[Not Applicable]
This specification is related to U.S. Ser. Nos.:
This specification is also related to U.S. Ser. Nos:
Radio frequency (“RF”) energy, also known as electromagnetic energy, is used in a wide range of applications. Systems employing RF energy may include, for example, a source and a load receiving RF energy from the source. Some systems use the RF energy to heat a material. In such systems the load may be in the form of a susceptor that converts the RF energy to heat. Further, such systems often use electromagnetic energy at microwave frequencies.
Matching the output impedance of the source with the input impedance of the load may provide efficient transfer of RF energy to the load. When the impedances are mismatched, RF energy is reflected back from the load to the RF source. However, such impedance matching may be difficult to implement in systems having a load with an unknown and/or time varying impedance.
In systems where the load impedance is unknown or varies with time an isolator may be used between the RF energy source and the load to prevent the reflected energy from returning to the source. However, when the mismatch is mitigated with such an isolator, the reflected RF energy is dissipated in a local dummy load and, thus, is wasted. In high power systems, the dissipation of this wasted power may be substantial and give rise to cooling issues that may increase the cost of manufacturing and operating the system.
A waveguide matching unit is disclosed. The waveguide matching unit includes a gyrator having first and second waveguides. The first waveguide includes first and second ports that are connected by a first waveguide channel. An RF signal propagating through the first waveguide channel is phase shifted by about 90° when propagating from the first to the second port, and is phase shifted by about 0° when propagating from the second port to the first port. The second waveguide includes third and fourth ports that are connected by a second waveguide channel. An RF signal propagating through the second waveguide channel is phase shifted by about 0° when propagating from the third to the fourth port, and is phase shifted by about 90° when propagating from the fourth port to the third port.
RF signals provided to the load 105 at port 135 of the output coupler 120 are both absorbed and reflected by the load 105. Power absorption and reflection is dependent on the impedance of the load 105 and, in particular, matching of the load impedance with the output impedance of output coupler 120. Reflected RF signals are returned from the load 105 to the third port 135 of the output coupler 120. The reflected RF signals received by the output coupler 120 are passed to the waveguide matching unit 115 from the first port 125 of the output coupler 120 to the second port 145 of the waveguide matching unit 115. The waveguide matching unit 115 phase shifts the reflected RF signal received at port 145 by about 90°. The reflected RF signal, now shifted by about 90°, is provided as a reflected RF feedback signal from the third port 150 of the waveguide matching unit 115 to the second port 130 of the output coupler 120.
In
RF power reflected from load 105 is returned from the load 105 to port 145 of the waveguide matching unit 115. These reflected RF signals, in turn, are returned to the gyrator 165 at ports 170 and, therefrom, to the hybrid coupler 155 at port 160. The gyrator 165 and hybrid coupler 155 execute phase shifting operations on the reflected RF signal received at combiner 175 to generate a reflected RF feedback signal at port 150 of the waveguide matching unit 115 for provision to the second port 130 of the output coupler 120. The output coupler 120 combines the power of the forward path RF output signal at port 125 with the power of the reflected RF feedback signal at port 130 so that the power of both the forward RF signal and the reflected RF signal are provided to the load 105. Still further, the phase shifting operations executed by the waveguide matching unit 115 substantially minimize the amount of RF power reflected back to the RF source 110 from the load 105. Instead, substantially all of the reflected energy is provided at port 150 of the waveguide matching unit 115 while substantially little of the reflected energy is directed back to the RF source 110.
With reference to
The gyrator 165 of
When the forward and reflected RF signals propagate through the illustrated components in the foregoing manner, the RF signal from port 207 of the hybrid coupler 155 and the RF signal from port 223 of the Magic T combiner 175 may be provided to the output coupler 120 to generate the output signal to the load 105. The power provided at port 223 has a power magnitude that closely corresponds to the magnitude of the power of the RF signal provided from the source 110. Additionally, substantially all of the reflected power is provided from port 207 of the hybrid coupler 155 and returned to the output coupler 120 from port 206 of the hybrid coupler 155.
As shown in Table 1, the RF power of the signals at nodes 407 and 410 are combined at the output of the waveguide matching unit 115. This results in an output signal of
Consequently, substantially all of the power provided at node 400 propagates along the forward propagation path to node 415, but is phase shifted by
Nodes 417, 420, 423, 425, 427, 430, and 433 are associated with the reflected power propagation path through the waveguide matching unit 115. The power phasors at each of the reflected power propagation nodes are set forth in Table 2. The magnitude and angle of the power phasors in Table 2 are provided based on the assumption that the power of the RF signal returned to node 417 is 1∠0.
As shown in Table 2, the power of the reflected RF signal returned to the source 110 has been minimized. In the illustrated example, the total reflected power is 0. Also, substantially all of the reflected power is returned to the output coupler 120. Here, the power returned to the output coupler 120 is approximately
The output coupler 120 may be implemented in a number of different manners. For example, it may be in the form of a 90° hybrid coupler having one of its ports connected to a
stub that provides an infinite impedance at that port. Such a coupler 120 may be designed as a three port device having the following scatter matrix characteristics:
The scatter matrix may alternatively be designed to have the following characteristics:
The waveguide matching unit 115 may be implemented as a generally integrated unit using passive components. Generally stated, the waveguide matching unit 115 may be formed from one or more pole pieces, one or more ferrite strips, one or more magnets, and at least one body portion. Waveguide channels may be disposed along the length of the body portion. The pole pieces, ferrite strips, and magnets may be supported by the body portion and disposed about the waveguide channels to achieve the desired propagation characteristics.
Multiple views of one half of a body portion 500 are shown in
Multiple views of another half of a body portion 600 are shown in
The gyrator sections 510 and 610 include grooves 530 and 630 that are formed to accept pole pieces and magnets. These components are generally disposed proximate the gyrator sections 510 and 610 and facilitate providing the static magnetic field used, at least in part, to cause the phase shifting operations executed by the gyrator 165.
The circular polarization of RF signals propagating along the length L of the waveguide channel depends on its direction of propagation with respect to a reference port. The propagation of an RF signal in a first direction along length L is viewed as a right-hand circular polarized signal with respect to the reference port of the waveguide channel while the propagation of an RF signal in a second, opposite direction along the length L is viewed as a left-hand circular polarized signal with respect to the reference port.
In the gyrator shown in
In operation, the constant magnetic field generated by the magnet 705 or 815 is used to generate a static magnetic field that aligns the magnetic dipoles of the ferromagnetic material of a waveguide channel so that the net magnetic dipole moments are substantially constant. When the RF signal passes through the waveguide channel, the alternating magnetic field generated by the RF signal causes the magnetic dipoles of the ferrite strips to precess at a frequency corresponding to the frequency of the alternating magnetic field. With the ferrite strips displaced from the side walls of the waveguide channel, the precession results in phase shifting properties through the waveguide channel that are dependent on whether the RF signal propagating through the waveguide channel is right-hand polarized or left-hand polarized with respect to the reference port.
The heating vessel 1320 is used to heat its contents based on microwave RF energy received from an antenna 1325. The RF power is provided from RF source 110 through the waveguide matching unit 115. The RF power is provided to the output coupler 120 and, therefrom, to the antenna 1325 for provision to the heating vessel 1320. The antenna 1325 may be a separate component positioned above, below, or adjacent to the heating vessel 1320, or it may comprise part of the heating vessel 1320. Optionally, a further component, susceptor particle removal component 1330 may be provided, which is capable of removing substantially all of the second substance comprising susceptor particles from the first substance. Susceptor particle removal component 1330 may comprise, for example, a magnet, centrifuge, or filter capable of removing the susceptor particles. Removed susceptor particles may then be optionally reused in the mixer 1315. A heated petroleum product 7 may be stored or transported at 1335.
Number | Name | Date | Kind |
---|---|---|---|
2371459 | Mittelmann | Mar 1945 | A |
2685930 | Albaugh | Aug 1954 | A |
3497005 | Pelopsky | Feb 1970 | A |
3848671 | Kern | Nov 1974 | A |
3954140 | Hendrick | May 1976 | A |
3988036 | Fisher | Oct 1976 | A |
3991091 | Driscoll | Nov 1976 | A |
4035282 | Stuchberry et al. | Jul 1977 | A |
4042487 | Seguchi | Aug 1977 | A |
4087781 | Grossi et al. | May 1978 | A |
4136014 | Vermeulen | Jan 1979 | A |
4140179 | Kasevich et al. | Feb 1979 | A |
4140180 | Bridges et al. | Feb 1979 | A |
4144935 | Bridges et al. | Mar 1979 | A |
4146125 | Sanford et al. | Mar 1979 | A |
4196329 | Rowland et al. | Apr 1980 | A |
4295880 | Horner | Oct 1981 | A |
4300219 | Joyal | Nov 1981 | A |
4301865 | Kasevich et al. | Nov 1981 | A |
4328324 | Kock | May 1982 | A |
4373581 | Toellner | Feb 1983 | A |
4396062 | Iskander | Aug 1983 | A |
4404123 | Chu | Sep 1983 | A |
4410216 | Allen | Oct 1983 | A |
4425227 | Smith | Jan 1984 | A |
4449585 | Bridges et al. | May 1984 | A |
4456065 | Heim | Jun 1984 | A |
4457365 | Kasevich et al. | Jul 1984 | A |
4470459 | Copland | Sep 1984 | A |
4485869 | Sresty | Dec 1984 | A |
4487257 | Dauphine | Dec 1984 | A |
4508168 | Heeren | Apr 1985 | A |
4514305 | Filby | Apr 1985 | A |
4524827 | Bridges | Jun 1985 | A |
4531468 | Simon | Jul 1985 | A |
4583586 | Fujimoto et al. | Apr 1986 | A |
4620593 | Haagensen | Nov 1986 | A |
4622496 | Dattili | Nov 1986 | A |
4645585 | White | Feb 1987 | A |
4678034 | Eastlund | Jul 1987 | A |
4703433 | Sharrit | Oct 1987 | A |
4790375 | Bridges | Dec 1988 | A |
4817711 | Jeambey | Apr 1989 | A |
4882984 | Eves, II | Nov 1989 | A |
4892782 | Fisher et al. | Jan 1990 | A |
5046559 | Glandt | Sep 1991 | A |
5055180 | Klaila | Oct 1991 | A |
5065819 | Kasevich | Nov 1991 | A |
5082054 | Kiamanesh | Jan 1992 | A |
5136249 | White | Aug 1992 | A |
5199488 | Kasevich | Apr 1993 | A |
5233306 | Misra | Aug 1993 | A |
5236039 | Edelstein | Aug 1993 | A |
5251700 | Nelson | Oct 1993 | A |
5293936 | Bridges | Mar 1994 | A |
5304767 | MacGaffigan | Apr 1994 | A |
5315561 | Grossi | May 1994 | A |
5370477 | Bunin | Dec 1994 | A |
5378879 | Monovoukas | Jan 1995 | A |
5506592 | MacDonald | Apr 1996 | A |
5582854 | Nosaka | Dec 1996 | A |
5621844 | Bridges | Apr 1997 | A |
5631562 | Cram | May 1997 | A |
5746909 | Calta | May 1998 | A |
5910287 | Cassin | Jun 1999 | A |
5923299 | Brown et al. | Jul 1999 | A |
6045648 | Palmgren et al. | Apr 2000 | A |
6046464 | Schetzina | Apr 2000 | A |
6055213 | Rubbo | Apr 2000 | A |
6063338 | Pham | May 2000 | A |
6097262 | Combellack | Aug 2000 | A |
6106895 | Usuki | Aug 2000 | A |
6112273 | Kau | Aug 2000 | A |
6184427 | Klepfer | Feb 2001 | B1 |
6229603 | Coassin | May 2001 | B1 |
6232114 | Coassin | May 2001 | B1 |
6301088 | Nakada | Oct 2001 | B1 |
6303021 | Winter | Oct 2001 | B2 |
6348679 | Ryan et al. | Feb 2002 | B1 |
6360819 | Vinegar | Mar 2002 | B1 |
6432365 | Levin | Aug 2002 | B1 |
6603309 | Forgang | Aug 2003 | B2 |
6613678 | Sakaguchi | Sep 2003 | B1 |
6614059 | Tsujimura et al. | Sep 2003 | B1 |
6649888 | Ryan et al. | Nov 2003 | B2 |
6712136 | de Rouffignac | Mar 2004 | B2 |
6808935 | Levin | Oct 2004 | B2 |
6923273 | Terry | Aug 2005 | B2 |
6932155 | Vinegar | Aug 2005 | B2 |
6967589 | Peters | Nov 2005 | B1 |
6992630 | Parsche | Jan 2006 | B2 |
7046584 | Sorrells | May 2006 | B2 |
7079081 | Parsche et al. | Jul 2006 | B2 |
7091460 | Kinzer | Aug 2006 | B2 |
7109457 | Kinzer | Sep 2006 | B2 |
7115847 | Kinzer | Oct 2006 | B2 |
7138937 | Macdonald | Nov 2006 | B1 |
7147057 | Steele | Dec 2006 | B2 |
7172038 | Terry | Feb 2007 | B2 |
7205947 | Parsche | Apr 2007 | B2 |
7312428 | Kinzer | Dec 2007 | B2 |
7322416 | Burris, II | Jan 2008 | B2 |
7337980 | Schaedel | Mar 2008 | B2 |
7438807 | Garner et al. | Oct 2008 | B2 |
7441597 | Kasevich | Oct 2008 | B2 |
7461693 | Considine et al. | Dec 2008 | B2 |
7484561 | Bridges | Feb 2009 | B2 |
7562708 | Cogliandro | Jul 2009 | B2 |
7623804 | Sone | Nov 2009 | B2 |
20020032534 | Regier | Mar 2002 | A1 |
20040031731 | Honeycutt | Feb 2004 | A1 |
20050199386 | Kinzer | Sep 2005 | A1 |
20050274513 | Schultz | Dec 2005 | A1 |
20060038083 | Criswell | Feb 2006 | A1 |
20070108202 | Kinzer | May 2007 | A1 |
20070131591 | Pringle | Jun 2007 | A1 |
20070137852 | Considine et al. | Jun 2007 | A1 |
20070137858 | Considine et al. | Jun 2007 | A1 |
20070187089 | Bridges | Aug 2007 | A1 |
20070261844 | Cogliandro et al. | Nov 2007 | A1 |
20080073079 | Tranquilla | Mar 2008 | A1 |
20080143330 | Madio | Jun 2008 | A1 |
20090009410 | Dolgin et al. | Jan 2009 | A1 |
20090242196 | Pao | Oct 2009 | A1 |
Number | Date | Country |
---|---|---|
1199573 | Jan 1986 | CA |
2678473 | Aug 2009 | CA |
10 2008 022176 | Nov 2009 | DE |
0 135 966 | Apr 1985 | EP |
0418117 | Mar 1991 | EP |
0563999 | Oct 1993 | EP |
1106672 | Jun 2001 | EP |
1586066 | Feb 1970 | FR |
2925519 | Jun 2009 | FR |
56050119 | May 1981 | JP |
2246502 | Oct 1990 | JP |
WO 2007133461 | Nov 2007 | WO |
WO2008011412 | Jan 2008 | WO |
WO 2008030337 | Mar 2008 | WO |
WO2008098850 | Aug 2008 | WO |
WO2009027262 | Mar 2009 | WO |
WO2009114934 | Sep 2009 | WO |
Entry |
---|
PCT Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority, or the Declaration, in PCT/US2010/025761, dated Feb. 9, 2011. |
PCT Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority, or the Declaration, in PCT/US2010/057090, dated Mar. 3, 2011. |
“Control of Hazardous Air Pollutants From Mobile Sources”, U.S. Environmental Protection Agency, Mar. 29, 2006. p. 15853 (http://www.epa.gov/EPA-AIR/2006/March/Day-29/a2315b.htm). |
Von Hippel, Arthur R., Dielectrics and Waves, Copyright 1954, Library of Congress Catalog Card No. 54-11020, Contents, pp. xi-xii; Chapter II, Section 17, “Polyatomic Molecules”, pp. 150-155; Appendix C-E, pp. 273-277, New York, John Wiley and Sons. |
United States Patent and Trademark Office, Non-final Office action issued in U.S. Appl. No. 12/396,247, dated Mar. 28, 2011. |
United States Patent and Trademark Office, Non-final Office action issued in U.S. Appl. No. 12/396,284, dated Apr. 26, 2011. |
Patent Cooperation Treaty, Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority, or the Declaration, in PCT/US2010/025808, dated Apr. 5, 2011. |
Deutsch, C.V., McLennan, J.A., “The Steam Assisted Gravity Drainage (SAGD) Process,” Guide to SAGD (Steam Assisted Gravity Drainage) Reservoir Characterization Using Geostatistics, Centre for Computational Statistics (CCG), Guidebook Series, 2005, vol. 3; p. 2, section 1.2, published by Centre for Computational Statistics, Edmonton, AB, Canada. |
Marcuvitz, Nathan, Waveguide Handbook; 1986; Institution of Engineering and Technology, vol. 21 of IEE Electromagnetic Wave series, ISBN 0863410588, Chapter 1, pp. 1-54, published by Peter Peregrinus Ltd. on behalf of the Institution of Electrical Engineers, © 1986. |
Marcuvitz, Nathan, Waveguide Handbook; 1986; Institution of Engineering and Technology, vol. 21 of IEE Electromagnetic Wave series, ISBN 0863410588, Chapter 2.3, pp. 66-72, published by Peter Peregrinus Ltd. on behalf of the Institution of Electrical Engineers, © 1986. |
“Oil sands.” Wikipedia, the free encyclopedia. Retrieved from the Internet from: http://en.wikipedia.org/w/index.php?title=Oil—sands&printable=yes, Feb. 16, 2009. |
Sahni et al., “Electromagnetic Heating Methods for Heavy Oil Reservoirs.” 2000 Society of Petroleum Engineers SPE/AAPG Western Regional Meeting, Jun. 19-23, 2000. |
Power et al., “Froth Treatment: Past, Present & Future.” Oil Sands Symposium, University of Alberta, May 3-5, 2004. |
Flint, “Bitumen Recovery Technology a Review of Long Term R&D Opportunities.” Jan. 31, 2005. LENEF Consulting (1994) Limited. |
“Froth Flotation.” Wikipedia, the free encyclopedia. Retrieved from the internet from: http://en.wikipedia.org/wiki/Froth—flotation, Apr. 7, 2009. |
“Relative static permittivity.” Wikipedia, the free encyclopedia. Retrieved from the Internet from http://en.wikipedia.org/w/index/php?title=Relative—static—permittivity&printable=yes, Feb. 12, 2009. |
“Tailings.” Wikipedia, the free encyclopedia. Retrieved from the Internet from http://en.wikipedia.org/w/index.php?title=Tailings&printable=yes, Feb. 12, 2009. |
“Technologies for Enhanced Energy Recovery” Executive Summary, Radio Frequency Dielectric Heating Technologies for Conventional and Non-Conventional Hydrocarbon-Bearing Formulations, Quasar Energy, LLC, Sep. 3, 2009, pp. 1-6. |
Burnhan, “Slow Radio-Frequency Processing of Large Oil Shale Volumes to Produce Petroleum-like Shale Oil,” U.S. Department of Energy, Lawrence Livermore National Laboratory, Aug. 20, 2003, UCRL-ID-155045. |
Sahni et al., “Electromagnetic Heating Methods for Heavy Oil Reservoirs,” U.S. Department of Energy, Lawrence Livermore National Laboratory, May 1, 2000, UCL-JC-138802. |
Abernethy, “Production Increase of Heavy Oils by Electromagnetic Heating,” The Journal of Canadian Petroleum Technology, Jul.-Sep. 1976, pp. 91-97. |
Sweeney, et al., “Study of Dielectric Properties of Dry and Saturated Green River Oil Shale,” Lawrence Livermore National Laboratory, Mar. 26, 2007, revised manuscript Jun. 29, 2007, published on Web Aug. 25, 2007. |
Kinzer, “Past, Present, and Pending Intellectual Property for Electromagnetic Heating of Oil Shale,” Quasar Energy LLC, 28th Oil Shale Symposium Colorado School of Mines, Oct. 13-15, 2008, pp. 1-18. |
Kinzer, “Past, Present, and Pending Intellectual Property for Electromagnetic Heating of Oil Shale,” Quasar Energy LLC, 28th Oil Shale Symposium Colorado School of Mines, Oct. 13-15, 2008, pp. 1-33. |
A. Godio. “Open ended-coaxial Cable Measurements of Saturated Sandy Soils”, American Journal of Environmental Sciences, vol. 3, No. 3, 2007, pp. 175-182, XP002583544. |
Carlson et al., “Development of the I IT Research Institute RF Heating Process for In Situ Oil Shale/Tar Sand Fuel Extraction—An Overview”, Apr. 1981. |
PCT International Search Report and Written Opinion in PCT/US2010/025763, Jun. 4, 2010. |
PCT International Search Report and Written Opinion in PCT/US2010/025807, Jun. 17, 2010. |
PCT International Search Report and Written Opinion in PCT/US2010/025804, Jun. 30, 2010. |
PCT International Search Report and Written Opinion in PCT/US2010/025769, Jun. 10, 2010. |
PCT International Search Report and Written Opinion in PCT/US2010/025765, Jun. 30, 2010. |
PCT International Search Report and Written Opinion in PCT/US2010/025772, Aug. 9, 2010. |
U.S. Appl. No. 12/886,338, filed Sep. 20, 2010 (unpublished). |
Butler, R.M. “Theoretical Studies on the Gravity Drainage of Heavy Oil During In-Situ Steam Heating”, Can J. Chem Eng, vol. 59, 1981. |
Butler, R. and Mokrys, I., “A New Process (VAPEX) for Recovering Heavy Oils Using Hot Water and Hydrocarbon Vapour”, Journal of Canadian Petroleum Technology, 30(1), 97-106, 1991. |
Butler, R. and Mokrys, I., “Recovery of Heavy Oils Using Vapourized Hydrocarbon Solvents: Further Development of the VAPEX Process”, Journal of Canadian Petroleum Technology, 32(6), 56-62, 1993. |
Butler, R. and Mokrys, I., “Closed Loop Extraction Method for the Recovery of Heavy Oils and Bitumens Underlain by Aquifers: the VAPEX Process”, Journal of Canadian Petroleum Technology, 37(4), 41-50, 1998. |
Das, S.K. and Butler, R.M., “Extraction of Heavy Oil and Bitumen Using Solvents at Reservoir Pressure” CIM 95-118, presented at the CIM 1995 Annual Technical Conference in Calgary, Jun. 1995. |
Das, S.K. and Butler, R.M., “Diffusion Coefficients of Propane and Butane in Peace River Bitumen” Canadian Journal of Chemical Engineering, 74, 988-989, Dec. 1996. |
Das, S.K. and Butler, R.M., “Mechanism of the Vapour Extraction Process for Heavy Oil and Bitumen”, Journal of Petroleum Science and Engineering, 21, 43-59, 1998. |
Dunn, S.G., Nenniger, E. and Rajan, R., “A Study of Bitumen Recovery by Gravity Drainage Using Low Temperature Soluble Gas Injection”, Canadian Journal of Chemical Engineering, 67, 978-991, Dec. 1989. |
Frauenfeld, T., Lillico, D., Jossy, C., Vilcsak, G., Rabeeh, S. and Singh, S., “Evaluation of Partially Miscible Processes for Alberta Heavy Oil Reservoirs”, Journal of Canadian Petroleum Technology, 37(4), 17-24, 1998. |
Mokrys, I., and Butler, R., “In Situ Upgrading of Heavy Oils and Bitumen by Propane Deasphalting: The VAPEX Process”, SPE 25452, presented at the SPE Production Operations Symposium held in Oklahoma City OK USA, Mar. 21-23, 1993. |
Nenniger, J.E. and Dunn, S.G., “How Fast is Solvent Based Gravity Drainage?”, CIPC 2008-139, presented at the Canadian International Petroleum Conference, held in Calgary, Alberta Canada, Jun. 17-19, 2008. |
Nenniger, J.E. and Gunnewick, L., “Dew Point vs. Bubble Point: A Misunderstood Constraint on Gravity Drainage Processes”, CIPC 2009-065, presented at the Canadian International Petroleum Conference, held in Calgary, Alberta Canada, Jun. 16-18, 2009. |
Bridges, J.E., Sresty, G.C., Spencer, H.L. and Wattenbarger, R.A., “Electromagnetic Stimulation of Heavy Oil Wells”, 1221-1232, Third International Conference on Heavy Oil Crude and Tar Sands, UNITAR/UNDP, Long Beach California, USA Jul. 22-31, 1985. |
Carrizales, M.A., Lake, L.W. and Johns, R.T., “Production Improvement of Heavy Oil Recovery by Using Electromagnetic Heating”, SPE115723, presented at the 2008 SPE Annual Technical Conference and Exhibition held in Denver, Colorado, USA, Sep. 21-24, 2008. |
Carrizales, M. and Lake, L.W., “Two-Dimensional COMSOL Simulation of Heavy-Oil Recovery by Electromagnetic Heating”, Proceedings of the COMSOL Conference Boston, 2009. |
Chakma, A. and Jha, K.N., “Heavy-Oil Recovery from Thin Pay Zones by Electromagnetic Heating”, SPE24817, presented at the 67th Annual Technical Conference and Exhibition of the Society of Petroleum Engineers held in Washington, DC, Oct. 4-7, 1992. |
Chhetri, A.B. and Islam, M.R., “A Critical Review of Electromagnetic Heating for Enhanced Oil Recovery”, Petroleum Science and Technology, 26(14), 1619-1631, 2008. |
Chute, F.S., Vermeulen, F.E., Cervenan, M.R. and McVea, F.J., “Electrical Properties of Athabasca Oil Sands”, Canadian Journal of Earth Science, 16, 2009-2021, 1979. |
Davidson, R.J., “Electromagnetic Stimulation of Lloydminster Heavy Oil Reservoirs”, Journal of Canadian Petroleum Technology, 34(4), 15-24, 1995. |
Hu, Y., Jha, K.N. and Chakma, A., “Heavy-Oil Recovery from Thin Pay Zones by Electromagnetic Heating”, Energy Sources, 21(1-2), 63-73, 1999. |
Kasevich, R.S., Price, S.L., Faust, D.L. and Fontaine, M.F., “Pilot Testing of a Radio Frequency Heating System for Enhanced Oil Recovery from Diatomaceous Earth”, SPE28619, presented at the SPE 69th Annual Technical Conference and Exhibition held in New Orleans LA, USA, Sep. 25-28, 1994. |
Koolman, M., Huber, N., Diehl, D. and Wacker, B., “Electromagnetic Heating Method to Improve Steam Assisted Gravity Drainage”, SPE117481, presented at the 2008 SPE International Thermal Operations and Heavy Oil Symposium held in Calgary, Alberta, Canada, Oct. 20-23, 2008. |
Kovaleva, L.A., Nasyrov, N.M. and Khaidar, A.M., Mathematical Modelling of High-Frequency Electromagnetic Heating of the Bottom-Hole Area of Horizontal Oil Wells, Journal of Engineering Physics and Thermophysics, 77(6), 1184-1191, 2004. |
McGee, B.C.W. and Donaldson, R.D., “Heat Transfer Fundamentals for Electro-thermal Heating of Oil Reservoirs”, CIPC 2009-024, presented at the Canadian International Petroleum Conference, held in Calgary, Alberta, Canada Jun. 16-18, 2009. |
Ovalles, C., Fonseca, A., Lara, A., Alvarado, V., Urrecheaga, K, Ranson, A. and Mendoza, H., “Opportunities of Downhole Dielectric Heating in Venezuela: Three Case Studies Involving Medium, Heavy and Extra-Heavy Crude Oil Reservoirs” SPE78980, presented at the 2002 SPE International Thermal Operations and Heavy Oil Symposium and International Horizontal Well Technology Conference held in Calgary, Alberta, Canada, Nov. 4-7, 2002. |
Rice, S.A., Kok, A.L. and Neate, C.J., “A Test of the Electric Heating Process as a Means of Stimulating the Productivity of an Oil Well in the Schoonebeek Field”, CIM 92-04 presented at the CIM 1992 Annual Technical Conference in Calgary, Jun. 7-10, 1992. |
Sahni, A. and Kumar, M. “Electromagnetic Heating Methods for Heavy Oil Reservoirs”, SPE62550, presented at the 2000 SPE/AAPG Western Regional Meeting held in Long Beach, California, Jun. 19-23, 2000. |
Sayakhov, F.L., Kovaleva, L.A. and Nasyrov, N.M., “Special Features of Heat and Mass Exchange in the Face Zone of Boreholes upon Injection of a Solvent with a Simultaneous Electromagnetic Effect”, Journal of Engineering Physics and Thermophysics, 71(1), 161-165, 1998. |
Spencer, H.L., Bennett, K.A. and Bridges, J.E. “Application of the IITRI/Uentech Electromagnetic Stimulation Process to Canadian Heavy Oil Reservoirs” Paper 42, Fourth International Conference on Heavy Oil Crude and Tar Sands, UNITAR/UNDP, Edmonton, Alberta, Canada, Aug. 7-12, 1988. |
Sresty, G.C., Dev, H., Snow, R.H. and Bridges, J.E., “Recovery of Bitumen from Tar Sand Deposits with the Radio Frequency Process”, SPE Reservoir Engineering, 85-94, Jan. 1986. |
Vermulen, F. and McGee, B.C.W., “In Situ Electromagnetic Heating for Hydrocarbon Recovery and Environmental Remediation”, Journal of Canadian Petroleum Technology, Distinguished Author Series, 39(8), 25-29, 2000. |
Schelkunoff, S.K. and Friis, H.T., “Antennas: Theory and Practice”, John Wiley & Sons, Inc., London, Chapman Hall, Limited, pp. 229-244, 351-353, 1952. |
Gupta, S.C., Gittins, S.D., “Effect of Solvent Sequencing and Other Enhancement on Solvent Aided Process”, Journal of Canadian Petroleum Technology, vol. 46, No. 9, pp. 57-61, Sep. 2007. |
Number | Date | Country | |
---|---|---|---|
20120092086 A1 | Apr 2012 | US |