and the lower side of the second end face of the second permanent magnet have the same magnetic polarity, opposite to the magnetic polarity of the upper side of the first end face of the first permanent magnet and the upper side of the second end face of the second permanent magnet. The upper side of the second end face of the first permanent magnet and the upper side of the first end face of the second permanent magnet have the same magnetic polarity, opposite to the magnetic polarity of the upper side of the first end face of the first magnetic element and the upper side of the second end face of the second magnetic element. The underside of the second end face of the first permanent magnet and the underside of the first end face of the second permanent magnet have the same magnetic polarity, opposite to the magnetic polarity of the upper side of the second end face of the first permanent magnet and the upper side of the first end face of the second permanent magnet.
[0072] The first permanent magnet and the second permanent magnet can be disposed within a housing of the second connector portion. The housing of the second connector portion can maintain separation of the first magnetic element and the second magnetic element. The housing of the second connector portion can prevent magnetic repulsion forces between the first permanent magnet and the second permanent magnet from pushing the permanent magnets apart.
[0073] In some alternative embodiments, the first permanent magnet and the second permanent magnet may be arranged to be magnetically attracted to each other.
[0074] At least one of the electrical contacts of each of the first and second connector portions may be configured to transfer, convey, or provide electrical power from the charging unit to the aerosol generation device. For example, the first electrical contacts of each of the first and second connector portions may be configured to transfer electrical power from the charging unit to the aerosol generation device. In particular, at least one of the electrical contacts of each of the first and second connector portions may be configured to transfer electrical power from a power supply of the charging unit to a rechargeable power supply of the aerosol generation device.
[0075] At least one of the electrical contacts of each of the first and second connector portions can be configured to transmit data from at least one charging unit to the aerosol generation device and from the aerosol generation device to the charging unit. In some embodiments, at least one of the electrical contacts of each of the first and second connector portions can be configured to transmit data from the charging unit to the aerosol generation device. For example, the second electrical contact of each of the first and second connector portions can be configured to transmit data from the charging unit to the aerosol generation device. In some embodiments, at least one of the electrical contacts of each of the first and second connector portions can be configured to transmit data from the aerosol generation device to the charging unit.
[0076] Additionally, at least one of the electrical contacts of each of the first and second connector portions can be configured as a ground connection, for example, a third electrical contact of each of the first and second connector portions can be configured as a ground connection.
[0077] The first and second connector portions of the present invention may be configured to transfer power from the charging unit to the aerosol generating device and to transfer data from at least one charging unit to the device and from the device to the charging unit. Advantageously, this may allow the device to have only a single electrical connector portion. This may reduce the size and weight of the aerosol generating device compared to devices with multiple electrical connector portions.
[0078] Typically, the aerosol generating device may include a rechargeable power supply. The rechargeable power supply may include any suitable type of rechargeable power supply, such as a battery or a capacitor. The rechargeable power supply may include a lithium-ion battery. The rechargeable power supply of the aerosol generating device may have a sufficient capacity to enable the aerosol generating device to deliver one or more user experiences. A user experience generally includes a series of puffs taken by a user on the aerosol generating device, where the aerosol generating device generates an aerosol by atomizing an aerosol-forming substrate, and the user inhales the aerosol generated by the device. The number of puffs that constitute a typical user experience may be any suitable number. Typically, the number of puffs may be 2 to 20 puffs, 4 to 12 puffs, or approximately 6 or 7 puffs. The rechargeable power supply of the aerosol generating device may have a sufficient capacity to enable the aerosol generating device to deliver any suitable number of user experiences. The rechargeable power supply may have sufficient capacity for the aerosol generating device to deliver one, two, three, four, five, or six user experiences.
[0079] Similarly, the charging unit may include a power supply. The charging unit's power supply may include any suitable type of power supply, such as a battery and a capacitor. The charging unit's power supply may include a lithium-ion battery. The first connector portion and second connector portion of the present invention may allow power to be transferred between the charging unit's power supply and the aerosol generating device's rechargeable power supply to charge the aerosol generating device's rechargeable power supply. Advantageously, this may extend the usable life of the aerosol generating device. The charging unit's power supply may have a sufficient capacity to provide the aerosol generating device with a charge sufficient to deliver multiple user experiences. The charging unit's power supply may have a sufficient capacity to provide the aerosol generating device with a charge sufficient to deliver any suitable number of user experiences, such as 1 to 20 user experiences, 5 to 15 user experiences, and approximately 10 user experiences. Advantageously, this may enable a user to carry both the aerosol generating device and the charging unit and use the aerosol generating device for extended periods of time, such as a day or a week, without having to connect the aerosol generating device to an external power source, such as a mains power supply, to charge the aerosol generating device's rechargeable power supply.
[0080] In general, the power supply of the charging unit may be rechargeable, may have a larger capacity than the rechargeable power supply of the aerosol generating device, and may be physically larger than the rechargeable power supply of the aerosol generating device.
[0081] The aerosol generating device may be a portable device. In other words, the aerosol generating device may have any size and shape suitable for being held in a user's hand. The aerosol generating device may have a size and shape similar to that of a conventional cigar or cigarette. The aerosol generating device may be portable. In general, the charging unit may also be portable. The charging unit may have any suitable size and shape. The charging unit may have a size and shape similar to that of a conventional cigarette packet. Providing a portable charging unit may allow a user to carry the charging unit along with the aerosol generating device. Advantageously, this may allow the rechargeable power supply of the aerosol generating device to be smaller and lighter without sacrificing the operating life of the aerosol generating device, but the aerosol generating device can be charged from a portable charging unit carried by the user when the device's rechargeable power supply is depleted.
[0082] In some embodiments, at least one of the electrical contacts on each of the first and second connector portions may be configured to transmit data from the charging unit to the aerosol generating device. This may advantageously allow software updates to be transmitted from the charging unit to the aerosol generating device. In some embodiments, at least one of the other electrical contacts on each of the first and second connector portions may be configured to transmit data from the aerosol generating device to the charging unit. This may allow usage data to be transmitted from the aerosol generating device to the charging unit. The usage data may include, for example, one or more of the charge status of the device's rechargeable power supply, the number of uses of the device, the number of uses of the atomizer, and the identity of the aerosol-forming substrate.
[0083] In some embodiments, one or more first electrical contacts of the first connector portion and the second connector portion may be configured to transfer power between a power source of the charging unit and a rechargeable power source of the aerosol generating device, one or more second electrical connectors of the first connector portion and the second connector portion may be configured to transfer data from at least one of the charging unit to the aerosol generating device and from the aerosol generating device to the charging unit, and one or more third electrical contacts of the first connector portion and the second connector portion may be configured as a ground connection.
[0084] The electrical contacts may be made of any suitable conductive material. For example, the electrical contacts may be made of a metal such as copper or gold. In some embodiments, the electrical contacts are made of the same material, while in other embodiments, the electrical contacts are made of different materials.
[0085] Generally, the electrical contacts of each of the first and second connector portions are electrically separated or isolated from one another. The electrical separation or isolation of the electrical contacts of each connector portion can be provided by an electrically insulating material disposed between adjacent electrical contacts. The electrical separation or isolation can also be provided by adjacent electrical contacts separated by a gap.
[0086] As used herein, "conductivity" means a -4 As used herein, "electrically insulating" refers to a material having an electrical resistivity of 1x10 Ω-m or less. -4 Refers to materials with an electrical resistivity of Ωm or higher.
[0087] The aerosol generating device may have any suitable size and shape.
[0088] The aerosol generating device may have a cross-section of any suitable shape. For example, the aerosol generating device may have a substantially circular, elliptical, triangular, square, diamond, trapezoidal, pentagonal, hexagonal, or octagonal cross-section. In certain embodiments, the aerosol generating device has a substantially circular cross-section.
[0089] The aerosol generating device may have a substantially constant cross-section along its length. The aerosol generating device may have a substantially circular cross-section along its length. The device may have rotational symmetry about its longitudinal axis. The device may have rotational symmetry of an order greater than one about its longitudinal axis. The device may be substantially axially symmetric about its longitudinal axis. In certain embodiments, the aerosol generating device may be substantially annular cylindrical.
[0090] The aerosol generating device may have any suitable diameter and any suitable length. The aerosol generating device may be elongated. In certain embodiments, the aerosol generating device may have a shape, diameter, and length substantially similar to that of a conventional cigarette or cigar. The length of the aerosol generating device may be about 30 mm to about 150 mm, or about 50 mm to about 120 mm, or about 90 mm to about 100 mm. The outer diameter of the aerosol generating device may be about 5 mm to about 30 mm, or about 10 mm to about 20 mm, or about 15 mm.
[0091] The aerosol generating device may be configured to receive one or more of a cartridge, an atomizer, and an aerosol-generating article. The aerosol generating device may be configured to receive one or more of a cartridge, an atomizer, and an aerosol-generating article at a proximal end. The device may include a recess for receiving one or more of a cartridge, an atomizer, and an aerosol-generating article.
[0092] In some embodiments, the aerosol-generating device may include an atomizer. If the aerosol-generating device includes an atomizer, the device may be configured to receive an article including an aerosol-forming substrate, or a cartridge including an aerosol-forming substrate. In other embodiments, the aerosol-generating device may be configured to receive an atomizer or a combination of an atomizer and an article or cartridge including an aerosol-forming substrate. If the device includes a recess for receiving one or more of the cartridge and the aerosol-generating article, the atomizer may be disposed within the recess.
[0093] The device may include one of a first connector portion and a second connector portion at a distal end of the device. The device may have one of the first connector portion and the second connector portion at a distal end face of the device. In other words, the face at the distal end of the device opposite the oral end may include one of the first connector portion and the second connector portion. The distal end face of the device may be substantially circular.
[0094] The aerosol generating device may include a housing. In certain embodiments, the housing may be substantially annular and cylindrical. The housing may comprise any suitable material or combination of materials. Examples of suitable materials include metals, alloys, plastics, or composites containing one or more of these materials, or thermoplastics suitable for food or pharmaceutical applications, such as polypropylene, polyetheretherketone (PEEK), and polyethylene. In certain embodiments, the material is lightweight and not brittle.
[0095] The rechargeable power supply of the aerosol generating device may be contained within a housing. The housing may include a cavity for receiving one or more of the aerosol-generating article and the cartridge. The aerosol generating device may include an atomizer. The atomizer may be an electric heater. If the device includes a cavity for receiving the aerosol-generating article or the cartridge, the atomizer may be disposed within the cavity.
[0096] The aerosol generation device may include an electrical circuit. The electrical circuit may be configured to control the transfer of power from the charging unit to the aerosol generation device when the first connector portion and the second connector portion are electrically engaged. The electrical circuit may be configured to control the transfer of data from one or more charging units to the aerosol generation device and from the aerosol generation device to the charging units. The electrical circuit may include a microprocessor.
[0097] The charging unit may have any suitable size and shape.
[0098] The charging unit may have a cross-section of any suitable shape. For example, the charging unit may have a substantially circular, oval, triangular, square, diamond, trapezoidal, pentagonal, hexagonal, or octagonal cross-section. In some specific embodiments, the aerosol generating device has a substantially rectangular cross-section.
[0099] The charging unit may have a substantially constant cross-section along its length. The charging unit may have a substantially rectangular cross-section along its length. In certain embodiments, the charging unit may be a substantially rectangular cube.
[0100] The charging unit may have any suitable diameter and any suitable length. In some embodiments, the aerosol generating device may have a shape, diameter, and length substantially similar to a conventional cigarette pack. The charging unit may have a length of about 50 mm to about 200 mm. The charging unit may have an outer diameter of about 10 mm to about 150 mm, or about 50 mm to about 100 mm.
[0101] The charging unit may have a recess configured to receive the aerosol generating device. The recess may be configured to receive the distal end of the aerosol generating device. The recess may be configured to receive the entire aerosol generating device. The charging unit recess may have any suitable size and shape for receiving the aerosol generating device.
[0102] The charging unit recess can have a cross-sectional shape of any suitable shape. For example, the recess can have a substantially circular, oval, triangular, square, diamond, trapezoidal, pentagonal, hexagonal, or octagonal cross-section. In certain embodiments, the charging unit recess can have a cross-sectional shape that is substantially the same as the cross-sectional shape of the aerosol generating device to be received in the recess. In some particular embodiments, the recess can have a substantially circular cross-section.
[0103] The cavity of the charging unit may have a substantially constant transverse cross-section along its length. The cavity may have a substantially circular transverse cross-section along its length. The cavity may be substantially annular cylindrical. The cavity may be substantially axisymmetric about its longitudinal axis.
[0104] The charging unit recess may have any suitable diameter and any suitable length.
[0105] In certain embodiments, the cavity in the charging unit may have a diameter that is substantially equal to or slightly larger than the diameter of the aerosol generating device.
[0106] The recess of the charging unit may be elongated. The recess may have a length that is smaller than the length of the aerosol generating device, such that the proximal or downstream end of the aerosol generating device protrudes from the recess when the distal end of the aerosol generating device is received in the recess of the charging unit. The recess of the charging unit may have a length that is substantially equal to or slightly greater than the length of the aerosol generating device, such that substantially the entire length of the aerosol generating device is received in the recess of the charging unit. Advantageously, this may allow the device to be completely enclosed within the recess, allowing the charging unit to protect the device from the external environment.
[0107] One of the first connector portion and the second connector portion may be disposed in a recess of the charging unit. This arrangement may substantially shield or protect the connector portion from the external environment. The recess may have an open end. The open end may allow the aerosol generating device to be inserted into the recess and the aerosol generating device to be removed from the recess. The recess may also have a closed end opposite the open end. One of the first connector portion and the second connector portion may be disposed at the closed end of the recess of the charging unit.
[0108] In some specific embodiments, one of the first connector portion and the second connector portion may be disposed on an end surface at the distal end of the aerosol generating device, and the other of the first connector portion and the second connector portion may be disposed on an end surface at the closed end of the charging unit cavity. In these specific embodiments, the first connector portion and the second connector portion may be electrically engaged by inserting the distal end of the aerosol generating device into the open end of the charging unit cavity and bringing the connector portion disposed on the distal end surface of the device into contact with the connector portion disposed on the closed end surface of the charging unit cavity.
[0109] When the aerosol generating device and the charging unit cavity are substantially annular and cylindrical, the aerosol generating device can freely rotate about its longitudinal axis within the cavity. In these embodiments, the first and second connector portions allow the device to be inserted into the cavity at any angular position relative to the charging unit cavity, and allow the aerosol generating device to rotate within the cavity without breaking the electrical connection between the first and second connector portions.
[0110] The charging unit may include a housing. In certain embodiments, the housing may be a substantially rectangular cube. The housing may comprise any suitable material or combination of materials. Examples of suitable materials include metals, alloys, plastics, or composites containing one or more of these materials, or thermoplastics suitable for food or pharmaceutical applications, such as polypropylene, polyetheretherketone (PEEK), and polyethylene. In certain embodiments, the material is lightweight and not brittle.
[0111] Where the charging unit includes a cavity for receiving the aerosol generating device, the housing may define the cavity, and the charging unit may include means for closing the open end of the cavity, such as a lid hinged to the housing.
[0112] Where the charging unit includes a power supply, the power supply may be contained within the housing. The charging unit may include means for connecting the charging unit to an external power source, such as a mains power supply, for recharging the power supply of the charging unit.
[0113] The charging unit may include an electrical circuit. The electrical circuit may be configured to control the transfer of power from the charging unit to the aerosol generation device when the first connector portion and the second connector portion are electrically engaged. The electrical circuit may be configured to control the transfer of data from the one or more charging units to the aerosol generation device and from the aerosol generation device to the charging unit. The electrical circuit may include a microprocessor.
[0114] It is also envisioned that the first connector portion and the second connector portion may be used as electrical connectors for electrical systems other than electrically operated aerosol generation systems. An electrical connector including the first connector portion and the second connector portion may be particularly suitable for a system including a portable electrical device and a charging unit, where the portable electrical device includes one of the first connector portion and the second connector portion and the charging unit includes the other of the first connector portion and the second connector portion.
[0115] According to a second aspect of the present invention, there is provided an electrical connector comprising a first connector portion and a second connector portion of the first aspect of the present invention.
[0116] More specifically, according to a second aspect of the present invention, there is provided an electrical connector including a first connector portion and a second connector portion removably electrically connectable to the first connector portion. The first connector portion includes a plurality of electrical contacts and a first magnetic element. The second connector portion includes a plurality of electrical contacts, at least one of the plurality of electrical contacts being a resilient contact movable between an extended position and a recessed position and biased to return to the extended position, and a second magnetic element. The first connector portion and the second connector portion are positionable in a first connecting position, wherein the at least one resilient contact of the second connector portion is in the extended position and the first connector portion is positioned in contact with the at least one resilient contact, the first magnetic element and the second magnetic element are magnetically attracted to each other, and the force of magnetic attraction between the first magnetic element and the second magnetic element is greater than the force required to move the at least one resilient contact from the extended position to the recessed position.
[0117] The features described above in relation to the first aspect may be applied to the second aspect.
[0118] The invention will now be further described, by way of example only, with reference to the accompanying drawings in which: [Brief explanation of the drawings]
[0119] [Figure 1] FIG. 1 shows a schematic diagram of a first connector portion of an electrical connector according to one embodiment of the present invention. [Figure 2] FIG. 2 shows a perspective view of the first connector portion of FIG. [Figure 3] FIG. 3 shows a schematic diagram of a second connector portion of an electrical connector according to one embodiment of the present invention, the second connector portion being compatible with the first connector portion of FIG. [Figure 4] FIG. 4 shows a perspective view of the second connector portion of FIG. [Figure 5] FIG. 5 shows a schematic diagram of an electrically operated aerosol generation system, the system comprising an aerosol generation device including the first connector portion of FIGS. 1 and 2 received in a charging unit including the second connector portion of FIGS. 3 and 4. [Figure 6] FIG. 6 shows a schematic diagram of a magnetic retention structure compatible with the second connector portion of FIGS. [Figure 7] FIG. 7 shows a cross section of the magnetic retaining structure of FIG. [Figure 8] FIG. 8 shows an electrically operated aerosol generating system including an electrical connector according to an embodiment of the present invention and the magnetic retaining means of FIGS. [Figure 9] FIG. 9 shows a perspective view of another embodiment of a magnetic retaining structure compatible with the second connector portion of FIGS. [Figure 10] FIG. 10 shows a front view of one of the magnets in the arrangement of FIG. [Figure 11] FIG. 11 shows an electrically operated aerosol generating system including an electrical connector according to an embodiment of the present invention and the magnetic retaining means of FIGS. [Figure 12] FIG. 12 shows a side view of the electrical connector of FIG. 11 in the first connected position. [Figure 13] FIG. 13 shows a side view of the electrical connector of FIG. 11 in the second connection position. [Figure 14] FIG. 14 shows a perspective view of another embodiment of a magnetic retaining structure compatible with the second connector portion of FIGS. [Figure 15] FIG. 15 shows a front view of one of the magnets in the arrangement of FIG. DETAILED DESCRIPTION OF THE INVENTION
[0120] 1 and 2 show schematic diagrams of a first connector portion 40 of an electrically operated aerosol generation system according to one embodiment of the present invention. The first connector portion 40 is disposed on the distal end face of an aerosol generation device (not shown). The first connector portion 40 includes three electrical contacts: a first electrical contact 43, a second electrical contact 44, and a third electrical contact 45.
[0121] First connector portion 40 includes a circular, planar surface 46 having a recess 48 located at the center of the surface. Recess 48 is annularly cylindrical, having an open end on surface 46, an opposite closed end, and a tubular sidewall extending between the open and closed end surfaces. The closed end surface of the recess is circular and lies in a plane parallel to the plane of surface 46. Circular surface 46 has a diameter of approximately 10 mm, and recess 48 has a diameter of approximately 4 mm and a depth of approximately 4 mm.
[0122] The first electrical contact 43 is circular and extends substantially over the closed end surface of the recess 48. The outer edge of the first electrical contact 43 is defined by the sidewall of the recess 48, so that the diameter of the first electrical contact is the same as the diameter of the recess. The second electrical contact 44 is tubular and extends substantially over the tubular sidewall of the recess 48. The second electrical contact 44 has a thickness of approximately 0.1 mm so that positioning the second electrical contact 44 within the recess 48 does not significantly reduce the diameter of the recess 48. The second electrical contact 44 has a width of approximately 3.8 mm and is positioned within the recess 48 so that the second electrical contact 44 does not extend to the closed end surface of the recess 48. This positioning ensures that the second electrical contact 44 does not come into contact with the first electrical contact 44. The third electrical contact 45 is annular and extends substantially over the surface 46. The third electrical contact 45 has an outer diameter of about 8 mm and an inner diameter of about 4.6 mm so that the third electrical contact 45 does not contact the second electrical contact 44. In this arrangement, the first electrical contact 43, the second electrical contact 44, and the third electrical contact 45 are all electrically isolated from each other.
[0123] The first electrical contact 43 and the third electrical contact 45 are in different parallel planes, and the second electrical contact 44 extends on a cylindrical surface that is perpendicular to the planes of the first electrical contact 43 and the third electrical contact 45.
[0124] In this embodiment, the first electrical contact is formed from a copper alloy, the second electrical contact is formed from SS304 stainless steel, and the third electrical contact 45 is formed from SS430 stainless steel.
[0125] An advantage of the arrangement of electrical contacts 43, 44, 45 of first connector part 40 is that the electrical contacts have circular rotational symmetry about an axis that is perpendicular to the plane of first electrical contact 43 and passes through the center of first contact 43. This allows first connector part 43 to be connected to a second connector part in any rotational orientation about the axis and provide the same contact arrangement for the second connector part. Thus, first connector part 43 can be connected to a second connector part in any orientation of the first connector part 43 relative to the second connector part about the axis of first connector part 43.
[0126] 3 and 4 show schematic diagrams of a second connector portion 50 of an electrically operated aerosol generation system according to one embodiment of the present invention. The second connector portion 50 is disposed on the closed end face of the cavity of the charging unit (not shown). The second connector portion 50 includes four electrical contacts: a first electrical contact 53, a second electrical contact 54, and two third electrical contacts 55.
[0127] The second connector part 50 includes a circular, planar surface 56 having a protrusion 58 centrally located therein. The protrusion 58 extends outward from the surface 56 in a direction perpendicular to the plane of the surface 56. The protrusion 58 is annularly cylindrical and includes a tubular sidewall extending between the surface 56 and an end face of the protrusion 58. The end face of the protrusion 58 is circular and lies in a plane parallel to the plane of the surface 56. The protrusion has substantially the same shape as the recess 48 of the first connector part 40, a height of approximately 3 mm, and a maximum diameter of approximately 3.3 mm, slightly smaller than the recess 48, such that the protrusion 58 of the second connector part 50 fits closely within the recess 48 of the first connector part 40. The diameter or width of protrusion 58 decreases toward the end face of the protrusion so that the interface between the end face and the side wall of protrusion 58 is rounded to facilitate positioning of protrusion 58 within recess 48 of first connector part 40.
[0128] The first electrical contact 53 is a resilient pin or "pogo pin" contact located on the end face of the protrusion 58. The first electrical contact 53 extends outward from the end face of the protrusion 58 in the same direction as the protrusion. The second electrical contact 54 is a leaf spring located on the side wall of the protrusion 58. The second electrical contact 54 extends radially outward from the side wall of the protrusion 58 at a right angle to the side wall and parallel to the plane 56 for a maximum distance of approximately 0.3 mm. The two third electrical contacts 55 are pogo pin contacts similar to the first electrical contact 53. The two third electrical contacts 55 extend outward from the plane 56 at a right angle to the plane 56 and parallel to the first electrical contact 53.
[0129] The two third electrical contacts 55 are spaced radially outward in opposite directions from the first electrical contact 53 such that the first electrical contact 53 and the two third electrical contacts 55 are arranged in a straight line. The two third electrical contacts 55 are spaced from the first electrical contact 53 by a distance equal to approximately 2.75 mm measured from the central axis of the contact. The distance between the third electrical contact 54 and the first electrical contact 53 of the second connector portion 50 is greater than the diameter of the protrusion 58.
[0130] In this embodiment, the pogo pin contacts 53, 55 are formed from brass and the leaf spring contact 54 is formed from SS301 stainless steel.
[0131] The pogo pin contacts 53, 55 generally extend about 1 mm above the face of the second connector portion 50 from which they extend when they are uncompressed, and about 0.5 mm above the face from which they extend when they are fully compressed.
[0132] The first connector portion 40 and the second connector portion 50 include magnetic retention means. The magnetic retention means includes a first magnetic element in the form of the third electrical contact 45 of the first connector portion 40, which comprises a ring or band of ferromagnetic metal. The magnetic retention means further includes a second magnetic element 59 comprising a pair of arcuate ferromagnetic element bodies disposed on either side of the electrical contact of the second connector portion 50. The second magnetic element 59 is electrically isolated from the electrical contact of the second connector portion 50.
[0133] In this embodiment, the third electrical contact 45 of the first connector portion 40 (i.e., the first magnetic element) is formed from a ferromagnetic stainless steel such as SS430 stainless steel, and the second magnetic element 59 is formed from an alloy of neodymium, iron, and boron that forms a permanent magnet when magnetized.
[0134] As the first connector portion 40 moves into proximity with the first connector portion 50, the magnetic attraction between the first magnetic element and the second magnetic element draws the first and second connector portions together, compressing the pogo pin contacts 53, 55 of the second connector portion 50 and electrically engaging the electrical contacts of each connector portion. The magnetic retaining means serves to hold the first and second connector portions in electrical engagement.
[0135] Of course, in other embodiments, the first and second magnetic elements may be formed from alternative materials and may be located in different positions. For example, the first magnetic element may be located behind the electrical contacts of first connector portion 40, forming a ring of ferromagnetic material below third electrical contact 45 and surrounding recess 48.
[0136] Of course, in other embodiments, the first magnetic element may include a magnetized material and the second magnetic element may include a non-magnetized magnetic material, while in other embodiments, both the first magnetic element and the second magnetic element may include a magnetized magnetic material.
[0137] FIG. 5 shows the first connector portion 40 and the second connector portion 50 in place in an aerosol generation system 100 according to an embodiment of the present invention.
[0138] The aerosol generation system 100 includes an aerosol generation device 101 having a first connector portion 40 disposed at a distal end face thereof. The aerosol generation system 100 further includes a charging unit 103 including a recess 104 for receiving the distal end of the aerosol generation device 101. The recess 104 includes a second connector portion 50 at a closed end face thereof. The charging unit 103 further includes a battery 105 and an electrical circuit 106 housed within a housing. The housing defines an annular, cylindrical recess 104.
[0139] The first connector portion 40 and the second connector portion 50 can be electrically engaged by inserting the distal end of the aerosol generating device 101 into the recess 104 of the charging unit 103. The aerosol generating device 101 has an annular cylindrical shape, and the recess 104 of the charging unit 103 also has an annular cylindrical shape and has a diameter slightly larger than that of the aerosol generating device 101. By inserting the distal end of the aerosol generating device 101 into the recess 104, the surface 46 of the first connector portion 40 is aligned with the surface 56 of the second connector portion 50. Furthermore, by aligning the surface 46 of the first connector portion 40 and the surface 56 of the second connector portion 50, the recess 48, first electrical contact 43, second electrical contact 44, and third electrical contact 45 of the first connector portion 40 are aligned with the protrusion 58, first electrical contact 53, second electrical contact 54, and third electrical contact 55 of the second connector portion 50, respectively. Therefore, when the first connector portion 40 comes into contact with the second connector portion 50, the protrusion 58 is received within the recess 48, and the first electrical contacts 43, 53 are electrically engaged, the second electrical contacts 44, 54 are electrically engaged, and the third electrical contacts 45, 55 are electrically engaged.
[0140] 6, 7, and 8 illustrate one embodiment of a magnetic retaining means for releasably maintaining electrical engagement between the first and second connector portions of an aerosol generation system of the present invention when the aerosol generation device 201 of the system is received within the recess 204 of the charging unit of the system. The magnetic retaining means includes a first magnetic element 210 at the distal end of the aerosol generation device 201 and a second magnetic element at the closed end of the recess 204.
[0141] The aerosol generating device 201 includes a first connector portion 240 at its distal end face. In this embodiment, the first magnetic element 210 does not form the third electrical contact of the first connector portion 240. The first magnetic element 210 includes a ring of ferromagnetic material disposed proximal to the first connector portion 250 within the device 201. The ring surrounds the recess 258 of the first connector portion 250 and is electrically isolated from the first connector portion 240.
[0142] The charging unit recess 204 includes a second connector portion 250 at its closed end surface. The second magnetic element 220 includes a tubular magnetic structure shown in detail in Figures 6 and 7. The second magnetic element 220 is disposed below the second connector portion 250 and is electrically isolated from the second connector portion 250.
[0143] 6 and 7 show schematic diagrams of the second magnetic element 220. The second magnetic element 220 generally comprises two rings 222, 223 of ferromagnetic material aligned such that an unobstructed cylindrical passage 204 is provided through the rings 222, 223. The rings 222, 223 are spaced apart along the axis of the cylindrical passage and separated by two permanent magnets 225, 226.
[0144] The two permanent magnets 225, 226 are identical to one another. Each one of the permanent magnets comprises a semicircular arc with a radius equal to the radius of the rings 222, 223. The permanent magnets 225, 226 are generally positioned to surround the cylindrical passage 224, on either side of the central passage. The north and south magnetic poles of the permanent magnets 225, 226 are oriented in the same direction, as indicated by the letters "N" and "S" in FIG. 7.
[0145] Each magnet 225, 226 has opposing ends and a body extending between the opposing ends. The body of each magnet 225, 226 has an arcuate upper side and an opposing arcuate lower side extending between the ends. Each magnet 225, 226 has a single north magnetic pole on one of the upper and lower sides and a single south magnetic pole on the other of the upper and lower sides. In this embodiment, the north poles of magnets 225, 226 are located on the upper side of the magnet adjacent to upper ring 222, and the south poles of magnets 225, 226 are located on the lower side adjacent to lower ring 223. In this arrangement, second magnetic element 220 forms a generally tubular permanent magnet.
[0146] The second magnetic element 220 is disposed within the charging unit below the second connector portion 250 at the closed end of the recess 204. A central passage 223 through the second magnetic element 220 is aligned with the protrusion 258 of the second connector portion 250, allowing the electrical connector to connect the first and second electrical contacts of the second connector portion 250, which are disposed on the protrusion 258, to the electrical circuit of the charging unit.
[0147] The north-south magnetic poles of the second magnetic element 220 are generally aligned with the longitudinal axis of the recess 204. As the first connector portion 240 moves within the recess and proximate to the second connector portion 250, the second magnetic element 220 magnetizes the first magnetic element 210 of the aerosol generating device, and the magnetic attraction between the first magnetic element 210 and the second magnetic element 220 draws the aerosol generating device along the longitudinal axis of the recess 204 toward the second connector portion 250 and the second magnetic element 220 at the closed end. This action facilitates electrical connection between the first connector portion 240 and the second connector portion 250.
[0148] When first connector portion 240 and second connector portion 250 are electrically engaged, the magnetic attraction between first magnetic member 210 and second magnetic member 220 electrically engages and removably holds first connector portion 240 and second connector portion 250 together. In other words, the magnetic attraction between first magnetic member 210 and second magnetic member 220 resists separation of first connector portion 240 and second connector portion 250 in the direction of the longitudinal axis of recess 204. Therefore, additional force is required to disengage first connector portion 240 and second connector portion 250.
[0149] 9, 10, and 11 show another embodiment of a magnetic retaining means for releasably maintaining electrical engagement between a first connector portion 240' and a second connector portion 250' of an aerosol generation system of the present invention when an aerosol generation device 201' of the system is received within a recess 204' of a charging unit of the system. The magnetic retaining means includes a first magnetic element 210' at the distal end of the aerosol generation device 201' and a second magnetic element 220' at the closed end of the recess 204'.
[0150] The aerosol generating device 201' includes a first connector portion 240' at its distal end surface. In this embodiment, the third electrical contact of the first connector portion 240' includes a first magnetic element 210', such that the first magnetic element 210' includes a ring of ferromagnetic material surrounding a recess in the first connector portion 240'.
[0151] The charging unit recess 204' includes a second connector portion 250' on the closed end surface of the recess. The second magnetic element 220' includes two arcuate permanent magnets 225', 226', as shown in FIGS. 9 and 10. The two permanent magnets 225', 226' are arcuate and have the same curvature as the third electrical contact of the first connector portion 210'. The permanent magnets 225' and 226' are disposed on opposite sides of the second connector portion 250' and are electrically isolated from the second connector portion 250'. The permanent magnets 225', 226' are laterally curved and disposed around the cylindrical passage 224', generally surrounding the cylindrical passage 224' on both sides. The permanent magnets 225', 226' are laterally spaced apart such that the magnets 225', 226' are disposed on either side of the third electrical contact of the second connector portion 250' and the third electrical contact is disposed therebetween.
[0152] 11 , the permanent magnets 225′, 226′ extend over the surface of the second connector portion 250′. The arcuate upper surfaces of the permanent magnets 225′, 226′ are positioned directly below the tops of the third electrical contact pogo pins when the pogo pin contacts are in their compressed positions. In this position, the first magnetic element 210′ of the device 201′ is positioned adjacent to the second magnetic element 220′ of the charging unit recess 204′ when the device 201′ is positioned within the recess 204′ and the first connector portion 240′ is in contact with the second connector portion 250′.
[0153] Each magnet 225', 226' has a single north magnetic pole on one of its upper and lower sides and a single south magnetic pole on the other of its upper and lower sides. As shown in magnet 225' in Figure 10, when each magnet is viewed from the front and the opposing end faces of the arcuate magnet are viewed, both end faces of the magnet have north and south magnetic poles oriented in the same direction.
[0154] The north and south magnetic poles of permanent magnets 225', 226' are oriented in opposite directions, as indicated by "N" and "S" in FIG. 10 . The north magnetic pole of magnet 225' and the south magnetic pole of magnet 226' are positioned to extend from the surface of second connector portion 250' toward a central passageway through the magnets. In this arrangement, the north magnetic pole of magnet 225' and the south magnetic pole of magnet 226' are positioned adjacent to first magnetic element 210' when device 201' is positioned within recess 204' and first connector portion 240' and second connector portion 250' are engaged. In this arrangement, permanent magnet 225', first magnetic element 210', and permanent magnet 226' form a magnetic circuit.
[0155] The magnetic attraction between the first magnetic element 210' and the second magnetic element 220' draws the aerosol generating device along the longitudinal axis of the recess 204' toward the second connector portion 250' and the second magnetic element 220' at the closed end. This action facilitates electrical connection between the first connector portion 240' and the second connector portion 250', as described in the previous embodiments.
[0156] FIG. 12 shows the first connector portion 240′ and the second connector portion 250′ in the first connected position. In the first connected position, the first connector portion 240′ and the second connector portion 250′ are electrically engaged. In other words, in the first connected position, the first electrical contacts of the connector portions are engaged, the second electrical contacts of the connector portions are engaged, and the third electrical contacts of the connector portions are engaged. In the first connected position, the first resilient pin contact (not shown) and the third resilient pin contact of the second connector portion are in their extended positions. In the first connected position, the force of magnetic attraction between the first magnetic element 210′ and the second magnetic element 220′ is greater than the force required to depress the first resilient pin contact and the second resilient pin contact of the second connector portion and the frictional force between the device and the charging unit. Therefore, the first connector portion 240′ and the second connector portion 250′ are drawn together by the force of magnetic attraction. A user moving the device through the first connection position and into the charging unit cavity experiences no additional resistance at the first connection position when the first connector portion abuts the resilient pin contacts because the force of magnetic attraction between first magnetic element 210′ and second magnetic element 220′ substantially masks the biasing force exerted on the device by the resilient pin contacts. In this embodiment, first magnetic element 210′ and second magnetic element 220′ are separated by approximately 0.5 millimeters when first connector portion 240′ and second connector portion 250′ are in the first connection position.
[0157] FIG. 13 shows the first connector portion 240′ and the second connector portion 250′ in the second connected position. The first connector portion 240′ and the second connector portion 250′ are still electrically engaged in the second connected position. In the second connected position, the first and third resilient pin contacts (not shown) of the second connector portion are in their recessed positions. In the second connected position, the force of magnetic attraction between the first magnetic element 210′ and the second magnetic element 220′ is greater than the combined biasing force exerted on the first connector portion 240′ by the resilient pin contacts of the second connector portion 250′ and the weight of the aerosol generating device, such that the charging unit and the device can be reversed and the aerosol generating device can be held in the second connected position by the force of magnetic attraction. In this embodiment, a small air gap is provided between the first and second magnetic elements in the second connected position. Of course, in other embodiments, the first and second magnetic elements may be in direct contact in the second connected position.
[0158] Figures 14 and 15 show an alternative embodiment of the second magnetic element of the magnetic retaining means of Figures 9, 10 and 11 described above. The second magnetic element 220'' of the embodiment shown in Figures 14 and 15 includes two arcuate permanent magnets 225'', 226'' that are identical to the permanent magnets 225', 226' of Figures 9 and 10. The permanent magnets 225'', 226'' differ from the magnets 225', 226' in the arrangement of their north and south magnetic poles.
[0159] Each of the upper and lower sides of each of the magnets 225'', 226'' has a north and a south magnetic pole. For each magnet 225'', 226', the north magnetic pole of the upper side is located at the opposite end from the north magnetic pole of the lower side. Similarly, the south magnetic pole of the upper side is located at the opposite end from the south magnetic pole of the lower side. In other words, each end face of each of the magnets 225'', 226'' has north and south magnetic poles oriented in opposite directions. As shown in magnet 225'' in FIG. 14, in this arrangement, when each magnet is viewed from the front and both end faces of the arcuate magnet are viewed, the end faces have north and south magnetic poles oriented in opposite directions. In other words, the north poles are located at diagonally opposite corners of the magnet, and the south poles are located at diagonally opposite corners of the magnet.
[0160] As described above for the embodiment shown in FIG. 11 , permanent magnets 225″, 226″ are positioned about a second connector portion (not shown) in a manner similar to magnets 225′, 226′. As shown in FIG. 12 , when magnets 225″, 226″ are positioned about the second connector portion, the north magnetic pole of magnet 225″ is positioned adjacent to the north magnetic pole of second magnet 226″, and the south magnetic pole of magnet 225″ is positioned adjacent to the south magnetic pole of magnet 226″. In this configuration, when the first magnetic element is positioned adjacent to the arcuate upper surfaces of magnets 225″, 226″, magnets 225″, 226″ and first magnetic element form a magnetic circuit that is an alternative to the circuit described above in connection with the embodiment of FIGS. 9, 10, and 11 .
[0161] Of course, in other embodiments, the permanent magnets of the second magnetic element may have their north and south poles oriented in opposite directions. Of course, in embodiments including a second magnetic element that includes more than one permanent magnet, the north and south poles of the magnets may be oriented in alternative configurations. Of course, in other embodiments, the first magnetic element of the aerosol generating device may include more than one permanent magnet.
[0162] Of course, features described in relation to one embodiment or aspect of the invention may also be applied to other embodiments or aspects of the invention.
Claims
1. 1. An aerosol generating system comprising: an aerosol generating device for receiving an aerosol-forming substrate and generating an aerosol from the aerosol-forming substrate, the aerosol generating device including a rechargeable power source; a charging unit electrically connectable to the aerosol generating device to provide power to the aerosol generating device for recharging the rechargeable power source; 1. An electrical connector comprising: a plurality of electrical contacts; and a first connector portion including a first magnetic element; and a second connector portion removably electrically connectable to the first connector portion, a plurality of electrical contacts, at least one of the plurality of electrical contacts being a resilient contact movable between an extended position and a recessed position and biased to return to the extended position; and an electrical connector including a second connector portion including a second magnetic element; the aerosol generating device includes one of the first connector portion and the second connector portion, and the charging unit includes the other of the first connector portion and the second connector portion; the plurality of electrical contacts of the first connector portion are circularly symmetric about an axis of the first connector portion, and the plurality of electrical contacts of the second connector portion are electrically connectable at any orientation of the first connector portion relative to the second connector portion about the axis of the first connector portion; the first connector portion and the second connector portion are positionable in a first connection position; the at least one resilient contact of the second connector portion is in the extended position; the first connector portion is positioned in contact with the at least one resilient contact; the first magnetic element and the second magnetic element are magnetically attracted to each other; a force of magnetic attraction between the first magnetic element and the second magnetic element is greater than a force required to move the at least one resilient contact from the extended position to the recessed position; the first connector portion is a surface and a depression substantially centrally disposed in the surface, the depression having a closed end, an open end at the surface, and a sidewall extending between the open end and the closed end; a first electrical contact of the plurality of electrical contacts disposed at the closed end of the recess; a second electrical contact of the plurality of electrical contacts disposed on the sidewall of the recess and substantially surrounding the first electrical contact of the plurality of electrical contacts; a third electrical contact of the plurality of electrical contacts disposed on the surface and substantially surrounding the first electrical contact of the plurality of electrical contacts; the second connector portion is a surface and a protrusion disposed substantially centrally on the surface, the protrusion having an end surface and a sidewall extending between the surface and the end surface of the protrusion; a first electrical contact of the plurality of electrical contacts disposed on the end surface of the protrusion; a second electrical contact of the plurality of electrical contacts disposed on the at least one sidewall of the protrusion; a third electrical contact of the plurality of electrical contacts disposed on the surface, the third electrical contact being a resilient pin contact; Aerosol generation system.
2. 2. The aerosol generation system of claim 1, wherein the force of magnetic attraction between the first magnetic element and the second magnetic element is at least 0.15 Newtons when the first connector portion and the second connector portion are in the first connected position.
3. 2. The aerosol generation system of claim 1, wherein the force of magnetic attraction between the first magnetic element and the second magnetic element is between 0.2 Newtons and 10 Newtons when the first connector portion and the second connector portion are in the first connected position.
4. 4. The aerosol generation system according to claim 1, wherein the length of movement of the at least one resilient contact between the extended position and the recessed position is between 0.3 mm and 0.7 mm.
5. the first connector portion and the second connector portion are further positionable at a second connection position; at least one of the plurality of electrical contacts of the first connector portion is electrically connectable to at least one of the plurality of electrical contacts of the second connector portion; the first magnetic element and the second magnetic element are magnetically attracted to each other; 5. The aerosol generation system according to claim 1, wherein the at least one resilient contact of the second connector part is in the recessed position.
6. When the first connector portion and the second connector portion are positioned in the second connection position, the at least one resilient contact in the recessed position exerts a biasing force on the first connector portion; 6. The aerosol generation system of claim 5, wherein the force of the magnetic attraction between the first magnetic element and the second magnetic element is greater than the biasing force applied to the first connector portion by the at least one resilient contact.
7. 7. The aerosol generation system of claim 5 or 6, wherein the force of magnetic attraction between the magnetic element and the second magnetic element is at least 1 Newton when the first connector portion and the second connector are in the second connection position.
8. 8. The aerosol generation system of claim 5, wherein the force of magnetic attraction between the first magnetic element and the second magnetic element is between 1.5 Newtons and 4 Newtons when the first connector portion and the second connector portion are in the second connection position.
9. 9. The aerosol generating system of claim 1, wherein at least one of the plurality of electrical contacts of the first connector portion is formed from the first magnetic element.
10. 10. The aerosol generating system of claim 1, wherein the first magnetic element comprises a permanent magnet.
11. the aerosol generating device includes the first connector portion or the second connector portion at a distal end of the device; the charging unit includes a recess for receiving at least a distal portion of the aerosol generating device, and the first connector portion and the second connector portion are disposed at distal ends of the recess; 6. The aerosol generation system of claim 5, wherein the first connector portion and the second connector portion are positionable in the second connection position when the distal end of the aerosol generation device is received in the distal end of the recess of the charging unit.
12. The aerosol generation system of claim 11, wherein the force of magnetic attraction between the first magnetic element and the second magnetic element when a first contact of the plurality of electrical contacts and a second contact of the plurality of electrical contacts are in the first connection position is greater than the combination of the friction force between the aerosol generation device and the recess of the charging unit and the spring force required to operate at least one elastic contact between the extended position and the recessed position.
13. 13. The aerosol generating system according to claim 1, wherein the aerosol generating device includes the first connector portion and the charging unit includes the second connector portion.
14. one of the first magnetic element and the second magnetic element includes a first permanent magnet and a second permanent magnet spaced apart from the first permanent magnet; 14. The aerosol generating system of claim 1, wherein the north and south magnetic poles of the first permanent magnet are arranged in the opposite direction to the north and south magnetic poles of the second permanent magnet.
15. the second magnetic element of the second connector portion includes two permanent magnets, each permanent magnet having: a body extending between two opposing ends; a first end of a north-south magnetic pole having a first orientation; and second ends of north and south magnetic poles having a second direction opposite the first direction; An aerosol generation system as described in any one of claims 1 to 13, wherein the two permanent magnets are arranged within the second connector portion so that each of the permanent magnets experiences a magnetic repulsive force from the other permanent magnet.
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