The present invention relates to an electrically heated aerosol generating system for receiving an aerosol-forming substrate, and a method for electrically heating an aerosol-forming substrate. The present invention finds particular application as an electrically heated smoking system.
A number of prior art documents, for example U.S. Pat. Nos. 5,060,671, 5,388,594, 5,505,214, 5,591,368, WO-A-2004/043175, EP-A-0 358 002, EP-A-0 295 122, EP-A-1 618 803, EP-A-1 736 065 and WO-A-2007/131449, disclose electrically operated smoking systems, having a number of advantages. One advantage is that they significantly reduce sidestream smoke, while permitting the smoker to selectively suspend and reinitiate smoking.
U.S. Pat. No. 5,388,594, the entire contents of which are incorporated herein by this reference thereto, describes an electrical smoking system. The smoking system includes a cigarette and a reusable lighter. The cigarette is adapted to be inserted in and removed from an orifice at a front end of the lighter. The lighter includes a housing and has a front portion and a rear portion. A power source for supplying energy to heating elements for heating the cigarette is disposed in the rear portion of the lighter. The power source is sized to provide sufficient power for the heating elements that heat the cigarette. The power source is preferably replaceable and rechargeable and, in one preferred embodiment, is a battery. The front portion preferably houses heating elements and circuitry in electrical communication with the power source. The smoking system is used in much the same fashion as a conventional cigarette.
WO-A-2004/043175 also describes an electrical smoking system. In that document, the electrically heated cigarette smoking device includes an upper heater case cap, a front housing and left and right battery case portions. A heater unit is positioned below the heater case cap, with the heater unit fitting inside a partition, which positions the heater unit relative to the front housing of the device. An opening at the top of the heater case cap allows for the insertion of a cigarette into the top opening of the heater unit. When the cigarette has been inserted through the heater case cap opening and into the heater unit opening, it is positioned in proximity to a plurality of heater blades, arranged around the circumference of the cigarette. Slots through the heater case cap provide passageways for ambient air to enter the device when a cigarette is positioned in the opening. A printed circuit board is positioned between the partition and the front housing. A heater unit connector is positioned below the heater unit within inner housing members. This provides electrical connection between the heater blades and a power source such as a battery, housed within the battery case portions.
U.S. Pat. No. 5,060,671, the entire contents of which are incorporated herein by this reference thereto, describes a flavor-generating device with a disposable part constituted by the heater and the flavor-generating medium, and a reusable part constituted by the power source.
Other prior art documents, such as EP-A-0 295 122, EP-A-1 618 803 and EP-A-1 736 065, disclose electrical smoking systems which use a liquid as the aerosol-forming substrate. The liquid may be contained in a cartridge which is receivable in a housing. A power supply, such as a battery, is provided, connected to a heater to heat the liquid substrate during a puff, to form the aerosol which is provided to the smoker.
The electrically heated aerosol generating systems of the prior art, including those described above, typically provide a high power pulse to the heater to provide a high temperature and to release the volatile compounds for each puff.
The electrically heated aerosol generating systems of the prior art, including those described above, do have a number of advantages, but there is still room for improvement in the design. It would be advantageous if the devices could be made smaller, so that the size is closer to that of a conventional cigarette and more convenient for the user.
It is therefore an object of the invention to provide an improved electrically heated aerosol generating system.
According to a first aspect of the invention there is provided an electrically heated aerosol generating system for receiving an aerosol-forming substrate, the system comprising: at least one heating element for heating the substrate to form the aerosol; and a power supply for supplying power to the at least one heating element, the power supply comprising: a voltage source, two or more (i.e., at least two) supercapacitors, and appropriate switches between the voltage source and the two or more supercapacitors, the switches being arranged such that, during a charging mode, the supercapacitors are connected for charging by the voltage source and, during a heating mode, the supercapacitors are connected for discharging through the at least one heating element.
The invention allows the electrically heated aerosol generating system to be smaller by using supercapacitors which charge up (i.e., store electrical energy) and then discharge (electrical energy) through the at least one heating element.
In one embodiment, the system further comprises voltage step-up or step-down circuitry between the voltage source and the two or more supercapacitors. This is useful if the voltage supplied by the voltage source does not match the maximum voltage across the two or more supercapacitors.
Preferably, the power supply is arranged such that, during the charging mode, the two or more supercapacitors are connected, at least partially, in parallel with each other, and, during the heating mode, the two or more supercapacitors are connected in series with each other. This is advantageous because the voltage supplied by the voltage source need not be the total voltage required across the heating element. This is because the supercapacitors are charged in parallel hut discharged in series. In addition, the efficiency of the overall system is increased.
In one embodiment, the system comprises: a portion to be held by a user, and an external charging portion, the portion to be held by a user comprising the at least one heating element, the two or more supercapacitors and at least some of the switches required to connect the two or more supercapacitors during the heating mode, the external charging portion comprising the voltage source and at least some of the switches required to connect the two or more supercapacitors during the charging mode. This embodiment is advantageous because any circuitry required only during charging, and not during heating, can be moved to the external charging portion. This allows the portion to be held by a user to be further reduced in size and weight.
The aerosol-forming substrate preferably comprises a tobacco-containing material containing volatile tobacco flavor compounds which are released from the substrate upon heating. Alternatively, the aerosol-forming substrate may comprise a non-tobacco material such as those used in the devices of EP-A-1 750 788 and EP-A-1 439 876.
Preferably, the aerosol-forming substrate further comprises an aerosol former. Examples of suitable aerosol formers are glycerine and propylene glycol. Additional examples of potentially suitable aerosol formers are described in EP-A-0 277 519 and U.S. Pat. No. 5,396,911.
The aerosol-forming substrate may be a solid substrate. The solid substrate may comprise, for example, one or more of: powder, granules, pellets, shreds, spaghettis, strips or sheets containing one or more of: herb leaf, tobacco leaf, fragments of tobacco ribs, reconstituted tobacco, homogenized tobacco, extruded tobacco and expanded tobacco. The solid substrate may be in loose form, or may be provided in a suitable container or cartridge. Optionally, the solid substrate may contain additional tobacco or non-tobacco volatile flavor compounds, to be released upon heating of the substrate.
Optionally, the solid substrate may be provided on or embedded in a thermally stable carrier. The carrier may take the form of powder, granules, pellets, shreds, spaghettis, strips or sheets. Alternatively, the carrier may be a tubular carrier having a thin layer of the solid substrate deposited on its inner surface, such as those disclosed in U.S. Pat. Nos. 5,505,214, 5,591,368, and 5,388,594, the entire contents of each patent are incorporated herein by this reference thereto, or on its outer surface, or on both its inner and outer surfaces. Such a tubular carrier may be formed of, for example, a paper, or paper like material, a non-woven carbon fiber mat, a low mass open mesh metallic screen, or a perforated metallic foil or any other thermally stable polymer matrix.
The solid substrate may be deposited on the surface of the carrier in the form of, for example, a sheet, foam, gel or slurry. The solid substrate may be deposited on the entire surface of the carrier, or alternatively, may be deposited in a pattern in order to provide a non-uniform flavor delivery during use.
Alternatively, the carrier may be a non-woven fabric or fiber bundle into which tobacco components have been incorporated, such as that described in EP-A-0 857 431. The non-woven fabric or fiber bundle may comprise, for example, carbon fibers, natural cellulose fibers, or cellulose derivative fibers.
Alternatively, the carrier may be at least a part of the heating element of the electrically heated aerosol generating system. In such cases, the heating element is typically disposable. For example, the solid substrate may be deposited as a thin layer on a metallic foil or on an electrically resistive support as described in U.S. Pat. No. 5,060,671.
The aerosol-forming substrate may alternatively be a liquid substrate. If a liquid substrate is provided, the electrically heated aerosol generating system preferably comprises means for retaining the liquid. For example, the liquid substrate may be retained in a container, such as that described in EP-A-0 893 071. Alternatively or in addition, the liquid substrate may be absorbed into a porous carrier material, as described in WO-A-2007/024130, WO-A-2007/066374, EP-A-1 736 062, WO-A-2007/131449 and WO-A-2007/131450. The porous carrier material may be made from any suitable absorbent plug or body, for example, a foamed metal or plastics material, polypropylene, terylene, nylon fibers or ceramic. The liquid substrate may be retained in the porous carrier material prior to use of the electrically heated aerosol generating system or alternatively, the liquid substrate material may be released into the porous carrier material during, or immediately prior to use. For example, the liquid substrate may be provided in a capsule, as described in WO-A-2007/077167. The shell of the capsule preferably melts upon heating and releases the liquid substrate into the porous carrier material. The capsule may optionally contain a solid in combination with the liquid.
If the aerosol-forming substrate is a liquid substrate, the electrically heated aerosol generating system may further comprise means for heating a small amount of liquid at a time. The means for heating a small amount of liquid at a time may include, for example, a liquid passageway in communication with the liquid substrate, as described in EP-A-0 893 071. The liquid substrate is typically forced into the liquid passageway by capillary force. The heating element is preferably arranged such that during use, only the small amount of liquid substrate within the liquid passageway, and not the liquid within the container, is heated and volatilised.
Alternatively, or in addition, if the aerosol-forming substrate is a liquid substrate, the electrically heated aerosol generating system may further comprise an atomizer in contact with the liquid substrate source and including the at least one heating element. In addition to the heating element, the atomizer may include one or more electromechanical elements such as piezoelectric elements. Additionally or alternatively, the atomizer may also include elements that use electrostatic, electromagnetic or pneumatic effects. The electrically heated aerosol generating system may still further comprise a condensation chamber.
The aerosol-forming substrate may alternatively be any other sort of substrate, for example, a gas substrate, or any combination of the various types of substrate. During operation, the substrate may be completely contained within the electrically heated aerosol generating system. In that case, a user may puff on a mouthpiece of the electrically heated aerosol generating system. Alternatively, during operation, the substrate may be partially contained within the electrically heated aerosol generating system. In that case, the substrate may form part of a separate article and the user may puff directly on the separate article.
The at least one heating element may comprise a single heating element. Alternatively, the at least one heating element may comprise more than one heating element. The heating element or heating elements may be arranged appropriately so as to most effectively heat the aerosol-forming substrate.
The at least one heating element preferably comprises an electrically resistive material. Suitable electrically resistive materials include but are not limited to: semiconductors such as doped ceramics, electrically “conductive” ceramics (such as, for example, molybdenum disilicide), carbon, graphite, metals, metal alloys and composite materials made of a ceramic material and a metallic material. Such composite materials may comprise doped or undoped ceramics. Examples of suitable doped ceramics include doped silicon carbides. Examples of suitable metals include titanium, zirconium, tantalum and metals from the platinum group. Examples of suitable metal alloys include stainless steel, nickel-, cobalt-, chromium-, aluminium-titanium-zirconium-, hafnium-, niobium-, molybdenum-, tantalum-, tungsten-, tin-, gallium-, manganese- and iron-containing alloys, and super-alloys based on nickel, iron, cobalt, stainless steel, Timetal® and iron-manganese-aluminium based alloys. In composite materials, the electrically resistive material may optionally be embedded in, encapsulated or coated with an insulating material or vice-versa, depending on the kinetics of energy transfer and the external physicochemical properties required. Examples of suitable composite heating elements are disclosed in U.S. Pat. No. 5,498,855, the entire contents of which are incorporated herein by this reference thereto, WO-A-03/095688 and U.S. Pat. No. 5,514,630.
Alternatively, the at least one heating element may comprise an infra-red heating element, a photonic source such as, for example, those described in U.S. Pat. No. 5,934,289, the entire contents of which are incorporated herein by this reference thereto, or an inductive heating element, such as, for example, those described in U.S. Pat. No. 5,613,505, the entire contents of which are incorporated herein by this reference thereto.
The at least one heating element may take any suitable form. For example, the at least one heating element may take the form of a heating blade, such as those described in U.S. Pat. Nos. 5,388,594, 5,591,368, the entire contents of which are incorporated herein by this reference thereto, and U.S. Pat. No. 5,505,214, the entire contents of which are incorporated herein by this reference thereto. Alternatively, the at least one heating element may take the form of a casing or substrate having different electro-conductive portions, as described in EP-A-1 128 741, or an electrically resistive metallic tube, as described in WO-A-2007/066374. Where the aerosol-forming substrate is a liquid provided within a container, the container may incorporate a disposable heating element. Alternatively, one or more heating needles or rods that run through the centre of the aerosol-forming substrate, as described in KR-A-100636287 and JP-A-2006320286, may also be suitable. Alternatively, the at least one heating element may be a disk (end) heater or a combination of a disk heater with heating needles or rods. Other alternatives include a heating wire or filament, for example a Ni—Cr, platinum, tungsten or alloy wire, such as those described in EP-A-1 736 065, or a heating plate. Optionally, the heating element may be deposited in or on a rigid carrier material.
The at least one heating element may comprise a heat sink, or heat reservoir comprising a material capable of absorbing and storing heat and subsequently releasing the heat over time to the aerosol-forming substrate. Suitable heat sinks are described in EP-A-0 857 431, U.S. Patent Application Publication 2006/118128, and WO-A-2008/015441. The heat sink may be formed of any suitable material, such as a suitable metal or ceramic material. Preferably, the material has a high heat capacity (sensible heat storage material), or is a material capable of absorbing and subsequently releasing heat via a reversible process, such as a high temperature phase change. Suitable sensible heat storage materials include silica gel, alumina, carbon, glass mat, glass fiber, minerals, a metal or alloy such as aluminium, silver or lead, and a cellulose material such as paper. Other suitable materials which release heat via a reversible phase change include paraffin, sodium acetate, naphthalene, wax, polyethylene oxide, a metal, metal salt, a mixture of eutectic salts or an alloy.
The heat sink or heat reservoir may be arranged such that it is directly in contact with the aerosol-forming substrate and can transfer the stored heat directly to the substrate, as described in EP-A-0 857 431. Alternatively, the heat stored in the heat sink or heat reservoir may be transferred to the aerosol-forming substrate by means of a heat conductor, such as a metallic tube, as described in WO-A-2008/015441.
The at least one heating element may heat the aerosol-forming substrate by means of conduction. The heating element may be at least partially in contact with the substrate, or the carrier on which the substrate is deposited. Alternatively, the heat from the heating element may be conducted to the substrate by means of a heat conductive element.
Alternatively, the at least one heating element may transfer heat to the incoming ambient air that is drawn through the electrically heated aerosol generating system during use, which in turn heats the aerosol-forming substrate by convection. The ambient air may be heated before passing through the aerosol-forming substrate, as described in WO-A-2007/066374. Alternatively, if the aerosol-forming substrate is a liquid substrate, the ambient air may be first drawn through the substrate and then heated, as described in WO-A-2007/078273.
Preferably, the two or more supercapacitors of the power supply are arranged into two or more groups of supercapacitors, each group comprising one supercapacitor or two or more supercapacitors in series. Preferably during the charging mode, the two or more groups of supercapacitors are connected in parallel with each other and, during the heating mode, the two or more groups of supercapacitors are connected in series with each other. The two or more supercapacitors may comprise two, three, four, five, six or more supercapacitors, or any other appropriate number of supercapacitors. The two or more groups of supercapacitors may comprise two, three, four, five, six or more groups, or any other appropriate number of groups. The appropriate number of supercapacitors may be used in each group, according to the voltage required.
In one embodiment, the system further comprises a sensor to detect air flow indicative of a user taking a puff. The sensor may be an electro-mechanical device. Alternatively, the sensor may be any of: a mechanical device, an optical device, an opto-mechanical device and a micro electro mechanical systems (MEMS) based sensor. In that embodiment, preferably, the sensor is connected to the power supply and the system is arranged to switch the switches into the heating mode, when the sensor senses a user taking a puff. When a puff is detected, a high energy pulse is required at the heating element. The supercapacitors will discharge through the heating element at that time, thereby creating the required high current pulse.
In an alternative embodiment, the system further comprises a manually operable switch, for a user to initiate a puff.
Preferably, one or more of the switches are solid-state switches. Preferably, the one or more solid-state switch is a MOSFET (metal-oxide-semiconductor-field-effect-transistor) switch. Alternatively, the one or more solid-state switch may be any other type of FET (field-effect-transistor) switch. Particularly advantageous are those switches having very low resistance when closed, when compared with the resistance of the heating element.
Preferably, the system further comprises a housing for receiving the aerosol-forming substrate and designed to be grasped by a user.
In one preferred embodiment, the voltage source is a DC voltage source. In one embodiment, the voltage source is a lithium-ion battery. Alternatively, the voltage source may be a nickel-metal-hydride battery or a nickel-cadmium battery. In one preferred embodiment, the two or more supercapacitors are electrochemical double layer supercapacitors. In another preferred embodiment, the two or more supercapacitors are supercapacitors comprising nanoporous material. In an alternative embodiment, the two or more supercapacitors may include a combination of electrochemical double layer supercapacitors and supercapacitors comprising nanoporous material.
Features described in relation to the system of U.S. Pat. No. 5,388,594 or the system of WO-A-2004/043175 may be incorporated into the system of the invention.
According to a second aspect of the invention, there is provided a method of electrically heating an aerosol-forming substrate, the method comprising the steps of: providing at least one heating element for heating the substrate to form the aerosol; providing a power supply for supplying power to the at least one heating element, the power supply comprising a voltage source, two or more supercapacitors, and switches between the voltage source and the two or more supercapacitors; during a charging mode, switching the switches so that the two or more supercapacitors are connected for charging by the voltage source; and during a heating mode, switching the switches so that the supercapacitors are connected for discharging through the at least one heating element.
Preferably, the two or more supercapacitors are arranged into two or more groups of supercapacitors, each group comprising one supercapacitor or two or more supercapacitors in series. Preferably during the charging mode, the two or more groups of supercapacitors are connected in parallel with each other and, during the heating mode, the two or more groups of supercapacitors are connected in series with each other. The appropriate number of supercapacitors may be used in each group, according to the voltage required.
Preferably, one or more of the switches are solid-state switches. Preferably, the or each solid-state switch is a MOSFET (metal-oxide-semiconductor-field-effect-transistor) switch.
Features described in relation to one aspect of the invention may also be applicable to another aspect of the invention.
The invention will be further described, by way of example only, with reference to the accompanying drawings wherein like reference numerals are applied to like elements and wherein:
As already mentioned, known electrical smoking systems typically use battery packs as the power source. They power both the control electronics and the heater for heating the substrate. In the electrical smoking system described in WO-A-2004/043175, three lithium-ion (Li-ion) cells (approximately 3.7 V each) may be connected in series to provide an 11.1 V battery supply. This high voltage is required in order to provide the necessary power to the heater, particularly for the high power pulse required for each puff.
Although Li-ion cells do have a high energy density, they are not particularly efficient in high power applications, such as electrically heated aerosol generating systems, in which high current dissipation is needed in short bursts. The internal resistance of the three cells causes a significant voltage drop with high current loads. In addition, because the three cells are in series, some additional electronic circuitry is required, in order to ensure that the cells do not exceed the maximum rated voltage. In addition, the three Li-ion cells required means the electrically heated aerosol generating system may be larger than desired.
As already described, the invention provides a new power supply for an electrically heated aerosol generating system, which makes use of supercapacitors. Supercapacitors may also be referred to as ultracapacitors.
Supercapacitors are a particular type of capacitor having a large capacity in a small volume. They have an unusually high energy density when compared with standard capacitors. The most common type of supercapacitor is an electrochemical double layer supercapacitor (referred to as an “EDL supercapacitor”). Instead of using a dielectric as such, an EDL supercapacitor comprises a double layer of conducting material, with the two layers in contact. Although each layer is conducting, the interface between the two layers is insulating. Such an EDL supercapacitor typically provides approximately 2.5 V per cell. However, EDL supercapacitors do tend to have a relatively high internal resistance. On the other hand, a supercapacitor using a nanoporous material instead of the conventional insulating barrier (referred to as a “nanoporous supercapacitor”), for example those made by Nanotecture Limited, may have a voltage of approximately 1.4 V per cell, but have the potential for a small internal resistance. Supercapacitors have the same discharge characteristics as standard capacitors. However, nanoporous supercapacitors tend to maintain the voltage during much of the discharge phase.
During charging, a first switch S1 is closed and the supercapacitors 105 are charged. After charging, first S1 may be opened. When the high power pulse is required for the puff, a second switch S2 is closed and first switch S1 remains open. Then, the supercapacitors discharge through the resistor 109, thereby providing the required high current through resistor 109. If a series of high power pulses is required, second switch S2 may be repeatedly closed and opened, allowing a partial discharge for each pulse.
In
One of the advantages of the
During charging, connectors 207 and 209 are in electrical contact, first switch S1 is closed and the supercapacitors 211 are charged. When a puff is required, connectors 207 and 209 are disconnected. When a user draws a puff, second switch S2 is closed and first switch S1 is opened. Then, the supercapacitors discharge through the heating element.
In
During charging, switches S4 and S5 are open and switches S1, S2 and S3 are closed. The two supercapacitor stacks 305 and 307 are therefore in parallel. After charging, S1 and S2 may be opened. When the high power pulse is required for the puff, switch S3 is opened and switches S4 and S5 are closed, while switches S1 and S2 remain open. Then, the supercapacitor stacks 305 and 307 are in series, so discharge in series through the resistor 309, thereby providing the required high current through resistor 309. If a series of high power pulses is required, switch S5 may be repeatedly closed and opened, allowing a partial discharge for each pulse. The supercapacitors may be re-charged between puffs. Alternatively, the supercapacitors may be only partially discharged during each pulse, so that a number of puffs can be taken before re-charge is required.
Because the capacitor stacks 305 and 307 are charged in parallel, each capacitor stack only needs to be charged to around the same voltage as that of the Li-ion cell 303 i.e. approximately 3.7 V. However, when the stacks are connected in series for discharging, the voltage across the two stacks is twice that of the Li-ion cell i.e. approximately 7.4 V. So, the required high voltage can be provided for the high power pulse, without the need for voltage step-up circuitry. Each stack could be charged to less than the total cell voltage, if required, and the switches S1 and S2 used to stop the charging at the required voltage. Of course, further stacks could be provided if required, or individual supercapacitors, instead of stacks, could be used if suitable.
In the embodiment illustrated in
Between puffs, the electrically heated aerosol generating system can be charged. So, the system can be connected to a charger and connectors 407 and 415 are then in electrical contact. During that time, switches S1, S2 and S3 are closed and the supercapacitors 409 and 411 are charged in parallel. When a puff is required, the electrically heated aerosol generating system is removed from the charger, so that connectors 407 and 415 are disconnected. When the user draws air through the system, or at another prompt, controller 413 closes switches S4 and S5, allowing the supercapacitors 409 and 411 to discharge in series through heating element 421.
Thus, the arrangement of
The invention could, of course, be used for different voltages simply by varying one or more of: the total number of supercapacitors used, the arrangement of the supercapacitors (either individual or in stacks); the type of supercapacitors; and the supply voltage. In addition, the switches S1 and S2 could be used for voltage monitoring to ensure that the charge voltage does not exceed the maximum rating of the individual supercapacitors. S1 and S2 could also be used to charge the stacks to a lower voltage than the supply voltage.
As described, the invention provides an efficient power supply for an electrically heated aerosol generating system. Supercapacitors provide a number of advantages over batteries, such as their low internal resistance, their high efficiency, their high output power and their low heating levels and consequent safety.
Number | Date | Country | Kind |
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08250885 | Mar 2008 | EP | regional |
This application is a continuation of and claims priority under 35 U.S.C. § 120/121 to U.S. application Ser. No. 16/552,394, filed Aug. 27, 2019, which is a continuation of U.S. application Ser. No. 15/234,545, filed Aug. 11, 2016, which is a continuation of U.S. application Ser. No. 12/404,788, filed Mar. 16, 2009, which claims priority under to 35 U.S.C. § 119 to European patent application number 08250885.4, filed on Mar. 14, 2008, the entire contents of each of which are incorporated by reference herein.
Number | Name | Date | Kind |
---|---|---|---|
1771366 | Wyss et al. | Jul 1930 | A |
1968509 | Tiffany | Jul 1934 | A |
2057333 | Guibert | Oct 1936 | A |
2104266 | McCormick | Jan 1938 | A |
2406275 | Wejnarth | Aug 1946 | A |
2442004 | Hayward-Butt | May 1948 | A |
2971039 | Western | Feb 1961 | A |
2974669 | Ellis | Mar 1961 | A |
3200809 | Suchowolec | Aug 1965 | A |
3255760 | Selker | Jun 1966 | A |
3258015 | Ellis et al. | Jun 1966 | A |
3280819 | Weeks | Oct 1966 | A |
3280840 | Shirey | Oct 1966 | A |
3363633 | Weber | Jan 1968 | A |
3402723 | Hu | Sep 1968 | A |
3443049 | Hoagland | May 1969 | A |
3482580 | Hollabaugh | Dec 1969 | A |
3608560 | Briskin et al. | Sep 1971 | A |
3654538 | Gardberg | Apr 1972 | A |
3738374 | Bennett | Jun 1973 | A |
3774496 | Roach | Nov 1973 | A |
3804100 | Fariello | Apr 1974 | A |
3875476 | Crandall et al. | Apr 1975 | A |
3889690 | Guarnieri | Jun 1975 | A |
3895219 | Richerson et al. | Jul 1975 | A |
3976529 | Weichselbaum | Aug 1976 | A |
4016061 | Wasa et al. | Apr 1977 | A |
4063161 | Pardis | Dec 1977 | A |
4068672 | Guerra | Jan 1978 | A |
4077784 | Vayrynen | Mar 1978 | A |
4098725 | Yamamoto et al. | Jul 1978 | A |
4103144 | Pizzarello et al. | Jul 1978 | A |
4110260 | Yamamoto et al. | Aug 1978 | A |
4131119 | Blasutti | Dec 1978 | A |
4141369 | Burruss | Feb 1979 | A |
4164230 | Pearlman | Aug 1979 | A |
4193411 | Faris et al. | Mar 1980 | A |
4215708 | Bron | Aug 1980 | A |
4219032 | Tabatznik et al. | Aug 1980 | A |
4246913 | Ogden et al. | Jan 1981 | A |
4256945 | Carter et al. | Mar 1981 | A |
4259970 | Green, Jr. | Apr 1981 | A |
4303083 | Burruss, Jr. | Dec 1981 | A |
4319591 | Keith et al. | Mar 1982 | A |
4327186 | Murata et al. | Apr 1982 | A |
4355222 | Geithman et al. | Oct 1982 | A |
4393884 | Jacobs | Jul 1983 | A |
4405963 | Holtzman | Sep 1983 | A |
4407971 | Komatsu et al. | Oct 1983 | A |
4416840 | Lee et al. | Nov 1983 | A |
4431903 | Riccio | Feb 1984 | A |
4436100 | Green, Jr. | Mar 1984 | A |
4449039 | Fukazawa et al. | May 1984 | A |
4463247 | Lawrence et al. | Jul 1984 | A |
4467165 | Kiuchi et al. | Aug 1984 | A |
4475029 | Yoshida et al. | Oct 1984 | A |
4481404 | Thomas | Nov 1984 | A |
4488335 | Fox et al. | Dec 1984 | A |
4503319 | Moritoki et al. | Mar 1985 | A |
4505282 | Cogbill et al. | Mar 1985 | A |
4521659 | Buckley et al. | Jun 1985 | A |
4528121 | Matsushita et al. | Jul 1985 | A |
4549905 | Yamaguchi et al. | Oct 1985 | A |
4555358 | Matsushita et al. | Nov 1985 | A |
4562337 | Lawrence | Dec 1985 | A |
4570646 | Herron | Feb 1986 | A |
4580583 | Green, Jr. | Apr 1986 | A |
4621649 | Osterrath | Nov 1986 | A |
4623401 | Derbyshire et al. | Nov 1986 | A |
4634837 | Ito et al. | Jan 1987 | A |
4637407 | Bonanno et al. | Jan 1987 | A |
4659912 | Derbyshire | Apr 1987 | A |
4735217 | Gerth et al. | Apr 1988 | A |
4765859 | Heath et al. | Aug 1988 | A |
4771796 | Myer | Sep 1988 | A |
4776353 | Lilja et al. | Oct 1988 | A |
4789767 | Doljack | Dec 1988 | A |
4837421 | Luthy | Jun 1989 | A |
4846199 | Rose | Jul 1989 | A |
4848376 | Lilja et al. | Jul 1989 | A |
4874924 | Yamamoto et al. | Oct 1989 | A |
4877989 | Drews et al. | Oct 1989 | A |
4922901 | Brooks | May 1990 | A |
4933830 | Sato | Jun 1990 | A |
4945931 | Gori | Aug 1990 | A |
4947874 | Brooks | Aug 1990 | A |
4947875 | Brooks | Aug 1990 | A |
4966171 | Serrano et al. | Oct 1990 | A |
4981522 | Nichols et al. | Jan 1991 | A |
4991606 | Serrano et al. | Feb 1991 | A |
5016656 | McMurtrie | May 1991 | A |
5040552 | Schleich et al. | Aug 1991 | A |
5045237 | Washburn | Sep 1991 | A |
5060671 | Counts | Oct 1991 | A |
5075529 | Kudo | Dec 1991 | A |
5076296 | Nystrom et al. | Dec 1991 | A |
5085804 | Washburn | Feb 1992 | A |
5093894 | Deevi et al. | Mar 1992 | A |
5095921 | Losee | Mar 1992 | A |
5101086 | Dion et al. | Mar 1992 | A |
5139594 | Rabin | Aug 1992 | A |
5144962 | Counts | Sep 1992 | A |
5157242 | Hetherington et al. | Oct 1992 | A |
5179966 | Losee | Jan 1993 | A |
5188130 | Hajaligol et al. | Feb 1993 | A |
5224498 | Deevi et al. | Jul 1993 | A |
5228460 | Sprinkel et al. | Jul 1993 | A |
5235157 | Blackburn | Aug 1993 | A |
5236108 | House | Aug 1993 | A |
5249586 | Morgan | Oct 1993 | A |
5261424 | Sprinkel, Jr. | Nov 1993 | A |
5268553 | Shimoji | Dec 1993 | A |
5269327 | Counts | Dec 1993 | A |
5274214 | Blackburn | Dec 1993 | A |
5285050 | Blackburn | Feb 1994 | A |
5300758 | Rounbehler | Apr 1994 | A |
5322075 | Deevi | Jun 1994 | A |
5345161 | Zieve | Sep 1994 | A |
5353813 | Deevi et al. | Oct 1994 | A |
5369723 | Counts | Nov 1994 | A |
5372148 | McCafferty et al. | Dec 1994 | A |
5388594 | Counts | Feb 1995 | A |
5396911 | Casey, III et al. | Mar 1995 | A |
5408574 | Deevi et al. | Apr 1995 | A |
5444310 | Kataoka | Aug 1995 | A |
5479948 | Counts | Jan 1996 | A |
5498855 | Deevi | Mar 1996 | A |
5499636 | Baggett, Jr. et al. | Mar 1996 | A |
5505214 | Collins | Apr 1996 | A |
5514630 | Willkens et al. | May 1996 | A |
5519940 | Deevi et al. | May 1996 | A |
5530225 | Hajaligol | Jun 1996 | A |
5568035 | Kato | Oct 1996 | A |
5591368 | Fleischhauer et al. | Jan 1997 | A |
5613504 | Collins | Mar 1997 | A |
5613505 | Campbell | Mar 1997 | A |
5665262 | Hajaligol | Sep 1997 | A |
5666977 | Higgins | Sep 1997 | A |
5666978 | Counts | Sep 1997 | A |
5708258 | Counts | Jan 1998 | A |
5730158 | Collins | Mar 1998 | A |
5750964 | Counts | May 1998 | A |
5761058 | Kanda | Jun 1998 | A |
5831788 | Hofland | Nov 1998 | A |
5838519 | Takizawa et al. | Nov 1998 | A |
5865185 | Collins | Feb 1999 | A |
5878752 | Adams | Mar 1999 | A |
5934289 | Watkins | Aug 1999 | A |
5954979 | Counts | Sep 1999 | A |
5969963 | Ohnishi | Oct 1999 | A |
6040560 | Fleischhauer | Mar 2000 | A |
6054684 | Pas et al. | Apr 2000 | A |
6054694 | Paustian | Apr 2000 | A |
6140799 | Thomasson | Oct 2000 | A |
6211498 | Patridge | Apr 2001 | B1 |
6239579 | Dunn | May 2001 | B1 |
6250301 | Pate | Jun 2001 | B1 |
6394819 | Mosser, III et al. | May 2002 | B1 |
6396665 | Asano | May 2002 | B1 |
6426282 | Saigal et al. | Jul 2002 | B1 |
6483669 | Krinke | Nov 2002 | B1 |
6536442 | St. Charles | Mar 2003 | B2 |
6568390 | Nichols | May 2003 | B2 |
6576148 | Shum et al. | Jun 2003 | B1 |
6615840 | Fournier | Sep 2003 | B1 |
6687103 | Pannwitz | Feb 2004 | B2 |
6688313 | Wrenn | Feb 2004 | B2 |
6694975 | Schuster | Feb 2004 | B2 |
6717059 | Shintani et al. | Apr 2004 | B2 |
6772756 | Shayan | Aug 2004 | B2 |
6803545 | Blake | Oct 2004 | B2 |
6883516 | Hindle | Apr 2005 | B2 |
6944936 | Krinke | Sep 2005 | B2 |
7084864 | Wood | Aug 2006 | B1 |
7088914 | Whittle et al. | Aug 2006 | B2 |
7117867 | Cox | Oct 2006 | B2 |
7167776 | Maharajh | Jan 2007 | B2 |
7168154 | Tsuchiya et al. | Jan 2007 | B2 |
7193390 | Nagai | Mar 2007 | B2 |
7286325 | Hernandez et al. | Oct 2007 | B2 |
7293565 | Griffin | Nov 2007 | B2 |
7297045 | Pierson | Nov 2007 | B2 |
7301250 | Cassel | Nov 2007 | B2 |
7331500 | Martin et al. | Feb 2008 | B2 |
7344060 | Koh | Mar 2008 | B2 |
7352535 | Arya et al. | Apr 2008 | B2 |
7365523 | Malherbe et al. | Apr 2008 | B2 |
7401725 | Ho et al. | Jul 2008 | B2 |
7518830 | Panchal et al. | Apr 2009 | B1 |
7535124 | Miyazaki | May 2009 | B2 |
7535196 | Nagasawa | May 2009 | B2 |
7550876 | Cassel | Jun 2009 | B2 |
7554221 | Cassel | Jun 2009 | B2 |
7629558 | Petrenko | Dec 2009 | B2 |
7745025 | Leach | Jun 2010 | B2 |
7897055 | Tu et al. | Mar 2011 | B2 |
8039987 | Sawada | Oct 2011 | B2 |
8072709 | Rothenberg et al. | Dec 2011 | B2 |
8091558 | Martzel | Jan 2012 | B2 |
8173909 | Cayaban et al. | May 2012 | B2 |
8333197 | Cross | Dec 2012 | B2 |
8365742 | Hon | Feb 2013 | B2 |
8384351 | Monden | Feb 2013 | B2 |
9128161 | Mizoguchi | Sep 2015 | B2 |
20020005207 | Wrenn | Jan 2002 | A1 |
20030154991 | Fournier | Aug 2003 | A1 |
20030184258 | VonderHaar | Oct 2003 | A1 |
20030189419 | Maki | Oct 2003 | A1 |
20030226837 | Blake | Dec 2003 | A1 |
20040020500 | Wrenn | Feb 2004 | A1 |
20040037007 | Rugg et al. | Feb 2004 | A1 |
20060087011 | Kanagawa et al. | Apr 2006 | A1 |
20060103984 | Shin et al. | May 2006 | A1 |
20060118128 | Hoffmann et al. | Jun 2006 | A1 |
20060118218 | Burns et al. | Jun 2006 | A1 |
20060158784 | Arya et al. | Jul 2006 | A1 |
20070212103 | Kikuchi | Sep 2007 | A1 |
20070273327 | Daniel | Nov 2007 | A1 |
20070274736 | Sato | Nov 2007 | A1 |
20080003166 | Maletin | Jan 2008 | A1 |
20080088978 | Ho et al. | Apr 2008 | A1 |
20080092912 | Robinson | Apr 2008 | A1 |
20080099236 | Cayaban et al. | May 2008 | A1 |
20080186623 | Cayaban et al. | Aug 2008 | A1 |
20080203970 | Shen | Aug 2008 | A1 |
20080253028 | Chang et al. | Oct 2008 | A1 |
20080277142 | Kanagawa et al. | Nov 2008 | A1 |
20080315829 | Jones | Dec 2008 | A1 |
20090085553 | Kumar | Apr 2009 | A1 |
20090152954 | Le et al. | Jun 2009 | A1 |
20090179613 | Masho | Jul 2009 | A1 |
20100155388 | Menassa | Jun 2010 | A1 |
20110119911 | Kanagawa et al. | May 2011 | A1 |
20130319435 | Flick | Dec 2013 | A1 |
20150208731 | Malamud et al. | Jul 2015 | A1 |
20150237916 | Farine | Aug 2015 | A1 |
20160106936 | Kimmel | Apr 2016 | A1 |
20170231276 | Mironov et al. | Aug 2017 | A1 |
20170231282 | Bowen et al. | Aug 2017 | A1 |
Number | Date | Country |
---|---|---|
1202378 | Mar 1986 | CA |
87104459 | Feb 1988 | CN |
1040914 | Apr 1990 | CN |
1040914 | Apr 1990 | CN |
1060598 | Apr 1992 | CN |
2129660 | Apr 1993 | CN |
2911565 | Sep 1980 | DE |
3028068 | Apr 1981 | DE |
3038069 | Apr 1982 | DE |
243784 | Nov 1987 | DE |
3640917 | Aug 1988 | DE |
3711234 | Oct 1988 | DE |
3735704 | May 1989 | DE |
301092 | Jan 1992 | DE |
301092 | Oct 1992 | DE |
0893071 | Jul 1908 | EP |
0 239 892 | Oct 1987 | EP |
0277519 | Aug 1988 | EP |
0295122 | Dec 1988 | EP |
0358002 | Mar 1990 | EP |
0358114 | Mar 1990 | EP |
0378997 | Jul 1990 | EP |
0430566 | Jun 1991 | EP |
438862 | Jul 1991 | EP |
0449790 | Oct 1991 | EP |
0488488 | Jun 1992 | EP |
0640297 | Mar 1995 | EP |
0857431 | Aug 1998 | EP |
1618803 | Jan 2006 | EP |
1736062 | Dec 2006 | EP |
1736065 | Dec 2006 | EP |
1750788 | Feb 2007 | EP |
02398922 | Dec 2011 | EP |
2132539 | Jul 1984 | GB |
2148079 | May 1985 | GB |
2148676 | May 1985 | GB |
61-68061 | Apr 1986 | JP |
2098301 | Apr 1990 | JP |
H02124081 | May 1990 | JP |
2-263773 | Oct 1990 | JP |
H03232481 | Oct 1991 | JP |
H06315366 | Nov 1994 | JP |
H08168182 | Jun 1996 | JP |
H10285797 | Oct 1998 | JP |
H11150875 | Jun 1999 | JP |
2001-309642 | Nov 2001 | JP |
2006505281 | Feb 2006 | JP |
2006-320286 | Nov 2006 | JP |
45-28471 | Aug 2010 | JP |
100636287 | Oct 2006 | KR |
2085092 | Jul 1997 | RU |
2005115957 | Jan 2006 | RU |
2306654 | Sep 2007 | RU |
2 336 002 | Oct 2008 | RU |
621141 | Aug 1978 | SU |
864597 | Sep 1981 | SU |
WO-8602528 | May 1986 | WO |
WO-9406313 | Mar 1994 | WO |
WO-9406314 | Mar 1994 | WO |
WO-9527411 | Oct 1995 | WO |
WO-2004043175 | May 2004 | WO |
WO-2005120614 | Dec 2005 | WO |
WO-2007024130 | Mar 2007 | WO |
WO-2007066374 | Jun 2007 | WO |
WO-2007077167 | Jul 2007 | WO |
WO-2007078273 | Jul 2007 | WO |
WO-2007131449 | Nov 2007 | WO |
WO-2007131450 | Nov 2007 | WO |
WO-2008015441 | Feb 2008 | WO |
Entry |
---|
Japanese Office Action dated Jul. 27, 2015 for corresponding Application No. P2014-114638. |
“Joining of Ceramics” by R.E. Loehman et al., published in Ceramic Bulletin, 67(2):375-380 (1988). |
“Oxidation Behavior of Silver - and Copper-Based Brazing Filler Metals for Silicon Nitride/Metal Joints” by R.R. Kapoor et al., published in J. Am. Ceram. Soc.,, 72(3):448-454 (1989). |
“Brazing Ceramic Oxides to Metals at Low Temperatures” by J.P. Hammond et al., published in Welding Research Supplement, 227-232-s (1988). |
Brazing of Titanium-Vapor-Coated Silicon Nitride by M.L. Santelia, published in Advanced Ceramic Materials, 3(5): 457-465 (1988). |
“Microstructure of Alumina brazed with a Sliver-Copper-Titanium Alloy” by M.L. Santelia et al., published in J. Am. Ceram. Soc. 73(6): 1785-1787 (1990). |
Fen et al., “Cyclic oxidation of Haynes 230 alloy”, Chapman & Hall, pp. 1514-1520 (1992). |
Kutner, “Thermal spray by design”, Reprint from Advanced Materials & Processes Incorporating Metal Progress, Oct. (1988). |
“Characterizing Thermal Spray Coatings”, Article based on presentations made at the Fourth National Thermal Spray Conference, May 4-10, (1991) and appearing in Advanced Materials and Processes, May 1992, pp. 23-27. |
Howes, Jr., “Computerized Plasma Control for Applying Medical-Quality Coatings”, Industrial Heating, pp. 22-25, Aug. 1993. |
V. Sikka, “Processing of Intermetallic Aluminides”, Intermetallic Metallurgy and Processing Intermetallic compounds, ed. Stoloff et al., Van Mestrand Reinhold, N.Y., 1944. |
Brezovich, “Temperature Distributions in Tumor Models Heater.” Mar./Apr. 1984, pp. 145-152. |
Gorbachev, “Compensation of Varying Load in a Thyristor.” v. 56, No. 3, pp. 27-28. |
Katagiri, “Rapid Reinforcement for Fusion Mass Spliced Fibers Using Low-Power.” Jun. 1, 1985, pp. 1708-1712. |
Matthes, “Thyristorised Converters for Inductive Heating for Hot Forging.” 1975, pp. 80-86. |
Stauffer, “Observations on the Use of Ferromagnetic.” 1984, pp. 76-90. |
Reinshagen and Sikka, “Thermal Spraying of Selected Aluminides”, Proceedings of the Fourth National Thermal Spray Conference, Pittsburgh, PP USA, pp. 307-313 (May 4-10, 1991). |
Duarte, “A Design Procedure for a Self Oscillating Hybrid Inverter.” 1991, pp. 350-355. |
Xu, “The High-Frequency Inductive Electric Heater and Its Application.” Apr. 1992, pp. 39-42. |
English translation of Taiwan Office Action dated Oct. 27, 2014. |
English translation of the Taiwan Notification for the Opinion of Examination dated Mar. 11, 2014. |
Russian Office Action and English translation thereof dated Nov. 28, 2013. |
Russian Search Report dated May 26, 2016. |
Russian Office Action and English translation thereof dated Mar. 4, 2013. |
International Search Report and Written Opinion dated Jun. 2, 2009. |
Korean Office Action and English translation thereof dated May 27, 2016. |
Korean Office Action and English translation thereof dated Oct. 19, 2015. |
Japanese Office Action and English translation thereof dated Feb. 3, 2016. |
Japanese Office Action and English translation thereof dated Jul. 15, 2015. |
Japanese Office Action and English translation thereof dated Feb. 3, 2014. |
Japanese Office Action and English translation thereof dated Jun. 26, 2013. |
Indian Office Action dated Feb. 11, 2017. |
Patent Office of the Cooperation Council for the Arab States of the Gulf Examination Report dated Sep. 15, 2013. |
Patent Office of the Cooperation Council for the Arab States of the Gulf Examination Report dated Dec. 26, 2013. |
Extended European Search Report dated Aug. 18, 2008. |
Chinese Office Action and English translation thereof dated Jun. 21, 2011. |
Canadian Office Action dated Mar. 30, 2015. |
Australian Office Action dated Dec. 14, 2012. |
Taiwanese Office Action dated Mar. 6, 2014,issued by the Taiwanese Patent Office in corresponding Taiwanese Patent Application No. 098107959 (Englishlanguage translation of Office Action) (9 pages). |
European Search Report for Application No. 08250885.4-2313, dated Aug. 18, 2008. |
“Excerpt from ‘NASA Tech Briefs’,” Jul./Aug. 1988, p. 31. |
“PTC Thermistors” Keystone Carbon Company product literature. |
“Oxidation Behavior of Silver- and Cooper-Based Brazing Filler Metals for Silicon Nitride/Metal Joints” by R.R. Kapoor et al., published in J. Am. Ceram. Soc.,, 72(3):448-454 (1989). |
Brazing of Titanium-Vapor-Coated Silicon Nitride by M. L. Santella, published in Advanced Ceramic Materials, 3(5):457-465 (1988). |
“Microstructure of Alumina brazed with a Sliver—Copper—Titanium Alloy” by M.L. Santella et al., published in J. Am. Ceram. Soc. 73(6): 1785-1787 (1990). |
“High Temperature Structural Silicides” by A. K. Vasudevan et al., Elsevier Science Publishers B.V. (1992). |
John A. Dean, Lange's handbook of Chemistry, 12th Edition, 1978 pp. 4-16, 4-123. |
V. Sikka, “Processing of Intermetallic Aluminides”, Intermetallic Metallurgy and Processing Intermetallic compounds, ed. Stoloff et al., Van Mestrand Reinhold, N.Y., 1994. |
Gorbachev, “Compensation of Varying Load in a Thyristor.” v. 56, No. 3, pp. 27-28, 1985. |
Mioduszewski, “Inductive Heating of Spent Granular Activated Carbon.” Mar. 1982, pp. 1096. |
Staufer, “Observations on the Use of Ferromagnetic.” 1984, pp. 76-90. |
Indian Notice of Hearing dated Feb. 10, 2020. |
Number | Date | Country | |
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20220125119 A1 | Apr 2022 | US |
Number | Date | Country | |
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Parent | 16552394 | Aug 2019 | US |
Child | 17568364 | US | |
Parent | 15234545 | Aug 2016 | US |
Child | 16552394 | US | |
Parent | 12404788 | Mar 2009 | US |
Child | 15234545 | US |