Method and apparatus for the utilization of waste heat from gaseous heat sources carrying substantial quantities of dust

Information

  • Patent Grant
  • 8087248
  • Patent Number
    8,087,248
  • Date Filed
    Monday, October 6, 2008
    16 years ago
  • Date Issued
    Tuesday, January 3, 2012
    13 years ago
Abstract
An apparatus, system and method for transferring heat from a hot flue gas stream from a cement plant including large particles and dust to a working fluid of a power plant via a high temperature heat transfer fluid without exposing all or most of the equipment to the erosive force of the particles and dust is disclosed where the apparatus includes a cement plant, a particle separation and heat transfer system and a power plant.
Description
BACKGROUND OF THE INVENTION

1. Field of the Invention


The present invention relates to an apparatus, system and method for transferring heat from a hot flue gas stream from a cement plant including large particles and dust to a working fluid of a power plant via a high temperature heat transfer fluid without exposing all or most of the equipment to the erosive force of the particles and dust.


More particularly, the present invention relates to an apparatus, system and method for transferring heat from a hot flue gas stream from a cement plant including large particles and dust to a working fluid of a power plant via a high temperature heat transfer fluid without exposing all or most of the equipment to the erosive force of the particles and dust, where the apparatus includes a cement plant, a particle separation and heat transfer system and a power plant.


2. Description of the Related Art


A substantial source of waste heat available for utilization in power production is waste heat from cement plants. This heat is available in the form streams of hot flue gasses and hot air.


However, a significant obstacle to the utilization of this heat source is the fact the gas and air carries a substantial quantity of abrasive dust. Because these sources usually have very small gage pressure (i.e., pressure above atmospheric pressure) it is impossible to install effective filters to separate this dust directly from the gaseous stream.


If these heat source are not cleaned of dust, the dust will cause substantial erosion of the surfaces of heat exchangers and diminishes the efficiency of heat transfer as a result of the dust being deposited as sedimentation on the heat transfer surfaces.


Thus, there is a need in the art for a efficient apparatus, system and method for transferring heat from a cement plant flue gas stream, which typically includes larger particles and dust to a working fluid stream of a power plant without exposing the equipment to the erosive forces of entrained larger particles and dust.


SUMMARY OF THE INVENTION

The present inventions provides an apparatus including a cement plant CP. The apparatus also includes a particulate separation and heat transfer system PSHTS. The apparatus also include a power plant PP. The apparatus is characterized in that the cement plant CP producing a hot gas stream including large particles and dust, the PSHTS removes the large particles and the dust to produce a heated high temperature transfer fluid stream and transfer its heat to a working fluid stream of the power plant PP where a portion of its heat is converted to a usable form of energy.


The PSHTS can include a separator C adapted to remove substantially all large particles from the hot gas stream from the cement plant CP. The PSHTS also includes a scrubber S adapted to bring the substantially large particle-free hot gas stream into heat exchange with a cooled high temperature heat transfer fluid stream to from a cooled gas stream and a heated high temperature heat transfer fluid stream including a portion of the dust from the gas stream. The PSHTS also includes a pump P adapted to raise a pressure of the heated high temperature heat transfer fluid stream to a desired high pressure. The PSHTS also includes a fan F adapted to remove substantially all of the dust from the pressurized heated high temperature heat transfer fluid stream. Finally, the PSHTS also includes a heat exchanger HE transferring heat from the substantially dust-free high temperature heat transfer fluid stream to the working fluid stream of the power plant PP to form the vaporized working fluid stream.


The scrubber S can include a packing structure and the packing structure can include a corrugated material and a non-corrugated material formed into a roll.


The PSHTS can include a separator C adapted to remove substantially all large particles from the hot gas stream from the cement plant CP. The PSHTS also includes a pump P adapted to raise a pressure of the substantially large particle-free hot gas stream to a desired high pressure. The PSHTS also includes a fan F adapted to remove substantially all of the dust from the pressurized substantially large particle-free hot gas stream to a desired high pressure to form a substantially large particle and dust free hot gas stream. The PSHTS also includes a scrubber S adapted to bring the substantially large particle and dust free hot gas stream into heat exchange with a cooled high temperature heat transfer fluid stream to from a cooled substantially large particle and dust free gas stream and a heated high temperature heat transfer fluid stream including a portion of the dust from the gas stream. The PSHTS also includes a heat exchanger HE transferring heat from the substantially dust-free high temperature heat transfer fluid to the working fluid stream of the power plant PP to form the vaporized working fluid stream.


The present invention also provides an apparatus including a cement plant CP and a particulate separation and heat transfer system PSHTS. The PSHTS comprising a separator C adapted to remove substantially all large particles from the hot gas stream from the cement plant CP, a scrubber S adapted to bring the substantially large particle-free hot gas stream into heat exchange with a cooled high temperature heat transfer fluid stream to from a cooled gas stream and a heated high temperature heat transfer fluid stream including a portion of the dust from the gas stream, a pump P adapted to raise a pressure of the heated high temperature heat transfer fluid stream to a desired high pressure, a fan F adapted to remove substantially all of the dust from the pressurized heated high temperature heat transfer fluid stream, and a heat exchanger HE transferring heat from the substantially dust-free high temperature heat transfer fluid stream to the working fluid stream of the power plant PP to form the vaporized working fluid stream. The apparatus also includes a power plant PP. The apparatus is characterized in that the cement plant CP producing a hot gas stream including large particles and dust, the PSHTS removes the large particles and the dust to produce a heated high temperature transfer fluid stream and transfer its heat to a working fluid stream of the power plant PP where a portion of its heat is converted to a usable form of energy. The scrubber S includes a packing structure and the packing structure comprises a corrugated material and a non-corrugated material formed into a roll.


The present invention also provides an apparatus including a cement plant CP and a particulate separation and heat transfer system PSHTS. The PSHTS includes a separator C adapted to remove substantially all large particles from the hot gas stream from the cement plant CP, a pump P adapted to raise a pressure of the substantially large particle-free hot gas stream to a desired high pressure, a fan F adapted to remove substantially all of the dust from the pressurized substantially large particle-free hot gas stream to a desired high pressure to form a substantially large particle and dust free hot gas stream, a scrubber S adapted to bring the substantially large particle and dust free hot gas stream into heat exchange with a cooled high temperature heat transfer fluid stream to from a cooled substantially large particle and dust free gas stream and a heated high temperature heat transfer fluid stream including a portion of the dust from the gas stream, and a heat exchanger HE transferring heat from the substantially dust-free high temperature heat transfer fluid to the working fluid stream of the power plant PP to form the vaporized working fluid stream. The apparatus also includes a power plant PP. The apparatus is characterized into that the cement plant CP producing a hot gas stream including large particles and dust, the PSHTS removes the large particles and the dust to produce a heated high temperature transfer fluid stream and transfer its heat to a working fluid stream of the power plant PP where a portion of its heat is converted to a usable form of energy. The scrubber S includes a packing structure and the packing structure comprises a corrugated material and a non-corrugated material formed into a roll.


The present invention also provides a method for extracting heat from a cement plant hot gas stream including forwarding a hot gas stream including large particles and dust from a cement plant CP to a particulate separation and heat transfer system PSHTS. The method also includes forming a heated high temperature heat transfer fluid stream substantially free of large particles and dust in the PSHTS. The method also includes transferring heat from the substantially large particle and dust free heated high temperature heat transfer fluid stream to a working fluid stream of a power plant PP to from a vaporized working fluid stream. The method also includes converting a portion of heat in the vaporized working fluid stream to a usable form of energy.


The present invention also provides a method including forwarding a hot gas stream including large particles and dust from a cement plant CP to a large particle separator C to from a substantially large particle free hot gas stream. The method also includes simultaneously forwarding the substantially large particle free hot gas stream via a bottom port into a scrubber S, and a cooled high temperature heat transfer fluid stream via an upper side port into the scrubber S to form a cooled substantially dust free gas stream exiting the scrubber S via a top port and a heated high temperature heat transfer fluid stream including substantially all of the dust from the of the substantially large particle free hot gas stream exiting the scrubber S via a lower side port. The method also includes pressurizing the dust containing, heated high temperature heat transfer fluid stream in a pump P to a desired higher pressure to form a pressurized dust containing, heated high temperature heat transfer fluid stream. The method also includes filtering the pressurized dust containing, heated high temperature heat transfer fluid stream in a filter or a plurality of filters to form a substantially dust free heated high temperature heat transfer fluid stream. The method also includes heating a working fluid stream from a power plant PP in a heat exchanger HE to form a heated working fluid stream and the cooled high temperature heat transfer fluid stream. The method also includes converting a portion of the heated working fluid stream in the power plant PP to a usable form of energy. The scrubber S includes a packing structure and the packing structure comprises a corrugated material and a non-corrugated material formed into a roll.


The present invention also provides a method including forwarding a hot gas stream including large particles and dust from a cement plant CP to a large particle separator C to from a substantially large particle free hot gas stream. The method also includes pressurizing the substantially large particle free, hot gas stream in a pump P to a desired higher pressure to form a pressurized substantially large particle free, hot gas stream. The method also includes filtering the pressurized substantially large particle free, hot gas stream in a filter or a plurality of filters to form a substantially large particle and dust free, hot gas stream. The method also includes simultaneously forwarding the substantially large particle and dust free hot gas stream via a bottom port into a scrubber S, and a cooled high temperature heat transfer fluid stream via an upper side port into the scrubber S to form a cooled substantially dust free gas stream exiting the scrubber S via a top port and a heated high temperature heat transfer fluid stream including substantially all of the dust from the of the substantially large particle free hot gas stream exiting the scrubber S via a lower side port. The method also includes heating a working fluid stream from a power plant PP in a heat exchanger HE to form a heated working fluid stream and the cooled high temperature heat transfer fluid stream. The method also includes converting a portion of the heated working fluid stream in the power plant PP to a usable form of energy. The scrubber S includes a packing structure and the packing structure comprises a corrugated material and a non-corrugated material formed into a roll.





BRIEF DESCRIPTION OF THE DRAWINGS

The invention can be better understood with reference to the following detailed description together with the appended illustrative drawings in which like elements are numbered the same:



FIG. 1 depicts an embodiment of an apparatus of this invention.



FIG. 2A depicts another embodiment of an apparatus of this invention.



FIG. 2B depicts another embodiment of an apparatus of this invention.



FIG. 2C depicts another embodiment of an apparatus of this invention.



FIG. 2D depicts another embodiment of an apparatus of this invention.



FIG. 3 depicts an embodiment of a scrubber packing of this invention.





DETAILED DESCRIPTION OF THE INVENTION

The inventor has constructed a system and method for transferring heat from a hot flue gas stream produced by a cement plant to a high temperature heat transfer fluid stream and to a working fluid stream without exposing the equipment or most of the equipment to the erosive propensity of the hot flue gas cement plant stream, with includes large particles and dust.


The subject of the proposed invention is a process and apparatus for separating dust from gaseous waste heat sources and providing effective heat transfer to the working fluid of a power cycle that utilizes such waste heat.


Referring now to FIG. 1, an embodiment of a system of this invention, generally 100, is shown to include a cement plant CP, a particulate separation and heat transfer system PSHT adapted to receive a hot gas stream S1 from the cement plant CP including large particles and dust and a power plant PP adapted to send a working fluid stream S2 through the PSHT to form a vaporized working fluid S3 from which the power plant PP converts a portion of its heat into a usable form of energy. The power plant PP can be power cycle as described in U.S. Pat. Nos. 6,829,895, 6,820,421, 6,735,948, 6,923,000, 6,769,256, 6,941,757, 6,910,334, 7,065,969, 7,264,654, 7,065,967, 6,968,690, 7,043,919, 7,398,651, 7,021,060, 7,350,471, 7,055,326, Ser. Nos. 11/227,991, 11/099,211, 11/235,654, U.S. Pat. No. 7,197,876, Ser. Nos. 11/399,306, 11/399,287 and 11/514,290, these references are incorporated by reference according to the final paragraph of this application.


Referring now to FIG. 2A, an embodiment of a system of this invention, generally 100, is shown to include a centripetal separator (a so called “cyclone” separator) C, a scrubber S, a recirculating pump P for circulated a high temperature heat transfer fluid, a filter F, and a heat exchanger HE. The centripetal separator C removed large particulate material form a hot gas stream from a cement plant CP and the heat exchanger HE is used to transfer heat from the transfer fluid to a working fluid of a power plant PP based on a thermodynamic cycle.


The system of FIG. 2A operates as follows. A hot gas stream S10 having parameters as at a point 1 from the cement plant CP passes through the cyclone separator C, where large particles of dust are separated from the hot gas stream S10 having the parameters as at the point 1 by centripetal forces to form a partially cleaned hot gas stream S12 having parameters as at a point 2. One experienced in the art can easily select a proper type and design of the cyclone separator C for this purpose.


Thereafter, the partially cleaned hot gas stream S12 having the parameters as at the point 2, still carrying a substantial quantity of dust, is sent into a bottom port 102 of the scrubber S. Simultaneously, a cooled high temperature heat transfer fluid stream S14 having parameters as at a point 4 is forwarded to an upper side port 104 of the scrubber S. The high temperature heat transfer fluid comprises any high temperature heat transfer fluid known in the art.


The partially cleaned hot gas stream S12 having the parameters as at the point 2 is cooled in the scrubber S to form a cooled gas stream S16 having parameters as at a point 3 and the cooled high temperature heat transfer fluid S14 having the parameters as at the point 4 is heated to form a heated high temperature heat transfer fluid stream S18 having parameters as at a point 5.


Thereafter, the heated high temperature heat transfer fluid S18 having the parameters as at the point 5, which has been heated by the gas stream S12 having the parameters as at the point 2, and now carries the dust that was brought into the scrubber S by the gas steam S12 having the parameters as at the point 2, leaves the scrubber S via a lower side port 106. Meanwhile, the cooled gas stream S16 having the parameters as at the point 3 leaves the scrubber S via a top port 108.


Thereafter, the high temperature heat transfer fluid S18 having the parameters as at the point 5 enters into a pump P, where its pressure is increased to form a high pressure, heated high temperature heat transfer fluid stream S20 having parameters as at a point 6. Thereafter, the high pressure, heated high temperature heat transfer fluid stream S20 having the parameters as at the point 6 passes through a filter F, where the dust present in the stream S20 is separated from the fluid to form a substantially dust free, high pressure, heated high temperature heat transfer fluid stream S22 having parameters as at a point 7. While any filter capable of separating the dust from the fluid can be used, the most suitable filters for this purpose are knitted mesh filters which can operated at very high temperatures as is well known in the art.


The substantially dust free, high pressure, heated high temperature heat transfer fluid stream S22 having the parameters as at the point 7 comprising a high temperature heat transfer fluid which has been effectively cleaned of dust, is then sent into a heat exchanger HE. In the heat exchange HE, the substantially dust free, high pressure, heated high temperature heat transfer fluid stream S22 having the parameters as at the point 7 moves in counterflow with a working fluid stream S24 having parameters as at a point 8 from a power cycle system (not shown). Here heat from the high temperature heat transfer fluid stream S22 having the parameters as at the point 7 is transferred to the working fluid stream S24 having the parameters as at the point 8 to from a vaporized working fluid stream S26 having parameters as at a point 9 of the power plant PP.


Thereafter, the now cooled high heat transfer fluid exits the heat exchanger HE as the cooled high temperature heat transfer fluid stream S14 having the parameters as at the point 4 prior to being sent into the scrubber S (see above), thus completing the system.


Referring now to FIG. 2B, an embodiment of a system of this invention, generally 200, is shown to include a centripetal separator (a so called “cyclone” separator) C, a scrubber S having a packing 300, a recirculating pump P for circulated a high temperature heat transfer fluid, a filter F, and a heat exchanger HE, in which heat is transferred for the transfer fluid to a working fluid of a power cycle (not shown).


Referring now to FIG. 3, one embodiment of the scrubber S includes the packing 300 comprising a sheet of corrugated material 302 (metal or other suitable high temperature material) layered with a sheet of non corrugated material 304, and then formed into a roll 306. However other types of scrubbers can be used as well, including scrubers with combinations of different sorts of packing.


Such a packing 306 forms multiple vertical channels 308 through which the heat transfer fluid flows down as a film on surfaces of these vertical channels 308. At the same time, the dust laden gas flows up a center of these vertical channels 308.


In such a scrubber S including the packing 306, the cleaned hot gas stream S12 having the parameters as at the point 2 is cooled to form a cooled gas stream S28 having parameters as at a point 3 and the high temperature heat transfer fluid S14 having the parameters as at the point 4 is heated to form a high temperature transfer fluid stream S30 having parameters as at a point 5. Particles of dust cannot contact the surface of the packing material 306 directly, but rather contact the surface of a film of down-flowing heat transfer fluid. Because a density of the liquid is many times higher than the density of the gas, the particles of dust that penetrate through the down-flowing film of liquid lose their kinetic energy and thus cannot cause damaging erosion of the packing material 206 of the scrubber S. In general, one experienced in the art can choose and/or design an appropriate type of scrubber S for this purpose.


Referring now to FIG. 2C, another embodiment of the system 200 is shown to include a plurality of filters Fn, here two F1 and F2 and a control valve V. The two filters F1 and F2 are installed in parallel so that one of the filters is in operation and the other is standing by. When one filter becomes overly filled by dust, operation switches to the other filter, while the first filter is cleaned and then returned to use when the second filter is overly filled. The same procedure can be used with a plurality of filters in fact, the stream.


Referring now to FIG. 2D, another embodiment of the system 200 is shown to include a relocation of the pump P and the filter F, where the pump P (now a compressor) raises a pressure of the partially cleaned gas stream S12 having the parameters as at the point 2 to form a high pressure dust laden gas stream S42 having parameters as at a point 2a. The gas stream S28 having the parameters as at the point 2a is passed through a filter F to form a substantially dust-free high pressure gas stream S44 having parameters as at a point 2b. However, such a compressor would use a great deal of power and would be subject to heavy erosion from the entrained dust. As in FIG. 2C, this embodiment can include a plurality of filters Fn with valves so that one can be in use, while the other on stand by or being cleaned.


The systems of this invention not only prevents erosion of heat transfer equipment due to dust, but also provides a substantial increase in the efficiency of heat transfer from the heat source to the power cycle. Heat transfer in the scrubber S, which is in essence a direct contact heat exchanger, is extremely efficient. Heat transfer in the heat exchanger HE, because it is performed by a fluid of much higher density than gas, is also many times more efficient than would be the case if the heat transfer was performed directly from the heat source gas to the working fluid of the power cycle.


An additional advantage of such a system is the ability to operate without interruptions to clean the surfaces of heat transfer apparatus from dust, which in turn provides for a high availability and reliability of the proposed system.


All references cited herein are incorporated by reference. Although the invention has been disclosed with reference to its preferred embodiments, from reading this description those of skill in the art may appreciate changes and modification that may be made which do not depart from the scope and spirit of the invention as described above and claimed hereafter.

Claims
  • 1. An apparatus comprising: a cement plant CP,a particulate separation and heat transfer system PSHTS comprising: a separator C adapted to remove substantially all large particles from the hot gas stream from the cement plant CP,a scrubber S adapted to bring the substantially large particle-free hot gas stream into heat exchange with a cooled high temperature heat transfer fluid stream to from a cooled gas stream and a heated high temperature heat transfer fluid stream including a portion of the dust from the gas stream, a pump P adapted to raise a pressure of the heated high temperature heat transfer fluid stream to a desired high pressure,a fan F adapted to remove substantially all of the dust from the pressurized heated high temperature heat transfer fluid stream, anda heat exchanger HE transferring heat from the substantially dust-free high temperature heat transfer fluid stream to the working fluid stream of the power plant PP to form the vaporized working fluid stream, and a power plant PP,where the cement plant CP producing a hot gas stream including large particles and dust, the PSHTS removes the large particles and the dust to produce a heated high temperature transfer fluid stream and transfer its heat to a working fluid stream of the power plant PP where a portion of its heat is converted to a usable form of energy.
  • 2. The apparatus of claim 1, wherein the scrubber S includes a packing structure.
  • 3. The apparatus of claim 2, wherein the packing structure comprises a corrugated material and a non-corrugated material formed into a roll.
  • 4. An apparatus comprising: a cement plant CP,a particulate separation and heat transfer system PSHTS comprising: a separator C adapted to remove substantially all large particles from the hot gas stream from the cement plant CP,a pump P adapted to raise a pressure of the substantially large particle-free hot gas stream to a desired high pressure,a fan F adapted to remove substantially all of the dust from the pressurized substantially large particle-free hot gas stream to a desired high pressure to form a substantially large particle and dust free hot gas stream,a scrubber S adapted to bring the substantially large particle and dust free hot gas stream into heat exchange with a cooled high temperature heat transfer fluid stream to from a cooled substantially large particle and dust free gas stream and a heated high temperature heat transfer fluid stream including a portion of the dust from the gas stream, anda heat exchanger HE transferring heat from the substantially dust-free high temperature heat transfer fluid to the working fluid stream of the power plant PP to form the vaporized working fluid stream, anda power plant PP,where the cement plant CP producing a hot gas stream including large particles and dust, the PSHTS removes the large particles and the dust to produce a heated high temperature transfer fluid stream and transfer its heat to a working fluid stream of the power plant PP where a portion of its heat is converted to a usable form of energy.
  • 5. The apparatus of claim 4, wherein the scrubber S includes a packing structure.
  • 6. The apparatus of claim 5, wherein the packing structure comprises a corrugated material and a non-corrugated material formed into a roll.
  • 7. A method comprising: forwarding a hot gas stream including large particles and dust from a cement plant CP to a large particle separator C to from a substantially large particle free hot gas stream,simultaneously forwarding the substantially large particle free hot gas stream via a bottom port into a scrubber S, and a cooled high temperature heat transfer fluid stream via an upper side port into the scrubber S to form a cooled substantially dust free gas stream exiting the scrubber S via a top port and a heated high temperature heat transfer fluid stream including substantially all of the dust from the of the substantially large particle free hot gas stream exiting the scrubber S via a lower side port,pressurizing the dust containing, heated high temperature heat transfer fluid stream in a pump P to a desired higher pressure to form a pressurized dust containing, heated high temperature heat transfer fluid stream,filtering the pressurized dust containing, heated high temperature heat transfer fluid stream in a filter or a plurality of filters to form a substantially dust free heated high temperature heat transfer fluid stream, andheating a working fluid stream from a power plant PP in a heat exchanger HE to form a heated working fluid stream and the cooled high temperature heat transfer fluid stream.
  • 8. The method of claim 7, further comprising: converting a portion of the heated working fluid stream in the power plant PP to a usable form of energy.
  • 9. The method of claim 7, wherein the scrubber S includes a packing structure.
  • 10. The method of claim 9, wherein the packing structure comprises a corrugated material and a non-corrugated material formed into a roll.
  • 11. A method comprising: forwarding a hot gas stream including large particles and dust from a cement plant CP to a large particle separator C to from a substantially large particle free hot gas stream,pressurizing the substantially large particle free, hot gas stream in a pump P to a desired higher pressure to form a pressurized substantially large particle free, hot gas stream,filtering the pressurized substantially large particle free, hot gas stream in a filter or a plurality of filters to form a substantially large particle and dust free, hot gas stream,simultaneously forwarding the substantially large particle and dust free hot gas stream via a bottom port into a scrubber S, and a cooled high temperature heat transfer fluid stream via an upper side port into the scrubber S to form a cooled substantially dust free gas stream exiting the scrubber S via a top port and a heated high temperature heat transfer fluid stream including substantially all of the dust from the of the substantially large particle free hot gas stream exiting the scrubber S via a lower side port, andheating a working fluid stream from a power plant PP in a heat exchanger HE to form a heated working fluid stream and the cooled high temperature heat transfer fluid stream.
  • 12. The method of claim 11, further comprising: converting a portion of the heated working fluid stream in the power plant PP to a usable form of energy.
  • 13. The apparatus of claim 11, wherein the scrubber S includes a packing structure.
  • 14. The apparatus of claim 13, wherein the packing structure comprises a corrugated material and a non-corrugated material formed into a roll.
US Referenced Citations (114)
Number Name Date Kind
3146761 Blodgett Sep 1964 A
3696587 Young et al. Oct 1972 A
3712073 Arenson Jan 1973 A
3867907 Marsch et al. Feb 1975 A
3979914 Weber Sep 1976 A
4010246 Steinrotter et al. Mar 1977 A
4164849 Mangus Aug 1979 A
4183225 Politte et al. Jan 1980 A
4324102 Woinsky Apr 1982 A
4326581 Rapier Apr 1982 A
4346561 Kalina Aug 1982 A
4433545 Chang Feb 1984 A
4442679 Stafford et al. Apr 1984 A
4489563 Kalina Dec 1984 A
4541245 Becker et al. Sep 1985 A
4548043 Kalina Oct 1985 A
4586340 Kalina May 1986 A
4604867 Kalina Aug 1986 A
4619809 Schludergerg Oct 1986 A
4674285 Durrant et al. Jun 1987 A
4704877 Selcukoglu Nov 1987 A
4732005 Kalina Mar 1988 A
4739713 Vier et al. Apr 1988 A
4753758 Miller Jun 1988 A
4763480 Kalina Aug 1988 A
4817392 Agrawal et al. Apr 1989 A
4819437 Dayan Apr 1989 A
4832718 Mehra May 1989 A
4899545 Kalina Feb 1990 A
4982568 Kalina Jan 1991 A
5019143 Mehrta May 1991 A
5029444 Kalina Jul 1991 A
5038567 Mortiz Aug 1991 A
5095708 Kalina Mar 1992 A
5103899 Kalina Apr 1992 A
5440882 Kalina Aug 1995 A
5450821 Kalina Sep 1995 A
5572871 Kalina Nov 1996 A
5588298 Kalina et al. Dec 1996 A
5603218 Hooper Feb 1997 A
5649426 Kalina et al. Jul 1997 A
5754613 Hashiguchi et al. May 1998 A
5784888 Termeuhlen Jul 1998 A
5797981 Collin et al. Aug 1998 A
5822990 Kalina et al. Oct 1998 A
5893410 Halbrook Apr 1999 A
5950433 Kalina et al. Sep 1999 A
5953918 Kalina et al. Sep 1999 A
6015451 Anderson et al. Jan 2000 A
6035642 Peletz et al. Mar 2000 A
6058695 Ranasinghe et al. May 2000 A
6065280 Ranasinghe et al. May 2000 A
6158220 Hansen et al. Dec 2000 A
6158221 Fancher et al. Dec 2000 A
6167705 Hansen et al. Jan 2001 B1
6170263 Chow et al. Jan 2001 B1
6195998 Hansen et al. Mar 2001 B1
6202418 Gabrielli et al. Mar 2001 B1
6223535 Kitz May 2001 B1
6347520 Ranashinghe et al. Feb 2002 B1
6464492 Guarco et al. Oct 2002 B1
6735948 Kalina May 2004 B1
6769256 Kalina Aug 2004 B1
6820421 Kalina Nov 2004 B2
6829895 Kalina Dec 2004 B2
6910334 Kalina Jun 2005 B2
6923000 Kalina Aug 2005 B2
6941757 Kalina Sep 2005 B2
6964168 Pierson et al. Nov 2005 B1
6968690 Kalina Nov 2005 B2
7021060 Kalina Apr 2006 B1
7043919 Kalina May 2006 B1
7055326 Kalina Jun 2006 B1
7065967 Kalina Jun 2006 B2
7065969 Kalina Jun 2006 B2
7104784 Hasegawa et al. Sep 2006 B1
7197876 Kalina Apr 2007 B1
7264654 Kalina Sep 2007 B2
7340897 Zimron et al. Mar 2008 B2
7350471 Kalina Apr 2008 B2
7398651 Kalina Jul 2008 B2
20010054288 Bronicki et al. Dec 2001 A1
20030154718 Nayar Aug 2003 A1
20030167769 Bharathan Sep 2003 A1
20040050048 Kalina Mar 2004 A1
20040055302 Kalina Mar 2004 A1
20040069015 Paradowski Apr 2004 A1
20040148935 Kalina Aug 2004 A1
20040182084 Kalina Sep 2004 A1
20050050891 Kalina Mar 2005 A1
20050061654 Kalina Mar 2005 A1
20050066661 Kalina Mar 2005 A1
20050072152 Suzuki et al. Apr 2005 A1
20050183418 Kalina Aug 2005 A1
20050235645 Kalina Oct 2005 A1
20060096288 Kalina May 2006 A1
20060096289 Kalina May 2006 A1
20060096290 Kalina May 2006 A1
20060165394 Kalina Jul 2006 A1
20060199120 Kalina Sep 2006 A1
20070056284 Kalina Mar 2007 A1
20070068161 Kalina Mar 2007 A1
20070234722 Kalina Oct 2007 A1
20070234750 Kalina Oct 2007 A1
20080000225 Kalina Jan 2008 A1
20080053095 Kalina Mar 2008 A1
20100083662 Kalina Apr 2010 A1
20100101227 Kalina Apr 2010 A1
20100122533 Kalina May 2010 A1
20100146973 Kalina Jun 2010 A1
20100205962 Kalina Aug 2010 A1
20110024084 Kalina Feb 2011 A1
20110067400 Kalina Mar 2011 A1
20110174296 Kalina Jul 2011 A1
Foreign Referenced Citations (33)
Number Date Country
1925234 Dec 1970 DE
3933731 Apr 1990 DE
10335143 Feb 2005 DE
0280453 Aug 1988 EP
0472020 Feb 1992 EP
0652368 May 1995 EP
0694678 Jan 1996 EP
0740052 Oct 1996 EP
0949406 Oct 1999 EP
0952316 Oct 1999 EP
1058069 Dec 2000 EP
1217299 Jun 2002 EP
1254696 Nov 2002 EP
1331444 Jul 2003 EP
1936129 Jun 2008 EP
1111784 Mar 1956 FR
2821351 Aug 2002 FR
2885169 Nov 2006 FR
340780 Jan 1931 GB
504114 Apr 1939 GB
798786 Jul 1958 GB
2335953 Oct 1999 GB
61041850 Feb 1986 JP
06026441 Feb 1994 JP
100846128 Jul 2008 KR
WO9407095 Mar 1994 WO
WO0165101 Sep 2001 WO
WO03048529 Jun 2003 WO
WO04001288 Dec 2003 WO
WO2004033962 Apr 2004 WO
WO2004070173 Aug 2004 WO
WO2004102082 Nov 2004 WO
WO2004109075 Dec 2004 WO
Related Publications (1)
Number Date Country
20100083662 A1 Apr 2010 US