Acoustically actuated flow valve assembly including a plurality of reed valves

Information

  • Patent Grant
  • 8919377
  • Patent Number
    8,919,377
  • Date Filed
    Monday, August 13, 2012
    12 years ago
  • Date Issued
    Tuesday, December 30, 2014
    10 years ago
Abstract
The present disclosure is directed to an acoustically actuated flow valve having temperature-sensitive reed valves thereon. The flow valve and reed valves are configured to impart acoustical energy into a fluid flowing through the flow valve and one or more fluids downstream of the valve, leading to increased mixing of the fluids. The reed valves are further configured to be temperature-sensitive, thereby allowing more fluid to flow through the flow valve as the result of a change in temperature.
Description
TECHNICAL FIELD

The present disclosure relates generally to flow valves for regulating the flow of a fluid, more specifically to flow valves actuated to impart a fluid with acoustical energy.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is an isometric cross-sectional side view of a flow valve assembly configured in accordance with an embodiment of the disclosure.



FIG. 2 is an end cross-sectional view of a flow valve assembly configured in accordance with an embodiment of the disclosure.



FIG. 3 is a partial cross-sectional side view of a flow valve assembly configured in accordance with an embodiment of the disclosure.



FIG. 4 is an isometric cross-sectional side view of a flow valve configured in accordance with another embodiment of the disclosure.



FIG. 5 is a partial cross-sectional side partial view of a flow valve assembly configured in accordance with another embodiment of the disclosure.





DETAILED DESCRIPTION

The present disclosure describes devices, systems, and methods for providing a flow control valve configured to impart or modify acoustical forces to induce vibration in various types of fluids. The disclosure further describes associated systems, assemblies, components, and methods regarding the same. For example, one embodiment described below is directed generally to a flow control valve in a fuel injector that can optimize the ignition and combustion of various fuels based on combustion chamber conditions, engine load requirements, etc. Certain details are set forth in the following description and in FIGS. 1-5 to provide a thorough understanding of various embodiments of the disclosure. However, other details describing well-known structure, and systems often associated with internal combustion engines, valves, injectors, igniters, and/or other aspects of combustion systems are not set forth below to avoid unnecessarily obscuring the description of various embodiments of the disclosure. Thus, it will be appreciated, that several of the details set forth below are provided to describe the following embodiments in a manner sufficient to enable a person skilled in the relevant art to make and use the disclosed embodiments. Several of the details and advantages described below, however, may not be necessary to practice certain embodiments of the disclosure.


Many of the details, dimensions, angles, shapes, and other features shown in the Figures are merely illustrative of particular embodiments of the disclosure. Accordingly, other embodiments can have other details, dimensions, angles, and features without departing from the spirit or scope of the present disclosure. In addition, those of ordinary skill in the art will appreciate that further embodiments of the disclosure can be practiced without several of the details described below.


Reference throughout this specification to “one embodiment” or “an embodiment” means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment of the present disclosure. Thus, the occurrences of the phrases “in one embodiment” or “in an embodiment” in various places throughout this specification are not necessarily all referring to the same embodiment. Furthermore, the particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments. The headings provided herein are for convenience only and do not interpret the scope or meaning of the claimed disclosure.



FIG. 1 depicts an isometric cross-sectional view of a flow valve assembly 100 configured in accordance with an embodiment of the disclosure. The flow valve assembly 100 includes a body 102 having a middle portion 106 extending between a base portion 104 and a face portion 108. A plurality of tubes 116a-h extend through the body 102 from the base portion 104 through the middle portion 106 and empty into a chamber 112 adjacent to the face portion 108. A valve 132 disposed in the face portion 108 is coupled to a valve actuator 120 disposed in a bore 119 that extends the length of the body 102. The valve actuator 120 can be connected to an external actuator (not shown) that may be located adjacent to the base portion 104. In other embodiments, the valve actuator 120 can be connected to any other mechanical movement means. The external actuator can displace the valve actuator 120 in the bore 119 such that the valve actuator 120 and the valve 132 oscillate axially between at least a first position and a second position, in the first position, the valve 132 is closed and the fluid flowing through the tubes 116a-h cannot flow out of the flow valve assembly 100 into the fluid space 109. In the second (or open) position, the valve 132 is displaced outward from the face portion 108 such that a gap is formed between the valve 132 and the face portion 108. The gap can allow a fluid flowing through the tubes 116a-h into the chamber 112, to flow out of the flow valve assembly 100 into a fluid space 109 adjacent and external to the valve face 130.


The oscillation of valve 132 can impart acoustical energy into a plurality of fluids in the fluid space 109. During operation, as the fluid flowing through the flow valve assembly 100 is allowed to flow into the fluid space 109 it has an innate acoustical frequency of movement. As discussed in further detail below, the acoustical frequency may be a sit-audible, audible, or ultrasonic frequency. The innate frequency of the fluid is dependent on numerous factors including, for example, the geometry of the fluid space 109 and the flow valve 132, the mechanism of displacing the flow valve 132, and the type, temperature, velocity, pressure, density, and viscosity of the fluid. The innate frequency can be altered via a cyclic impartation of energy to the fluids, as well as to one or more components in flow valve assembly 100. Imparting this acoustical energy alters the fluid pattern, shape, phase, and/or frequency to provide for improved mixture of fluids in the fluid space 109.


The flow control valve 100 also includes reed valves 124a-l, which can be circumferentially disposed on the valve face 130, can be carried by the body 102 or can be separated from the valve face 130 or the body 102 by a spacer, diaphragm 114 or physical space. The reed valves 124a-l can be configured to vibrate in response to a displacement of the valve 132 and valve actuator 120. The resulting oscillation of valve 132 and valve actuator 120 can result in the imparting of corresponding oscillations in the reed valves 124a-l. The oscillations of the reed valves 124a-l can impart acoustical energy or modify existing acoustical energy into a plurality of fluids flowing therearound. The plurality of fluids may comprise a first fluid that can flow through the tubes 116a-h of the flow valve assembly 100 into fluid space 109, and a second fluid in fluid space 109 that may be mixed with the first fluid. The acoustical or kinetic energy imparted or modified into the fluids in the fluid space 109 further alters the fluid pattern, shape, phase, and/or frequency to provide for improved mixture of fluids in the fluid space 109.


In the illustrated embodiment, the flow valve assembly 100 has a cylindrical shape and the reed valves are more or less perpendicular to the axial travel of valve 132. In other embodiments, however, the flow valve assembly 100 may be any suitable shape and reed valves 124 may be provided in various other geometric shapes, orientations, and relationships to optimize the fuel injection pattern, ignition, combustion, and oxidant utilization events including production of corona or Lorentz accelerated ion ignition. In some embodiments valve 132 controls fluid flow to ports controlled by reed valves 124 that accordingly, depending upon each spring's stiffness, may serve as the sole or principal way for fluid to flow into a certain region of space 109. Each individual valve 124 may have a specific spring constant or stiffness that determines the pressure at which it is accelerated outward or combinations of valves with the same spring constant may be used to produce certain injection patterns at one power level and another pattern at another power level in order to optimize oxidant utilization efficiency to maximize power production and/or fuel economy.


Illustratively in another embodiment, valve 132 may allow a fluid such as fuel to flow through one or more annular distributor passages to ports that are normally closed by reed valves 124a-l. Upon vibrating or multiple burst openings of valve 132, fluid pressure, such as pressure pulses, open one or more reed valves 124 depending upon their modulus of elasticity, section modulus and resulting “stiffness” to produce a pattern of fluid distribution in zone 109. Variation of the fluid pressure and/or cyclic frequency of fluid bursts from valve 132 provides for variation of the fluid distribution pattern projected into space 109 by reed valves 124.



FIG. 2 depicts a cross-sectional end view of the face portion 108 of the flow valve assembly 100. The reed valves 124a-l are arranged around the circumference of the exterior surface of the face portion 108 upstream of the flow of the first fluid flowing through the flow valve assembly 100. The tubes 116a-h are arranged circumferentially throughout the body 102 around a bore 119. In the illustrated embodiment, the flow valve assembly 100 has a cylindrical shape, in other embodiments, however, the flow valve assembly 100 may be any suitable shape, such as a rectangle, cube, or sphere.



FIG. 3 depicts a partial cross-sectional side view of the flow valve assembly 100. Tubes 116b-f and reed valves 124d-i are visible in this view. A series of grooves are formed circumferentially around the face portion 108 and are configure such that each of the reed valves 124a-l covers a corresponding groove 125d-l. The grooves 125d-l can act as channels for a fluid entering the fluid space 109 when valve 132 is open. A fluid can enter the body 102 of the flow valve assembly 100 and flow through the tubes 116a-h, the chamber 112, and the valve 132. The movement of the valve 132 can impart acoustical energy resulting in vibration of the reed valves 124a-l. This vibration of reed valves 124a-l may be transmitted as acoustical energy into a plurality of fluids in the fluid space 109. Transmitting acoustical energy into the fluids in fluid space 109 can alter the pattern, shape, phase, and/or frequency of the fluids to provide for an increase of mixing of the fluids in the fluid space 109.



FIGS. 4 and 5 depict another embodiment of the flow control assembly 100 depicted in FIGS. 1 and 3, respectively. In the illustrated embodiment of FIGS. 4 and 5, the reed valves 124a-l comprise at least two metals wherein a first metal has a first coefficient of thermal expansion and a second metal has a second coefficient of thermal expansion different from the first coefficient of thermal expansion (i.e. a “bimetal”). Configuring the reed valves 124a-l to comprise a bimetal can result in each of the reed valves 124a-l curling or being similarly deformed along their length resulting from the expansion of the constituent metals at different rates with regard to temperature. According to aspects of the embodiment, the extent of the deformation of the individual reed valves 124a-l can be proportional to a change of temperature of the fluid space 109 that surrounds the reed valves 124a-l. A first edge of each of the reed valves 124a-l can be attached to the face 130 of the flow valve 132 while a second edge is unrestrained and can be allowed to curl outward from the valve face 130 in response to an increase in temperature in the fluid space 109. The curling outward of the reed valves 124a-l can result in increased fluid flow through the grooves 125a-l because the area by which the reed valves 124a-l cover the corresponding grooves 125a-l is effectively decreased. Furthermore, the curling outward of the reed valves 124a-l in response to increase in temperature can decrease the effective length of each of the reed valves 124a-l, thereby increasing the vibration frequency of each of the reed valves 124a-l.


The flow valve assembly 100 can further include a sensor and/or transmitting component 110 for detecting and relaying properties of the fluid space 109 such as temperatures and pressure. The sensor can be integral to the valve 132, the valve actuator 120, and/or the face portion 108 or a separate component that is carried by any of these portions of the flow valve assembly 100. The sensor can be used to observe the curl of the reed valves 124a-l. The curl or deformation of the reed valves 124a-l can be monitored and compared to a resting state, providing an approximate visual determination of the temperature of the fluid space 109.


In another embodiment, the valve actuator 120 can be formed from fiber optic cables or insulated transducers integrated within a rod or cable, or can include other sensors to detect and communicate data about fluid space 109. Although not shown in FIG. 1, in other embodiments, the flow valve assembly can include other sensors or monitoring instrumentation located at various positions on the flow valve assembly 100. For example, the body 102 can include optical fibers integrated into the material of the body 102. In addition, the flow valve 132 can be configured to sense or carry sensors to transmit data to one or more controllers associated with the movement of valve actuator 120. This data can be transmitted via wireless, wired, optical, or other transmission mediums to an external controller of a mechanical movement means displacing the valve actuator 120 and flow valve 132. The rate and velocity of mechanical movement means driving the valve actuator 120 and flow valve 132 can be adjusted to achieve desired fluid factors and characteristics in the fluid space 109 based on data from the sensor.


In some embodiments, for example, the flow valve assembly 100 can be disposed within and/or attached to a fuel injector and the fluid space 109 can be a combustion chamber. A fuel can be transported into the flow valve assembly 100 through the base portion 104 and carried by the tubes 116a-h through the body 102 into the chamber 112. An actuator of the fuel injector can be connected to the valve actuator 120 and flow valve 132 to inject fuel into the combustion chamber of an engine. As the fuel is propelled into the combustion chamber by the flow valve 132, an acoustical energy is imparted into the fuel.


In another embodiment, the combination of the shape of the flow valve 132 and the pressure drop of a fuel passing through the flow valve 132 into the fluid space 109 instigates an acoustical disturbance that alters a frequency of fuel being dispersed into the fluid space 109, and accordingly controls the spray pattern of the fuel and an associated combustion efficiency improvement.


In certain embodiments, the acoustical frequencies applied to the fuel can be sub-audible frequencies (e.g., less than approximately 20 Hz) or ultrasound frequencies (e.g., above approximately 20000 Hz). In other embodiments, the frequencies can be audible frequencies ranging from about 20 Hz to about 20,000 Hz. The acoustical energy vibrational frequency can be selected based on several factors including the properties of the injector and combustion chamber, as well as fuel type, pressure, temperature, flow rate, etc. For example, a fuel having a relatively high molecular weight may require a relatively higher acoustical energy vibrational frequency applied to the fuel to more quickly initiate and complete combustion. In another embodiment, applying a high frequency, for example a frequency of approximately 2,450 MHz, induces dipolar molecular motion in low-cost fuels having a water component, such as wet alcohol. Such high frequency molecular motion may be generated by an AC or DC microwave driver and may be used in conjunction with one or more additional vibrational drivers at other frequencies. The selected acoustical energy vibrational frequency can also be at least partially based on feedback from the combustion chamber properties (e.g., temperature, pressure, amount of fuel, oxygen, or oxides of nitrogen, ignition initiation and completion, etc.) that can be read by the sensors or detectors described above.


In another embodiment, the frequency of vibration of the reed valves 124a-l can be tuned to a resonant frequency of the fluid space 109, which can be, for example, a combustion chamber. The reed valves 124a-l are configured to vibrate at the resonant frequency of the combustion chamber, which is determined by several factors, including the type and density of one or more fluids in the combustion chamber, the temperatures of the combustion chamber, and the geometry of the combustion chamber. The flow valve assembly 100 is configured to displace the flow valve 132 and reed valves 124a-l attached thereto when a piston in a combustion chamber is at the end of a compression stroke. The tuned reed valves 124a-l in this embodiment excited one or more resonant modes thereby causing an increase in pressure on the face of the piston compared to the pressure caused by combustion alone in the combustion chamber.


In a further embodiment, the reed valves 124a-l can be configured to vibrate when the flow valve 130 is in a closed position thereby imparting acoustical energy to a second fluid in fluid space 109 different from the first fluid flowing through the flow valve assembly 100. The acoustical energy transmitted to the second fluid can result in the second fluid being in a preferred condition to be mixed with the first fluid when the flow valve 130 is in an open position. The second fluid, for example, can be an oxidant such as air in a combustion chamber and the first fluid, for example, can be a fuel to be injected into a combustion chamber. In order to maximize the temperature produced by combustion of the air and the fuel in the combustion chamber, it may be preferable to have as much air as possible in the center of the chamber prior to combustion. An increased amount of air in the center, as opposed to near the sidewalls of the combustion chamber, can result in a higher temperature in the combustion chamber when the fuel/air mixture is ignited. This can be due to the fact that a decreased amount of heat may escape the combustion chamber through the sidewalls as compared to combustion when air has a relatively even distribution in the combustion chamber.


Any of the actuation-related components disclosed herein (including, but not limited to, actuators, drivers, sensors, valves, and/or flow valve assemblies) can be at least partially made from or coated in any number of suitable materials.


It will be apparent that various changes and modifications can be made without departing from the scope of the disclosure. Unless the context clearly requires otherwise, throughout the description and the claims, the words “comprise,” “comprising,” and the like are to be construed in an inclusive sense as opposed to an exclusive or exhaustive sense; that is to say, in a sense of “including, but not limited to.” Words using the singular or plural number also include the plural or singular number, respectively. When the claims use the word “or” in reference to a list of two or more items, that word covers all of the following interpretations of the word: any of the items in the list, all of the items in the list, and any combination of the items in the list.


These and other changes can be made to the disclosure in light of the above detailed description. In general, in the following claims, the terms used should not be construed to limit the disclosure to the specific embodiments disclosed in the specification and the claims, but should be construed to include all systems and methods that operate in accordance with the claims. Accordingly, the invention is not limited by the disclosure, but instead its scope is to be determined broadly by the following claims.

Claims
  • 1. A flow valve assembly for modifying acoustical energy of a fluid, the flow valve assembly comprising: a body including— a base portion configured to receive the fluid into the body;one or more of tubes disposed therein configured to transport the fluid from the base portion through the body; anda bore extending therethrough;a valve actuator disposed in the bore of the body wherein the valve actuator is configured to be movable between a first position and a second position;a flow valve coupled to the valve actuator, wherein the valve is movable to an open position thereby allowing the fluid to flow therefrom, wherein the valve actuator and the valve are configured concentrically;a plurality of reed valves adjacent to an outer edge of the flow valve and configured to respond to fluid movement through the flow valve.
  • 2. The flow valve assembly of claim 1 wherein the plurality of reed valves comprises a first metal having a first coefficient of thermal expansion and a second metal having a coefficient thermal of expansion different from the first metal.
  • 3. The flow valve assembly of claim 1 further comprising a sensor configured to register one or more conditions in a fluid space proximate to the flow valve and the reed valves.
  • 4. The flow valve assembly of claim 1 wherein the valve actuator is configured to be acoustically displaced thereby resulting in an oscillation of the flow valve from the open position to a closed position.
  • 5. The flow valve assembly of claim 1 wherein the reed valves vibrate in response to the fluid movement.
  • 6. The flow valve assembly of claim 1 wherein the reed valves are disposed on the flow valve.
  • 7. The flow valve assembly of claim 1 wherein the reed valve is positioned in the fluid flow pathway.
  • 8. The flow valve assembly of claim 1 further including a diaphragm positioned between the flow valve and the reed valves.
  • 9. A method of operating a flow valve assembly to control a flow of a fluid, comprising: introducing a first fluid into a body portion of the flow valve assembly, the body portion including a flow valve, the flow valve being movable between an open position and a closed position;configuring the flow valve to oscillate from the closed position to the open position to introduce at least a portion of the first fluid into a fluid space adjacent to the flow valve;configuring a plurality of reed valves positioned concentrically with the flow valve to vibrate in response to energy imparted by flow of fuel and/or oscillations of the flow valve;imparting acoustical energy to at least one of the first fluid, the flow valve, the plurality of reed valves, or a second fluid in the fluid space adjacent to the flow valve.
  • 10. The method of claim 9 wherein imparting acoustical energy comprises transferring energy to alter a vibrational frequency of at least one of the first fluid, the flow valve, the plurality of reed valves or the second fluid in the fluid space adjacent to the flow valve.
  • 11. The method of claim 9, further comprising sensing one or more conditions in the fluid space adjacent to the flow valve, and wherein imparting acoustical energy comprises adaptively altering, in response to the sensing, the movement of the first fluid, the flow valve, the plurality of reed valves or the second fluid in the fluid space adjacent to the flow valve.
  • 12. The method of claim 9 wherein imparting acoustical energy comprises propagating pressure waves of acoustical energy through the first fluid and altering a frequency of vibration in the first fluid.
  • 13. The method of claim 9 wherein imparting acoustical energy comprises controlling the frequency, shape, pattern, and/or phase of a plurality of fluids in the fluid space adjacent to the flow valve.
  • 14. The method of claim 9 wherein imparting acoustical energy comprises subjecting the first fluid to a pressure drop as the first fluid passes through the flow valve into the fluid space adjacent to the flow valve.
  • 15. The method of claim 9 wherein imparting acoustical energy comprises inducing a frequency above about 20,000 Hz in at least one of the first fluid, the flow valve, the plurality of reed valves or the second fluid in the fluid space adjacent to the flow valve.
  • 16. The method of claim 9, further comprising sensing a temperature or pressure in the fluid space adjacent to the flow valve and modifying the frequency, shape, pattern, and/or phase of the first fluid in response to the sensed temperature or pressure.
  • 17. The method of claim 9 wherein the plurality of reed valves is configured to elastically deform in response to a change in temperature in the fluid space adjacent to the flow valve, thereby allowing increased flow of the first fluid from the flow valve assembly.
  • 18. The method of claim 9 wherein the plurality of reed valves is configured to vibrate at a first frequency corresponding to a first temperature in the fluid space adjacent to the flow valve and at a higher frequency than the first frequency in response to an increase in temperature in the fluid space adjacent to the flow valve.
  • 19. The method of claim 9 further comprising configuring the plurality of reed valves to vibrate at one or more frequencies that correspond to one or more resonant frequencies of the fluid space adjacent to the flow valve.
  • 20. A method of operating a flow valve assembly to control a flow of a fluid, the method comprising: introducing a first fluid into a body portion of the flow valve assembly, the body portion including a valve actuator, a flow valve, and a plurality of reed valves disposed on the flow valve wherein the flow valve and the plurality of reed valves are configured concentrically;sensing one or more conditions in a fluid space exterior to the flow valve; andgenerating acoustical energy to control movement of at least one of the first fluid, the valve actuator, the flow valve, or a second fluid in the fluid space exterior to the flow valve.
  • 21. The method of claim 20 wherein generating acoustical energy comprises inducing vibrations having a vibrational frequency in the valve actuator and opening and closing the flow valve at a regularity dependent on the vibrational frequency.
  • 22. The method of claim 20 wherein generating acoustical energy comprises modifying a frequency, shape, pattern, and/or phase of at least one of the first fluid or the second fluid.
  • 23. The method of claim 20 wherein generating acoustical energy comprises generating acoustical energy having a first frequency, the method further comprising generating acoustical energy having a second frequency different from the first frequency in response to one or more sensed conditions in the fluid space exterior to the flow valve.
CROSS-REFERENCE TO RELATED APPLICATION(S)

The present application claims priority to and the benefit of U.S. Provisional Patent Application No. 61/523,181, filed Aug. 12, 2011, and entitled “ACOUSTICALLY ACTUATED FLOW VALVE HAVING TEMPERATURE-SENSITIVE REED VALVES,” the entirety of which is incorporated by reference herein.

US Referenced Citations (422)
Number Name Date Kind
1307088 Drummond Sep 1919 A
1451384 Whyte Apr 1923 A
1765237 King Jun 1930 A
2255203 Wiegand Sep 1941 A
2441277 Lamphere May 1948 A
2721100 Bodine, Jr. Oct 1955 A
2864974 Beye Dec 1958 A
3058453 May Oct 1962 A
3060912 May Oct 1962 A
3081758 May Mar 1963 A
3149620 Cataldo Sep 1964 A
3243335 Faile Mar 1966 A
3286164 De Huff Nov 1966 A
3361161 Schwartz Jan 1968 A
3373724 Papst Mar 1968 A
3391680 Benson Jul 1968 A
3520961 Suda et al. Jul 1970 A
3551738 Young Dec 1970 A
3594877 Suda et al. Jul 1971 A
3608050 Carman et al. Sep 1971 A
3689293 Beall Sep 1972 A
3762170 Fitzhugh Oct 1973 A
3802194 Tanasawa et al. Apr 1974 A
3926169 Leshner et al. Dec 1975 A
3931438 Beall et al. Jan 1976 A
3960995 Kourkene Jun 1976 A
3976039 Henault Aug 1976 A
3997352 Beall Dec 1976 A
4020803 Thuren et al. May 1977 A
4066046 McAlister Jan 1978 A
4095580 Murray et al. Jun 1978 A
4099494 Goloff et al. Jul 1978 A
4105004 Asai et al. Aug 1978 A
4116389 Furtah et al. Sep 1978 A
4122816 Fitzgerald et al. Oct 1978 A
4135481 Resler, Jr. Jan 1979 A
4172921 Kiefer Oct 1979 A
4183467 Sheraton et al. Jan 1980 A
4203393 Giardini May 1980 A
4281797 Kimata et al. Aug 1981 A
4293188 McMahon Oct 1981 A
4313412 Hosaka et al. Feb 1982 A
4330732 Lowther May 1982 A
4332223 Dalton Jun 1982 A
4364342 Asik Dec 1982 A
4364363 Miyagi et al. Dec 1982 A
4368707 Leshner et al. Jan 1983 A
4377455 Kadija et al. Mar 1983 A
4381740 Crocker May 1983 A
4382189 Wilson May 1983 A
4391914 Beall Jul 1983 A
4402036 Hensley et al. Aug 1983 A
4448160 Vosper May 1984 A
4469160 Giamei Sep 1984 A
4483485 Kamiya et al. Nov 1984 A
4511612 Huther et al. Apr 1985 A
4514712 Mc Dougal Apr 1985 A
4528270 Matsunaga Jul 1985 A
4531679 Pagdin Jul 1985 A
4536452 Stempin et al. Aug 1985 A
4567857 Houseman et al. Feb 1986 A
4574037 Samejima et al. Mar 1986 A
4677960 Ward Jul 1987 A
4684211 Weber et al. Aug 1987 A
4688538 Ward et al. Aug 1987 A
4700891 Hans et al. Oct 1987 A
4716874 Hilliard et al. Jan 1988 A
4733646 Iwasaki Mar 1988 A
4736718 Linder Apr 1988 A
4742265 Giachino et al. May 1988 A
4760818 Brooks et al. Aug 1988 A
4760820 Tozzi Aug 1988 A
4774914 Ward Oct 1988 A
4774919 Matsuo et al. Oct 1988 A
4777925 LaSota Oct 1988 A
4830286 Asslaender et al. May 1989 A
4834033 Larsen May 1989 A
4841925 Ward Jun 1989 A
4922883 Iwasaki May 1990 A
4932263 Wlodarczyk Jun 1990 A
4967708 Linder et al. Nov 1990 A
4977873 Cherry et al. Dec 1990 A
4982708 Stutzenberger Jan 1991 A
5034852 Rosenberg Jul 1991 A
5035360 Green et al. Jul 1991 A
5036669 Earleson et al. Aug 1991 A
5055435 Hamanaka et al. Oct 1991 A
5056496 Morino et al. Oct 1991 A
5069189 Saito Dec 1991 A
5072617 Weiss Dec 1991 A
5076223 Harden et al. Dec 1991 A
5095742 James et al. Mar 1992 A
5107673 Sato et al. Apr 1992 A
5109817 Cherry May 1992 A
5131376 Ward et al. Jul 1992 A
5134982 Hosoi Aug 1992 A
5150682 Magnet Sep 1992 A
5193515 Oota et al. Mar 1993 A
5207208 Ward May 1993 A
5211142 Matthews et al. May 1993 A
5220901 Morita et al. Jun 1993 A
5222481 Morikawa Jun 1993 A
5267601 Dwivedi Dec 1993 A
5297518 Cherry Mar 1994 A
5305360 Remark et al. Apr 1994 A
5328094 Goetzke et al. Jul 1994 A
5329606 Andreassen Jul 1994 A
5343699 McAlister Sep 1994 A
5361737 Smith et al. Nov 1994 A
5377633 Wakeman Jan 1995 A
5390546 Wlodarczyk Feb 1995 A
5392745 Beck Feb 1995 A
5394838 Chandler Mar 1995 A
5394852 McAlister Mar 1995 A
5421195 Wlodarczyk Jun 1995 A
5421299 Cherry Jun 1995 A
5435286 Carroll, III et al. Jul 1995 A
5439532 Fraas Aug 1995 A
5456241 Ward Oct 1995 A
5473502 Bonavia et al. Dec 1995 A
5475772 Hung et al. Dec 1995 A
5497744 Nagaosa et al. Mar 1996 A
5517961 Ward May 1996 A
5531199 Bryant et al. Jul 1996 A
5534781 Lee et al. Jul 1996 A
5549746 Scott et al. Aug 1996 A
5568801 Paterson et al. Oct 1996 A
5584490 Inoue et al. Dec 1996 A
5588299 DeFreitas Dec 1996 A
5598699 Few et al. Feb 1997 A
5605125 Yaoita Feb 1997 A
5607106 Bentz et al. Mar 1997 A
5608832 Pfandl et al. Mar 1997 A
5649507 Gregoire et al. Jul 1997 A
5662389 Truglio et al. Sep 1997 A
5676026 Tsuboi et al. Oct 1997 A
5694761 Griffin, Jr. Dec 1997 A
5699253 Puskorius et al. Dec 1997 A
5702761 DiChiara, Jr. et al. Dec 1997 A
5704321 Suckewer et al. Jan 1998 A
5704553 Wieczorek et al. Jan 1998 A
5714680 Taylor et al. Feb 1998 A
5715788 Tarr et al. Feb 1998 A
5738818 Atmur et al. Apr 1998 A
5745615 Atkins et al. Apr 1998 A
5746171 Yaoita May 1998 A
5767026 Kondoh et al. Jun 1998 A
5769049 Nytomt et al. Jun 1998 A
5797427 Buescher Aug 1998 A
5806581 Haasch et al. Sep 1998 A
5816217 Wong Oct 1998 A
5832906 Douville et al. Nov 1998 A
5853175 Udagawa Dec 1998 A
5863326 Nause et al. Jan 1999 A
5876659 Yasutomi et al. Mar 1999 A
5896842 Abusamra Apr 1999 A
5915272 Foley et al. Jun 1999 A
5930420 Atkins et al. Jul 1999 A
5941207 Anderson et al. Aug 1999 A
5947091 Krohn et al. Sep 1999 A
5975032 Iwata Nov 1999 A
5983855 Benedikt et al. Nov 1999 A
6000628 Lorraine Dec 1999 A
6015065 McAlister Jan 2000 A
6017390 Charych et al. Jan 2000 A
6026568 Atmur et al. Feb 2000 A
6029627 VanDyne Feb 2000 A
6029640 Bengtsson et al. Feb 2000 A
6042028 Xu Mar 2000 A
6062498 Klopfer May 2000 A
6081183 Mading et al. Jun 2000 A
6085990 Augustin Jul 2000 A
6092501 Matayoshi et al. Jul 2000 A
6092507 Bauer et al. Jul 2000 A
6093338 Tani et al. Jul 2000 A
6102303 Bright et al. Aug 2000 A
6131607 Cooke Oct 2000 A
6138639 Hiraya et al. Oct 2000 A
6155212 McAlister Dec 2000 A
6173913 Shafer et al. Jan 2001 B1
6185355 Hung Feb 2001 B1
6189522 Moriya Feb 2001 B1
6253728 Matayoshi et al. Jul 2001 B1
6267307 Pontoppidan Jul 2001 B1
6281976 Taylor et al. Aug 2001 B1
6318306 Komatsu Nov 2001 B1
6335065 Steinlage et al. Jan 2002 B1
6338445 Lambert et al. Jan 2002 B1
6340015 Benedikt et al. Jan 2002 B1
6360721 Schuricht et al. Mar 2002 B1
6360730 Koethe Mar 2002 B1
6378485 Elliott Apr 2002 B2
6386178 Rauch May 2002 B1
6443373 Portugues Sep 2002 B1
6446597 McAlister Sep 2002 B1
6453660 Johnson et al. Sep 2002 B1
6455173 Marijnissen et al. Sep 2002 B1
6455451 Brodkin et al. Sep 2002 B1
6478007 Miyashita et al. Nov 2002 B2
6483311 Ketterer et al. Nov 2002 B1
6490391 Zhao et al. Dec 2002 B1
6501875 Zhao et al. Dec 2002 B2
6503584 McAlister Jan 2003 B1
6506336 Beall et al. Jan 2003 B1
6516114 Zhao et al. Feb 2003 B2
6517011 Ayanji et al. Feb 2003 B1
6517623 Brodkin et al. Feb 2003 B1
6532315 Hung et al. Mar 2003 B1
6536405 Rieger et al. Mar 2003 B1
6542663 Zhao et al. Apr 2003 B1
6543700 Jameson et al. Apr 2003 B2
6549713 Pi et al. Apr 2003 B1
6550458 Yamakado et al. Apr 2003 B2
6556746 Zhao et al. Apr 2003 B1
6561168 Hokao et al. May 2003 B2
6567599 Hung May 2003 B2
6571035 Pi et al. May 2003 B1
6578775 Hokao Jun 2003 B2
6583901 Hung Jun 2003 B1
6584244 Hung Jun 2003 B2
6585171 Boecking Jul 2003 B1
6587239 Hung Jul 2003 B1
6599028 Shu et al. Jul 2003 B1
6615810 Funk et al. Sep 2003 B2
6615899 Woodward et al. Sep 2003 B1
6619269 Stier et al. Sep 2003 B1
6621964 Quinn et al. Sep 2003 B2
6626164 Hitomi et al. Sep 2003 B2
6647948 Kyuuma et al. Nov 2003 B2
6663027 Jameson et al. Dec 2003 B2
6668630 Kuglin et al. Dec 2003 B1
6672277 Yasuoka et al. Jan 2004 B2
6700306 Nakamura et al. Mar 2004 B2
6705274 Kubo Mar 2004 B2
6719224 Enomoto et al. Apr 2004 B2
6722339 Elliott Apr 2004 B2
6722340 Sukegawa et al. Apr 2004 B1
6722840 Fujisawa et al. Apr 2004 B2
6725826 Esteghlal Apr 2004 B2
6745744 Suckewer et al. Jun 2004 B2
6748918 Rieger et al. Jun 2004 B2
6749043 Brown et al. Jun 2004 B2
6755175 McKay et al. Jun 2004 B1
6756140 McAlister Jun 2004 B1
6763811 Tamol, Sr. Jul 2004 B1
6766965 D'Arrigo Jul 2004 B2
6772965 Yildirim et al. Aug 2004 B2
6776352 Jameson Aug 2004 B2
6779513 Pellizzari et al. Aug 2004 B2
6786200 Viele et al. Sep 2004 B2
6796516 Maier et al. Sep 2004 B2
6802894 Brodkin et al. Oct 2004 B2
6811103 Gurich et al. Nov 2004 B2
6814313 Petrone et al. Nov 2004 B2
6832472 Huang et al. Dec 2004 B2
6832588 Herden et al. Dec 2004 B2
6841309 Alpay et al. Jan 2005 B1
6845920 Sato et al. Jan 2005 B2
6850069 McQueeney et al. Feb 2005 B2
6851413 Tamol, Sr. Feb 2005 B1
6854438 Hilger et al. Feb 2005 B2
6871630 Herden et al. Mar 2005 B2
6883490 Jayne Apr 2005 B2
6883507 Freen Apr 2005 B2
6892971 Rieger et al. May 2005 B2
6898355 Johnson et al. May 2005 B2
6899076 Funaki et al. May 2005 B2
6904893 Hotta et al. Jun 2005 B2
6912998 Rauznitz et al. Jul 2005 B1
6925983 Herden et al. Aug 2005 B2
6940213 Heinz et al. Sep 2005 B1
6954074 Zhu et al. Oct 2005 B2
6955154 Douglas Oct 2005 B1
6959693 Oda Nov 2005 B2
6976683 Eckert et al. Dec 2005 B2
6978767 Bonutti Dec 2005 B2
6984305 McAlister Jan 2006 B2
6993960 Benson Feb 2006 B2
6994073 Tozzi et al. Feb 2006 B2
7007658 Cherry et al. Mar 2006 B1
7007661 Warlick Mar 2006 B2
7013863 Shiraishi et al. Mar 2006 B2
7025358 Ueta et al. Apr 2006 B2
7032845 Dantes et al. Apr 2006 B2
7070126 Shinogle Jul 2006 B2
7073480 Shiraishi et al. Jul 2006 B2
7077100 Vogel et al. Jul 2006 B2
7077108 Fujita et al. Jul 2006 B2
7077379 Taylor Jul 2006 B1
7086376 McKay Aug 2006 B2
7104246 Gagliano et al. Sep 2006 B1
7104250 Yi et al. Sep 2006 B1
7121253 Shiraishi et al. Oct 2006 B2
7124964 Bui Oct 2006 B2
7131426 Ichinose et al. Nov 2006 B2
7137382 Zhu et al. Nov 2006 B2
7138046 Roychowdhury Nov 2006 B2
7140347 Suzuki et al. Nov 2006 B2
7140353 Rauznitz et al. Nov 2006 B1
7140562 Holzgrefe et al. Nov 2006 B2
7198208 Dye et al. Apr 2007 B2
7201136 McKay et al. Apr 2007 B2
7204133 Benson et al. Apr 2007 B2
7214883 Leyendecker May 2007 B2
7228840 Sukegawa et al. Jun 2007 B2
7249578 Fricke et al. Jul 2007 B2
7255290 Bright et al. Aug 2007 B2
7272487 Christen et al. Sep 2007 B2
7278392 Zillmer et al. Oct 2007 B2
7284543 Kato et al. Oct 2007 B2
7302792 Land et al. Dec 2007 B2
7305971 Fujii Dec 2007 B2
7308889 Post et al. Dec 2007 B2
7309029 Boecking Dec 2007 B2
7340118 Wlodarczyk et al. Mar 2008 B2
7367319 Kuo et al. May 2008 B2
7386982 Runkle et al. Jun 2008 B2
7395146 Ueda et al. Jul 2008 B2
7404395 Yoshimoto Jul 2008 B2
7409929 Miyahara et al. Aug 2008 B2
7418940 Yi et al. Sep 2008 B1
7481043 Hirata et al. Jan 2009 B2
7484369 Myhre Feb 2009 B2
7513222 Orlosky Apr 2009 B2
7527041 Wing et al. May 2009 B2
7540271 Stewart et al. Jun 2009 B2
7554250 Kadotani et al. Jun 2009 B2
7588012 Gibson et al. Sep 2009 B2
7625531 Coates et al. Dec 2009 B1
7626315 Nagase Dec 2009 B2
7627416 Batenburg et al. Dec 2009 B2
7628137 McAlister Dec 2009 B1
7628145 Ishibashi et al. Dec 2009 B2
7650873 Hofbauer et al. Jan 2010 B2
7690352 Zhu et al. Apr 2010 B2
7703775 Matsushita et al. Apr 2010 B2
7707832 Commaret et al. May 2010 B2
7714483 Hess et al. May 2010 B2
7721697 Smith et al. May 2010 B2
7728489 Heinz et al. Jun 2010 B2
7849833 Toyoda Dec 2010 B2
7880193 Lam Feb 2011 B2
7886993 Bachmaier et al. Feb 2011 B2
7898258 Neuberth et al. Mar 2011 B2
7900850 Zengerle et al. Mar 2011 B2
7918212 Verdejo et al. Apr 2011 B2
7938102 Sherry May 2011 B2
7942136 Lepsch et al. May 2011 B2
8039412 Park et al. Oct 2011 B2
8069836 Ehresman Dec 2011 B2
8074625 McAlister Dec 2011 B2
8091528 McAlister Jan 2012 B2
8091536 Munshi et al. Jan 2012 B2
8132560 Ulrey et al. Mar 2012 B2
8147599 McAlister Apr 2012 B2
8192852 McAlister Jun 2012 B2
8239114 Goeke et al. Aug 2012 B2
8312759 McAlister Nov 2012 B2
8371273 Ulrey et al. Feb 2013 B2
8416552 Gefter et al. Apr 2013 B2
8441361 McAlister May 2013 B2
8469009 Munshi et al. Jun 2013 B2
8511259 Ambrosini et al. Aug 2013 B2
8538663 Jung et al. Sep 2013 B2
8578902 Hampton et al. Nov 2013 B2
20020017573 Sturman Feb 2002 A1
20020070287 Jameson Jun 2002 A1
20020084793 Hung et al. Jul 2002 A1
20020131171 Hung Sep 2002 A1
20020131666 Hung et al. Sep 2002 A1
20020131673 Hung Sep 2002 A1
20020131674 Hung Sep 2002 A1
20020131706 Hung Sep 2002 A1
20020131756 Hung Sep 2002 A1
20020141692 Hung Oct 2002 A1
20020150375 Hung et al. Oct 2002 A1
20020151113 Hung et al. Oct 2002 A1
20030012985 McAlister Jan 2003 A1
20030127531 Hohl Jul 2003 A1
20040008989 Hung Jan 2004 A1
20040084017 Viele et al. May 2004 A1
20040084026 Zhu et al. May 2004 A1
20040187847 Viele et al. Sep 2004 A1
20050098663 Ishii May 2005 A1
20050126537 Daniels et al. Jun 2005 A1
20050255011 Greathouse et al. Nov 2005 A1
20050257776 Bonutti Nov 2005 A1
20060005738 Kumar Jan 2006 A1
20060005739 Kumar Jan 2006 A1
20060016916 Petrone et al. Jan 2006 A1
20060037563 Raab et al. Feb 2006 A1
20060108452 Anzinger et al. May 2006 A1
20060169244 Allen Aug 2006 A1
20070186903 Zhu et al. Aug 2007 A1
20070189114 Reiner et al. Aug 2007 A1
20070240404 Pekrul et al. Oct 2007 A1
20070283927 Fukumoto et al. Dec 2007 A1
20080017170 Moroi et al. Jan 2008 A1
20080072871 Vogel et al. Mar 2008 A1
20080081120 Van Ooij et al. Apr 2008 A1
20080098984 Sakamaki May 2008 A1
20090078798 Gruendl et al. Mar 2009 A1
20090093951 McKay et al. Apr 2009 A1
20090101114 Czekala et al. Apr 2009 A1
20090264574 Van Ooij et al. Oct 2009 A1
20100020518 Bustamante Jan 2010 A1
20100077986 Chen Apr 2010 A1
20100108023 McAlister May 2010 A1
20100183993 McAlister Jul 2010 A1
20110036309 McAlister Feb 2011 A1
20110042476 McAlister Feb 2011 A1
20110048371 McAlister Mar 2011 A1
20110048374 McAlister Mar 2011 A1
20110056458 McAlister Mar 2011 A1
20110057058 McAlister Mar 2011 A1
20110146619 McAlister Jun 2011 A1
20110210182 McAlister Sep 2011 A1
20110233308 McAlister Sep 2011 A1
20110253104 McAlister Oct 2011 A1
20110297753 McAlister et al. Dec 2011 A1
20120180743 Burrows et al. Jul 2012 A1
20130149621 McAlister Jun 2013 A1
Foreign Referenced Citations (16)
Number Date Country
1411535 Apr 2003 CN
3443022 May 1986 DE
19731329 Jun 1998 DE
10356133 Jul 2005 DE
102005060139 Jun 2007 DE
102006021192 Nov 2007 DE
392594 Oct 1990 EP
671555 Sep 1995 EP
1972606 Sep 2008 EP
1038490 Aug 1966 GB
61-023862 Feb 1986 JP
02-259268 Oct 1990 JP
08-049623 Feb 1996 JP
2007-0026296 Mar 2007 KR
2008-0073635 Aug 2008 KR
WO-2008-017576 Feb 2008 WO
Non-Patent Literature Citations (28)
Entry
“Ford DIS/EDIS “Waste Spark” Ignition System.” Accessed: Jul. 15, 2010. Printed: Jun. 8, 2011. <http://rockledge.home.comcast.net/˜rockledge/RangerPictureGallery/DIS—EDIS.htm>. pp. 1-6.
“P dV's Custom Data Acquisition Systems Capabilities.” PdV Consulting. Accessed: Jun. 28, 2010. Printed: May 16, 2011. <http://www.pdvconsult.com/capabilities%20-%20daqsys.html>. pp. 1-10.
“Piston motion equations.” Wikipedia, the Free Encyclopedia. Published: Jul. 4, 2010. Accessed: Aug. 7, 2010. Printed: Aug. 7, 2010. <http://en.wikipedia.org/wiki/Dopant>. pp. 1-9.
“Piston Velocity and Acceleration.” EPI, Inc. Accessed: Jun. 28, 2010. Printed: May 16, 2011. <http://www.epi-eng.com/piston—engine—technology/piston—velocity—and—acceleration.htm>. pp. 1-3.
“SmartPlugs—Aviation.” SmartPlugs.com. Published: Sep. 2000. Accessed: May 31, 2011. <http://www.smartplugs.com/news/aeronews0900.htm>. pp. 1-3.
Bell et al. “A Super Solar Flare.” NASA Science. Published: May 6, 2008. Accessed: May 17, 2011. <http://science.nasa.gov/science-news/science-at-nasa/2008/06may—carringtonflare/>. pp. 1-5.
Birchenough, Arthur G. “A Sustained-arc Ignition System for Internal Combustion Engines.” Nasa Technical Memorandum (NASA TM-73833). Lewis Research Center. Nov. 1977. pp. 1-15.
Britt, Robert Roy. “Powerful Solar Storm Could Shut Down U.S. For Months—Science News Science & Technology | Technology News—FOXNews.com.” FoxNews.com, Published: Jan. 9, 2009. Accessed: May 17, 2011. <http://www.foxnews.com/story/0,2933,478024,00.html>. pp. 1-2.
Brooks, Michael. “Space Storm Alert: 90 Seconds from Catastrophe.” NewScientist. Mar. 23, 2009. pp. 1-7.
Doggett, William. “Measuring Internal Combustion Engine In-Cylinder Pressure with LabVIEW.” National Instruments. Accessed: Jun. 28, 2010. Printed: May 16, 2011. <http://sine.ni.com/cs/app/doc/p/id/cs-217>. pp. 1-2.
Erjavec, Jack. “Automotive Technology: a Systems Approach, vol. 2.” Thomson Delmar Learning. Clifton Park, NY. 2005. p. 845.
Hodgin, Rick. “NASA Studies Solar Flare Dangers to Earth-based Technology.” TG Daily. Published: Jan. 6, 2009. Accessed: May 17, 2011. <http://www.tgdaily.com/trendwatch/40830-nasa-studies-solar-flare-dangers-to-earth-based-technology>. pp. 1-2.
Hollembeak, Barry. “Automotive Fuels & Emissions.” Thomson Delmar Learning. Clifton Park, NY. 2005. p. 298.
InfraTec GmbH. “Evaluation Kit for FPI Detectors | Datasheet—Detector Accessory.” 2009. pp. 1-2.
Lewis Research Center. “Fabry-Perot Fiber-Optic Temperature Sensor.” NASA Tech Briefs. Published: Jan. 1, 2009. Accessed: May 16, 2011. <http://www.techbriefs.com/content/view/2114/32/>.
Pall Corporation, Pall Industrial Hydraulics. Increase Power Output and Reduce Fugitive Emissions by Upgrading Hydrogen Seal Oil System Filtration. 2000. pp. 1-4.
Riza et al. “All-Silicon Carbide Hybrid Wireless-Wired Optics Temperature Sensor Network Basic Design Engineering for Power Plant Gas Turbines.” International Journal of Optomechatronics, vol. 4, Issue 1. Jan 2010. pp. 1-10.
Riza et al. “Hybrid Wireless-Wired Optical Sensor for Extreme Temperature Measurement in Next Generation Energy Efficient Gas Turbines.” Journal of Engineering for Gas Turbines and Power, vol. 132, Issue 5. May 2010. pp. 051601-1-51601-11.
Salib et al. “Role of Parallel Reformable Bonds in the Self-Healing of Cross-Linked Nanogel Particles.” Langmuir, vol. 27, Issue 7. 2011. pp. 3991-4003.
U.S. Appl. No. 13/843,976, McAlister.
U.S. Appl. No. 13/797,351, McAlister.
U.S. Appl. No. 13/844,240, McAlister.
U.S. Appl. No. 13/844,488, McAlister.
International Search Report and Written Opinion for Application No. PCT/US2009/067044; Applicant: McAlister Technologies, LLC.; Date of Mailing: Apr. 14, 2010 (11 pages).
International Search Report and Written Opinion for Application No. PCT/US2010/002080; Applicant: McAlister Technologies, LLC.; Date of Mailing: Jul. 7, 2011 (8 pages).
International Search Report and Written Opinion for Application No. PCT/US2011/024778 Applicant: McAlister Technologies, LLC.; Date of Mailing: Sep. 27, 2011 (10 pages).
International Search Report and Written Opinion for Application No. PCT/US2010/054364; Applicant: McAlister Technologies, LLC.; Date of Mailing: Aug. 22, 2011, 8 pages.
Supplementary European Search Report for Application No. EP 10846264.9; Applicant McAlister Technologies, LLC.; Date of Mailin Oct. 2, 2013, 5 pages.
Related Publications (1)
Number Date Country
20130206243 A1 Aug 2013 US
Provisional Applications (1)
Number Date Country
61523181 Aug 2011 US