Electronic cigarette

Information

  • Patent Grant
  • 8511318
  • Patent Number
    8,511,318
  • Date Filed
    Friday, April 15, 2011
    13 years ago
  • Date Issued
    Tuesday, August 20, 2013
    11 years ago
Abstract
An electronic cigarette comprises nicotine without harmful tar. The cigarette includes a shell, a cell, nicotine solution, control circuit, and an electro-thermal vaporization nozzle installed in the air suction end of the shell. The advantages of the present invention are smoking without tar, reducing the risk of cancer, the user still gets a smoking experience, the cigarette is not lit, and there is no fire danger.
Description
TECHNICAL FIELD

The invention relates to an electronic cigarette which contains only nicotine without tar.


BACKGROUND ART

Despite it is commonly known that “smoking is harmful to your health”, the number of smokers worldwide is up to 1 billion, and the number is increasing every year. According to the statistical data from the World Health Organization, about 4.9 million people die of diseases caused by smoking each year. Although smoking may cause serious respiratory diseases and cancer, it remains extremely difficult for smokers to quit smoking completely.


The active ingredient in a cigarette is nicotine. During smoking, nicotine, along with a lot of tar aerosol droplets produced in the burning cigarette, enters smoker's alveolus and is rapidly absorbed. After being absorbed into the blood of a smoker, nicotine then produces an effect on the receptors of the smoker's central nervous system, which makes him/her relax and enjoy an inebriety similar to that produced by an exhilarant.


Nicotine is a kind of alkaloid with low molecular weight. A small dose of nicotine is essentially harmless to human body and its half-life in blood is quite short. The major harmful substance in tobacco is tar, and the tar in tobacco is composed of thousands of ingredients, tens of which are cancerogenic substances. At present, it has been proven that passive smoking can be more harmful on non-smokers.


Some cigarette substitutes that contain only nicotine without tar have been proposed, and many of them, such as “nicotine patch”, “nicotine mouthwash”, “nicotine chewing gum”, “nicotine drink” etc., are made of pure nicotine. Although these cigarette substitutes are free from tar, their major disadvantage is that an effective peak concentration cannot be reached in the blood of a smoker due to slow absorption of nicotine. In addition, these cigarette substitutes cannot satisfy habitual smoking actions of a smoker, for example, inhaling action or sucking action, and thus are not likely to be widely accepted as effective substitutes for quitting smoking.


SUMMARY OF THE INVENTION

An objective of the present invention is to provide an electronic cigarette that overcomes the above-mentioned disadvantages and provides a cigarette that looks like a normal cigarette. The electronic cigarette, which is an integrated assembly resembling a cigarette holder, includes a shell, a cell, nicotine solution, a control circuit, a high temperature vaporization nozzle and accessories. An electro-thermal vaporization nozzle is arranged within an air suction end of the shell. The control circuit provides starting current to the electric heater within the vaporization nozzle. Under the high temperature in the vaporization nozzle, the liquid is rapidly vaporized to form a puff of smoke. The cell which provides power to the electric heater via the control circuit can be a disposable battery or a rechargeable battery.


The advantages of the present invention include smoking without tar, significantly reducing the cancerogenic risk. Furthermore, users still feel as if they are smoking, and the cigarette has no need to be lit and has no fire risk.





DESCRIPTION OF THE DRAWINGS


FIG. 1 is a structural diagram of the device in the first example in accordance with the present invention.



FIG. 2 is a block diagram of the circuit structure.



FIG. 3 is a schematic diagram of the structure of the high temperature vaporization nozzle and the electric-thermal element.



FIG. 4 is a schematic diagram of the valve made of memory alloy.



FIG. 5 is a schematic diagram of the peristaltic pump made of memory alloy.



FIG. 6 is a schematic diagram of the peristaltic pump.



FIG. 7 is a structural diagram of the electronic cigarette in a second example.



FIG. 8 is a structural diagram of the electronic cigarette in a third example.



FIG. 9 is a structural diagram of the electronic cigarette in a fourth example.



FIG. 10 is a structural diagram of the metering cavity in the fourth example.





DETAILED DESCRIPTION OF THE INVENTION

The high frequency generator of a control circuit board 8 is composed of a capacitance connecting three point type oscillator, an inductance connecting three point type oscillator, or a transformer-type oscillating circuit, which has the frequency of 35 KHz to 3.3 MHz. The circuit includes a automatic frequency fine-adjusting circuit resonating with a piezoelectric element 20. A nicotine solution storage container 13 is made of silicon rubber, alternatively, other polymers that can be protected against the penetration of nicotine can be used. A one-way valve for liquid injection 12 is sealed by a ball or cone member under the pressure of a spring. An airflow sensor 18 can be comprised of an array of integrated thermal sensitive resistors in the shape of film. The electrode of a resistance or capacitance sensor 19, which is sensitive to touches of human body, is composed of an upper metal film and a lower metal film and located at the end of the cigarette holder. The changes of the resistance or capacitance parameters due to human touch are inputted into the control circuit to perform the operation of a body sensitive switch.


The electric controlled pump 11, driven by a motor or a linear motor, drives a retarder that has a large speed ratio, via a shaft coupling, to revolve at a low speed but with large torque. The pump can be a peristaltic pump, a plunger pump, an eccentric pump or a screw pump. Alternatively, the liquid pump can use piezoelectric pump, a super magnetostrictive pump, a thermal expansion drive pump, a thermal contraction drive pump, a thermal bubble pump. The electric control pump or valve may be thermal contractible.


The valve is formed on a silicon rubber tube by nickel-titanium memory alloy or copper-based memory alloy under the force of electro-thermal contractions.


The electro-thermal vaporization nozzle 17 is made of high-temperature resistant materials with low thermal conductivity. The nozzle 17 is a tubule, with the internal diameter of a 0.05-2 mm and the effective working length of 3-20 mm. An electric heating element is provided within the nozzle, and the shapes of the electric heating element and the cavity of the nozzle are designed to facilitate vaporization and ejection of liquid. The vaporization nozzle 17 may be made of conventional ceramics, or be made of aluminum silicate ceramics, titanium oxide, zirconium dioxide, yttrium oxide ceramics, molten silicon, silicon dioxide, molten aluminum oxide. The vaporization nozzle 17 may be in the shape of straight tube or spiral, and may also be made from polytetrafluoethylene, carbon fiber, glass fiber or other materials with similar properties.


The electric heating element arranged within the vaporization nozzle 17 may be made of wires of nickel chromium alloy, iron chromium aluminum alloy, stainless steel, gold, platinum, tungsten molybdenum alloy, etc., and may be in the shape of straight line, single spiral, double spiral, cluster or spiral cluster wherein the straight line and cluster are preferred. The heating function of the electric heating element may be achieved by applying a heating coating on the inner wall of the tube, and the coating may be made from electro-thermal ceramic materials, semiconductor materials, corrosion-resistant metal films, such as gold, nickel, chromium, platinum and molybdenum. The method for coating can include a coat sintering process, a chemical deposition sintering process and an ion spraying process. The materials mentioned above can be provided within the inner wall of vaporization nozzle in any of the processes mentioned above.


The nozzle with high resistance, made of metal, can have no electric heating element being attached, and can be directly applied with heating current. Alternatively, the materials mentioned above can be arranged outside of the nozzle in any of the ways mentioned above, and an appropriate response time can also be achieved in the power supply mode of short-term preheating. Nicotine solution used in the atomization process comprises nicotine, propylene glycol, glycerol, organic acids, anti-oxidation agents, essence, water and alcohol, in which the nicotine content is 0.1%-6%, propylene glycol content 80%-90%, organic acids 0.2%-20%, the rest is glycerol, essence, anti-oxidation agents, water and alcohol.


Example 1
The Structural Diagram of the Device Shown in FIG. 1

When a smoker puts the cigarette holder on his/her mouth, the resistance sensor 19 activates the control circuit board 8. The control circuit board 8 then outputs two driving voltages respectively, one used to supply power to the electric heating element of the vaporization nozzle 17 and the other used to activate the micro pump 11 (shown in FIG. 6). The stored solution is then pumped to the nozzle 17 by the solution storage container 13. On the electric heating element of the nozzle 17, the nicotine solution is then vaporized into high temperature vapor which is subsequently ejected from the opening end. In the air, the vapor ejected out is then expanded and condensed into micro aerosol droplets.


The effect of the ultrasonic piezoelectric element 20 mounting on the nozzle is that, firstly, the large liquid droplets in the unstable thermal airflow under high pressure will be in sufficient contact with the electric heating element, and thereby be vaporized.


Secondly, the liquid droplets in the nozzle 17 are directly fragmented and atomized.


Thirdly, possible bumping when the liquid is above a boiling point will be avoided. The effect of integrated atomization will allow aerosol droplets with diameters of 0.2-3 um to enter into the alveolus easily and be absorbed. The airflow sensor 18 is sensitive to the diluted air which enters through air inlet 16 when a “suction” action take places. The sensed signals are transmitted to the control circuit, and the control circuit then stop to supply power to the micro pump and the electric heater after a certain time delay.


The relay relationship between the time delays of the micro pump and electric heater is as follows: after the electric heater is activated, the micro pump is activated after a time delay of 0.1-0.5 seconds; the electric heater is then turned off after a time delay of 0.2-0.5 seconds when the control circuit of the micro pump is turned off, so as to guarantee a complete vaporization of the liquid after quantitative liquid injection without any leftovers.


The nicotine solution container may be designed to be different sizes as required. The nicotine solution may be refilled once a day, or once a couple of days. The liquid crystal display screen 10 can show operating state parameters, such as cell capacity, smoking times per day, average using cycle and warnings for over smoking. A red LED 3 blinks for each smoking action, and a sawtooth wave signal that lasts for 1.2 seconds is given by the control circuit for blinking signals, which provides a gradual change of luminance to imitate the ignition and combustion process of a conventional cigarette. The charger 1, charging jack 2, spring 4, shell 6, threads 7, switch 9, passage tube 14 and baffle plate 15 are shown in FIG. 1. The silicon gel tube 601, pinch roller 602, worm 603 and motor 604 are shown in FIG. 6.


The control circuit and the ultrasonic micro pump may be integrated on one single chip by using a Micro Electronic Mechanical System (MEMS).


Example 2
The Simplified Electronic Cigarette


FIG. 7 is a structural diagram of the simplified device in which the ultrasonic atomization high frequency generator and the piezoelectric ceramic element 20 are omitted. To achieve a desirable atomization effect, tiny heating wires are used in combination with the nozzle (see FIG. 3), so that the maximum diameters of one or more vaporization cavities formed between the heating wires and the inner wall of the nozzle range from 0.02 mm to 0.6 mm. The function of the airflow sensor 18 omitted is replaced by the manner that the initial signal of the resistance or capacitance sensor 119 is delayed a certain time via the control circuit and acts as the ending signal. The electronic cigarette is configured as follows: the vaporization nozzle 117, the thermal drive pump 111 (see FIG. 5) made of nickel titanium memory alloy wire, and the liquid storage container 113 connected to the thermal drive pump constitute a liquid transmission system. Two outputs of the control circuit board 108 are respectively connected to the electric heater and the pump or valve. A body sensitive resistance sensor 119 is connected to the input of the control circuit. The cell 105 and red LED 103 are provided in the front end within the shell, and resemble a cigarette holder, a pipe or a pen.


The thermal drive pump is an electro-thermal shrinkable peristaltic pump, made of wires of nickel titanium memory alloy or copper based alloy, with gel tube which is pressed at three points respectively during the process of electro-thermal contraction to form a pressure cavity for pumping out liquid. The change of volume of the cavity within the thermal drive pump determines the quantity of the solution to be atomized each time. Upon contacting with user's mouth, the resistance sensor 119 activates the control circuit 108, the control circuit 108 then provides operating current to the thermal drive pump and the electric heater, and the output of the control circuit is turned off after the delay of 2 seconds for reactivation at the next smoking action. Alternatively, a thermal expansion drive pump or a thermal bubble pump is also applicable. The thermal expansion drive pump forms a pressure cavity for pumping out liquid by allowing a micro hydrogen container with an embedded electric heating element to block the liquid inlet and open the liquid outlet at the time of thermal expansion. The charging jack 102, LED 103, cell 105, switch 109, liquid-refilling valve 112 and air hole 116 are shown in FIG. 7.


The electrode lead wire 401, heating wire 402, thread 403, base 404 and nozzle 405 are shown in FIG. 3. The support 501, extension spring 502, pumping-out pressure plate 503, silicon gel tube 504, stop pressure plate 505, supporting spring 506, memory alloy wire 507, electrode A 508, electrode B 509 and electrode 510 are shown in FIG. 5.


Example 3
The Electronic Cigarette Made of a Ni—Ti Memory Alloy


FIG. 8 is a structural diagram of the electronic cigarette. The electrothermal vaporization nozzle 217 of the device is connected to the liquid storage container 213 via a pneumatic valve 220. The super elastic member 210 is connected to the pressure plate 211 which is connected to the liquid storage container 213. The pneumatic valve is composed of a pneumatic film 214, a magnetic steel ring 218, a steel valve needle 220 and a reset spring 221. The super elastic member 210, which is made of Ni—Ti memory alloy, is used to apply a constant pressure on the liquid storage container via the pressure plate 211. When the pneumatic valve opens, the liquid with nicotine enters the vaporization nozzle from the liquid storage container via the pneumatic valve and is vaporized and condensed subsequently to form a puff of smoke at high temperature. Upon contacting with user's mouth, the resistance sensor activates the control circuit to supply power to the electric heater. When the user performs suction action, the Nd—Fe—B permanent magnetic alloy ring attracts the valve needle to move in response to the pneumatic film being subjected to negative pressure. Liquid is supplied when the valve needle opens, and after the pneumatic valve is reset, power supply to the electric heater is turned off after the delay of 0.5 seconds by the control circuit. The LED 203, charging jack 202, cell 205, control circuit 208, switch 209, refilling valve 212, baffle plate 215, air hole 216 and resistance sensor 219 are shown in FIG. 8


Example 4
The Electronic Spray Cigarette Utilizing the Pressure of a container

In the device (see FIG. 9), the electro-thermal vaporization nozzle 317, the electronic valve 311 connected with the metering cavity 320, and the liquid storage container 313 form a liquid transmission passage. A gas vessel filled with high-pressure nitrogen is arranged around the periphery of the liquid storage container to exert pressure thereon to facilitate the transmission of the liquid. When a control signal is applied to the electronic valve, the electronic valve is activated, and the solution with nicotine enters the metering cavity from the liquid storage container under pressure. The solution pushes a piston so as to allow a constant volume of liquid at the other side of the piston to enter the vaporization nozzle via the electronic valve. The metering cavity provided at the valve is a cylinder having a liquid inlet and a liquid outlet. Located within the cylinder are the piston micro holes and the reset spring connected onto the piston. The control circuit which is activated by the resistance sensor 319 controls the states of the electronic valve and the electric heater respectively. Due to slow infiltration of the micro hole of the piston in the metering cavity and the force of the reset spring, the piston returns to its original position within 5-8 seconds after each atomization process. The cell 305, pressure vessel 321, pressure chamber 322, seal threaded-opening 323, control circuit board 308 and air hole 316 are showed in FIG. 9.


The silicon gel tube 406, pressure-stopping plate 407, memory alloy wires 408, support 409, electrode lead wire 410 and pressure spring 411 are shown in FIG. 4. The inlet 701, piston 702, micro hole of the piston 703, metering cavity 704, reset spring 705 and outlet 706 are shown in FIG. 10.


The recipes of nicotine solution used:


1. 6% nicotine, 85% propylene glycol, 2% glycerol, 2% essence, 1% organic acid and 1% anti-oxidation agent.


2. 4% nicotine, 80% propylene glycol, 5% glycerol, 1% butyl valerate, 1% isopentyl hexonate, 0.6% lauryl laurate, 0.4% benzyl benzoate, 0.5% methyl octynicate, 0.2% ethyl heptylate, 0.3% hexyl hexanoate, 2% geranyl butyrate, 0.5% menthol, 0.5% citric acid and 4% tobacco essence;


3. 2% nicotine, 90% propylene glycol, 2.5% citric acid, 1% essence and 4.5% tobacco essence;


4. 0.1% nicotine, 80% propylene glycol, 5% glycerol, 8% alcohol, 2.9% water, 1% essence, 1% tobacco essence and 2% organic acid.

Claims
  • 1. An electronic cigarette comprising: a housing;a battery, a control circuit, and a sensor in the housing, with the battery and the sensor electrically connected to the control circuit;an air inlet for allowing air to enter into the housing, and a mouthpiece on the housing;a liquid storage in the housing;a vaporization nozzle comprising a coil heating element having a longitudinal axis substantially parallel to a longitudinal axis of the nozzle; andwherein the electric heating element is arranged on the outside of the vaporization nozzle.
  • 2. The electronic cigarette of claim 1 wherein the tubular nozzle comprises a fiber material.
  • 3. The electronic cigarette of claim 1 wherein the nozzle has a diameter of approximately 0.05-2 mm and a length of approximately 3-20 mm.
  • 4. The electronic cigarette of claim 1 wherein in the vaporization nozzle further comprises a base.
  • 5. The electronic cigarette of claim 4 further comprising screw threads on the base.
  • 6. The electronic cigarette of claim 1 wherein the control circuit has an output connected to the heating element, and an input connected to the sensor.
  • 7. The electronic cigarette of claim 1 further comprising a passage tube connecting the solution storage to the tubular nozzle.
  • 8. The electronic cigarette of claim 1 with the vaporization nozzle having a coating a ceramic material, a semiconductor material, or a corrosion-resistant metal.
  • 9. The electronic cigarette of claim 1 wherein the liquid storage contains nicotine solution.
  • 10. An electronic cigarette comprising: a housing;a battery and a sensor electrically connected to a control circuit in the housing;an air inlet and an outlet in the housing and a mouthpiece on or in the housing;a liquid storage element in the housing;a liquid vaporizer comprising an electric heating element supported by a tubular nozzle, wherein the longitudinal axis of the electric heating element is parallel to the longitudinal axis of the nozzle; andwherein the electric heating element is arranged on the outside of the vaporization nozzle.
  • 11. The electronic cigarette of claim 10 wherein the control circuit has an output connected to the electric heating element, and an input connected to the sensor.
  • 12. The electronic cigarette of claim 10 wherein the nozzle has a diameter of approximately 0.01 to 2 mm and a length of approximately 2 to 20 mm.
  • 13. The electronic cigarette of claim 10 wherein the tubular nozzle comprises a fiber material.
  • 14. The electronic cigarette of claim 10 with the heating element comprising a wire coil.
  • 15. The electronic cigarette of claim 14 with the wire coil selected from the group consisting of nickel chromium alloy, iron chromium aluminum alloy, stain less steel, gold, platinum, and tungsten molybdenum alloy.
  • 16. The electronic cigarette of claim 10 with the liquid vaporizer having a coating a ceramic material, a semiconductor material, or a corrosion-resistant metal.
  • 17. The electronic cigarette of claim 10 wherein the liquid vaporizer comprises a base.
  • 18. The electronic cigarette of claim 17 further comprising screw threads on the base.
  • 19. The electronic cigarette of claim 10 wherein the liquid storage element contains nicotine solution.
Priority Claims (1)
Number Date Country Kind
03 1 11582 Apr 2003 CN national
Parent Case Info

This application is a DIV of Ser. No. 10/547,244 filed Feb. 27, 2006 ABN which is a 371 of PCT/CN2004/000182 filed Mar. 8, 2004.

US Referenced Citations (88)
Number Name Date Kind
1775947 Robinson Sep 1930 A
2057353 Whittemore Oct 1936 A
2631219 Suchy et al. Mar 1953 A
3200819 Gilbert Aug 1965 A
3551643 Pricenski Dec 1970 A
4171000 Uhle Oct 1979 A
4207457 Haglund Jun 1980 A
4228925 Mendelovich Oct 1980 A
4641053 Takeda Feb 1987 A
4735217 Gerth Apr 1988 A
4756318 Clearman Jul 1988 A
4771796 Myer Sep 1988 A
4819665 Roberts Apr 1989 A
4848374 Chard Jul 1989 A
4945929 Egilmex Aug 1990 A
4945931 Gori Aug 1990 A
4947875 Brooks et al. Aug 1990 A
5042470 Kanesaka Aug 1991 A
5060671 Counts et al. Oct 1991 A
5080114 Rudolph et al. Jan 1992 A
5095921 Losee Mar 1992 A
5144962 Counts Sep 1992 A
5159940 Hayward et al. Nov 1992 A
5190060 Gerding Mar 1993 A
5224498 Deevi Jul 1993 A
5249586 Morgan et al. Oct 1993 A
5261424 Sprinkel, Jr. Nov 1993 A
5285798 Banerjee Feb 1994 A
5322075 Deevi Jun 1994 A
5388594 Counts Feb 1995 A
5438978 Hardester Aug 1995 A
5497791 Bowen et al. Mar 1996 A
5505214 Collins Apr 1996 A
5591368 Fleischhauer et al. Jan 1997 A
5666977 Higgins Sep 1997 A
5666978 Counts Sep 1997 A
5730158 Collins Mar 1998 A
5743251 Howell Apr 1998 A
5746251 Bullard May 1998 A
5799663 Gross Sep 1998 A
5819756 Mielordt Oct 1998 A
5878752 Adams et al. Mar 1999 A
5894841 Voges Apr 1999 A
6040560 Fleischhauer Mar 2000 A
6041789 Bankert Mar 2000 A
6095153 Kessler Aug 2000 A
6164287 White Dec 2000 A
6178969 St. Charles Jan 2001 B1
6196218 Voges Mar 2001 B1
6354293 Madison Mar 2002 B1
6357671 Cewers Mar 2002 B1
6443146 Voges Sep 2002 B1
6532965 Abhulimen Mar 2003 B1
6601776 Oljaca Aug 2003 B1
6715494 McCoy Apr 2004 B1
6772756 Shayan Aug 2004 B2
6803545 Blake Oct 2004 B2
6810883 Felter Nov 2004 B2
6854461 Nichols Feb 2005 B2
6854470 Pu Feb 2005 B1
7100618 Dominguez Sep 2006 B2
7131599 Katase Nov 2006 B2
7726320 Robinson Jun 2010 B2
7832410 Hon Nov 2010 B2
7845359 Montaser Dec 2010 B2
7997280 Rosenthal Aug 2011 B2
20030108342 Sherwood et al. Jun 2003 A1
20040261802 Griffin et al. Dec 2004 A1
20050016550 Katase Jan 2005 A1
20050236006 Cowan Oct 2005 A1
20060196518 Hon Sep 2006 A1
20080188490 Glatthar et al. Aug 2008 A1
20080276947 Martzel Nov 2008 A1
20090095311 Han Apr 2009 A1
20090126745 Hon May 2009 A1
20090151717 Bowen Jun 2009 A1
20090188490 Han Jul 2009 A1
20090230117 Fernando Sep 2009 A1
20090260642 Monsees Oct 2009 A1
20090272379 Thorens Nov 2009 A1
20100031968 Sheikh Feb 2010 A1
20100126505 Rinker May 2010 A1
20100181387 Zaffaroni Jul 2010 A1
20100200008 Taieb Aug 2010 A1
20100242974 Pan Sep 2010 A1
20100307518 Wang Dec 2010 A1
20110005535 Xiu Jan 2011 A1
20110036346 Cohen Feb 2011 A1
Foreign Referenced Citations (61)
Number Date Country
89207339.X May 1989 CN
2047485 Nov 1989 CN
1135860 Nov 1996 CN
97216131 May 1997 CN
2293957 Oct 1998 CN
1252961 May 2000 CN
200410048792.6 Jun 2004 CN
1575673 Feb 2005 CN
200520089947.0 Mar 2005 CN
2777995 May 2006 CN
1284493 Nov 2006 CN
20062135072 Dec 2006 CN
20071121524 Sep 2007 CN
200997909 Jan 2008 CN
101116542 Feb 2008 CN
101176805 May 2008 CN
10051792 May 2002 DE
0057243 Aug 1982 EP
0230420 Aug 1987 EP
0342538 Nov 1989 EP
0358002 Mar 1990 EP
0295122 Jan 1992 EP
0545186 Jun 1993 EP
0703735 Apr 1996 EP
0824927 Feb 1998 EP
0845220 Jun 1998 EP
0893071 Jan 1999 EP
0951219 Nov 2002 EP
1528391 Oct 1978 GB
64000498 Jan 1989 JP
06114105 Apr 1994 JP
07506999 Aug 1995 JP
09075058 Mar 1997 JP
47514 Dec 1997 UA
WO9409842 May 1994 WO
WO9421317 Sep 1994 WO
WO9740876 Nov 1997 WO
WO9748293 Dec 1997 WO
WO9817130 Apr 1998 WO
WO0049901 Aug 2000 WO
WO0105459 Jan 2001 WO
WO03034847 Jan 2003 WO
WO03022364 Mar 2003 WO
WO03055486 Jul 2003 WO
WO03101454 Dec 2003 WO
WO2004001407 Dec 2003 WO
WO2004023222 Mar 2004 WO
WO2004080216 Sep 2004 WO
WO2005099494 Oct 2005 WO
WO2006082571 Aug 2006 WO
WO2007078273 Jul 2007 WO
WO2008077271 Jul 2008 WO
WO2008130813 Oct 2008 WO
WO2009118085 Oct 2009 WO
WO2009135729 Nov 2009 WO
WO2010052323 May 2010 WO
WO2010091593 Aug 2010 WO
2010145468 Dec 2010 WO
WO2010145805 Dec 2010 WO
WO2011010334 Jan 2011 WO
WO2011022431 Feb 2011 WO
Non-Patent Literature Citations (41)
Entry
United States Patent and Trademark Office, Office Action in Inter Partes Reexamination of U.S. Patent No. 8,156,944, mailed Nov. 27, 2012.
Machine translation Chinese Patent Application 200420031182 which corresponds to the priority document of WO2005/099494 (Hon '494) Oct. 27, 2005.
Machine translation of Chinese Patent Application 03111582.9 which corresponds to the priority document of WO2004/095955 (Hon '955) Nov. 11, 2004.
Australian Patent Office, Examination Report for SG 200505930-8, May 4, 2006.
Australian Patent Office; Exam Report for AU2004234199, Aug. 14, 2009.
China Intellectual Property Office, International Search Report for PCT/CN2004000182 , Jun. 10, 2004.
European Patent Office, Supplemental European Search Report for EP04718242, Jul. 27, 2007.
European Patent Office, Supplemental Partial European Search Report for EP04718242, May 22, 2007.
Introduction to selecting and using electronic components, ISBN7-111-13752-3.
Japanese Patent Office, Office Action for JP2006504199, Oct. 30, 2009.
Korean Intellectual Property Office, Notice of Preliminary Rejection for KR1020057009767, Jul. 27, 2009.
Macao Patent Office, Official Communication for MOI121, Apr. 17, 2009.
Malaysian Patent Office, Examination Report for MY PI 20041407, Sep. 28, 2007.
Manual for Electric Engineers, 2nd Ed, Mar. 2000.
Manual for Mechanical Designers, 4th Ed, Jan. 2002.
Materials Manual-Nonmetal, Jul. 1, 1985.
Taiwan Intellectual Property Office, Official Letter for TW093111573, Apr. 24, 2009.
TechPowerUp “What is a MOSFET, what does it look like and how does it work?” May 24, 2004.
Ukraine Patent Office, Examination Report for UA200511258, Feb. 4, 2009.
CN Creative ; Intellicig USA, Ruyan v. Smoking Everywhere et al. CV11-6268 Invalidity Contentions, Apr. 12, 2012.
Cyphert, Gil DBA NU1S, Ruyan v. Smoking Everywhere et al. CV11-0367 Invalidity Contentions, Apr. 11, 2012.
European Patent Office, Extended European Search Report for EP07721148, Dec. 6, 2010.
European Patent Office, Extended European Search Report for EP11001479, Jul. 4, 2011.
European Patent Office, Supplemental Extended European Search Report for EP05729107, dated Jul. 31, 2007.
European Patent Office, Supplemental Partial Extended European Search Report for EP05729107, dated May 22, 2007.
Fin Branding Group, LLC, Request for Inter Partes Reexamination of U.S. Patent No. 8,156,944, filed Sep. 13, 2012.
IP Australia; Exam Report for AU2007250367, Jul. 30, 2012.
IP Australia, Exam Report for AU2007250368, Aug. 9, 2012.
IP Australia, Search and Examination Report for SG200604498-6, dated Apr. 16, 2008.
Sottera, Inc., Ruyan v. Smoking Everywhere et al. CV11-0367 Invalidity Contentions, Apr. 12, 2012.
Sottera, Inc., Ruyan v. Smoking Everywhere et al. CV11-0367 Invalidity Contentions, Exhibit 7 (Claim 20 Claim Chart), Apr. 12, 2012.
Sottera, Inc., Ruyan v. Smoking Everywhere et al. CV11-0367 Invalidity Contentions, Exhibit 8 (Claim 24 Claim Chart), Apr. 12, 2012.
State Intellectual Property Office, P.R. China, English Translation of Written Opinion for PCT/CN07/001575, Jul. 20, 2007.
State Intellectual Property Office, P.R. China, English translation of Written Opinion for PCT/CN07/001576, Aug. 3, 2007.
State Intellectual Property Office, P.R. China, International Search Report for PCT/CN07/001576, Aug. 16, 2007.
State Intellectual Property Office, P.R. China, International Search Report for PCT/CN07/001575, Aug. 16, 2007.
State Intellectual Property Office, P.R. China, International Search Report for PCT/CN05/000337, Jul. 14, 2005.
State Intellectual Property Office, P.R. China, International Search Report for PCT/CN10/000125, Apr. 1, 2010.
State Intellectual Property Office, P.R. China, International Search Report for PCT/CN10/073613, Aug. 26, 2010.
State Intellectual Property Office, P.R. China, Search Report for CN ZL 200620090805.0, Nov. 18, 2008.
Fin Branding Group, LLC, Third Party Response to Amendment including Submission of Prior Art and Misc. Statement Per 37 CFR 1.948 and Oljaca 6601776 in Reexamination of U.S. Patent No. 8,156,944, Feb. 27, 2013.
Related Publications (1)
Number Date Country
20120090630 A1 Apr 2012 US
Divisions (1)
Number Date Country
Parent 10547244 US
Child 13088276 US