IL55574A

Method and means for in situ heat processing of hydrocarbonaceous earth formations

Abstract

This record has no abstract on file.

IL55574A, drawing sheet 1
Sheet 1 of 22

Term

No projected expiry on record.

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  2. Filed
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37 claims: 36 independent, 1 dependent

  1. 1
    WAT IS CLAIMED IS:\ί<_ 1. A system for in situ heat processing of an oil shale, tar sand, or like hydrocarbonaceous earth formation comprising: a plurality of conductive means inserted in said formation and bounding a particular volume of said formation;electrical excitation means, coupled to the conductive means, for establishing alternating electric fields in said volume;the frequency of said excitation means being selected as a function of the volume dimensions so as to establish substantially non-radiating electric fields which are substantially confined in said volume, whereby volumetric dielectric heating of the formation will occur to effect approximately uniform heating of said volume.
  2. 2
    A system as defined by Claim 1 wherein the frequency of said excitation is in the radio frequency range.
  3. 3
    A system as defined in Claim 2 in which the excitation frequency is in the range of 0.03 MHz to 40 MHz.
  4. 4
    A system as defined by any of the preceding claims wherein said excitation is applied as a voltage as between different groups of said conductive means.
  5. 5
    A system as defined by any of the preceding claims wherein said electrical excitation means is a source of current applied to at least one current loop in said volume.
  6. 6
    A system as defined by any of the preceding claims wherein said electrical excitation is applied across at least one electrical dipole in said volume.
  7. 7
    A system as defined by any of the preceding claims wherein the frequency of said excitation is selected as a function of the electrical lossiness of the formation in said volume to be sufficiently low such that the 1/e attenuation distance of the electric field in any direction in said volume is more than the physical, dimension of said volume in uhat directiua.
  8. 8
    A system as defined by any of the preceding claims wherein said conductive means comprise opposing spaced rows of conductors disposed in opposing spaced rows of boreholes in said formation«
  9. 9
    A system as defined by Claim 8 wherein said rows of conductors comprise three spaced rows of elongated conductors.
  10. 10
    A system as defined by Claim 9 wherein said rows of conductors are inserted in said formation at angles such that said rows are closer together at far ends thereof to compensate for attenuation of the electrical field at said far ends.
  11. 11
    A system as defined by any of the preceding claims further comprising means for modifying the electric field pattern so as to average the electric field intensity in said volume to enhance the uniformity of heating of said volume.
  12. 12
    A system as defined by Claim 9 further comprising means for modifying the electric field pattern so as to average the electric field intensity in said volume to enhance the uniformity of said volume, said means for modifying the electric field pattern comprising means for modifying the effective length of the conductors of the central row.
  13. 13
    A system as defined by Claim 12 wherein said means for modifying the effective length of said conductors comprises means for electrically modifying the effective length thereof.
  14. 14
    A system as defined by either of Claims 12 and 13 wherein the frequency of said excitation is selected such that a half wavelength of electromagnetic energy in the region beyond the center conductors is substantially greater than the spacing between the outer rows to give rise to a cutoff condition in said region.
  15. 15
    A system as defined by any of the preceding claims further comprising means for injecting a fluid into boreholes in said volume of said formation to aid in recovery of hydrocarbon constituents therefrom.
  16. 16
    A system as defined by Claim 15 in which the injected fluid comprises steam and air or oxygen, to afford a water-gas reaction in said volume to form a hydrocarbon gas of low heat content. .———— -----------
  17. 17
    A method for in situ heat processing of a tar sand, oil shale, or like hydrocarbonaceous earth formation to extract valuable constituents therefrom, comprising the steps of:inserting a plurality of conductors into said formation which bound a particular volume of said formation;applying electrical excitation to said conductors to establish alternating electric fields in said volume;the frequency of said excitation being selected as a function of the volume dimensions so as to establish substantially non-radiating electric fields which are substantially confined in said volume so that volumetric dielectric heating of said formation will occur to effect approximately uniform heating of said volume;and withdrawing valuable constituents, comprising hydrocarbonous fluids formed by said heating, from said volume. I
  18. 18
    A method as defined by Claim 17, wherein the frequency of said excitation is in the radio frequency range between about 0.03 Mhz and 40 MHz.
  19. 19
    A method as defined by either of Claims 17 and 18, in which dielectric heating is limited to a range of about 100°C to 150°C, and including the additional step of injecting a drive fluid into the formation to aid in the recovery of hydrocarbon fluids formed by the heating.
  20. 20
    A method as defined by Claim 19, in which the injected fluid comprises steam and air or oxygen, creating a water-gas reaction in said volume of said formation to form a gas of low heat content, and including the additional step of recovering that gas.
  21. 21
    A method as defined by any of Claims 17 through 20, and comprising the further steps of:inserting elongated electrical conductors in said formation to bound a second volume;transferring residual heat from said first volume to said second volume;applying electrical excitation to said conductors at a selected frequency to effect approximately uniform dielectric heating of said second volume as aforesaid;and withdrawing valuable constituents, formed by said heating, from said second volume.
  22. 22
    A method as defined by any of Claims 17 through 21 wherein the step of applying electrical excitation comprises applying a voltage as between different groups of said conductors.
  23. 23
    A method as defined by any of Claims 17 through 21 wherein the step of applying electrical excitation comprises applying electrical current to at least one current loop in said volume.
  24. 24
    A method as defined by any of the preceding claims wherein the frequency of said excitation is selected as a function of the electrical Lossiness of the formation in the volume being heated to be sufficiently low such that the 1/e attenuation distance of the electric field in any direction in said volume is more than the physical dimension of said volume in that direction.
  25. 25
    A method as defined by any of Claims 17, 18, and 21-24 wherein electrical excitation is continued to effect heating of said volume to a temperature sufficient to cause the volatilization of moisture therein and resulting porosity and permeability in said volume.
  26. 26
    A method as defined by Claim 25 wherein electrical excitation is continued to effect heating of said volume to a temperature of about 425°C, and wherein the withdrawn valuable constituents comprise volatilized products from said volume.
  27. 27
    A method as defined by Claim 25 wherein electrical excitation is continued to effect heating of said volume to a temperature of about 500°C, and wherein the withdrawn valuable constituents include pyrolized products from said volume.
  28. 28
    The method as defined by any of the preceding claims wherein said electrical conductors comprise metal tubes, and wherein said constituents are withdrawn through said tubes.
  29. 29
    A method as defined by any of the preceding claims in which the conductors are inserted into boreholes in said formation, and comprising the further step of injecting a fluid into said boreholes to recover carbonized residues from said volume.
  30. 30
    A method as defined by Claim 29, in which the injected fluid comprises steam and air or oxygen, affording a water-gas reaction with carbonized residues in the formation to form a gas of low heat content, and including the additional step of recovering that gas.
  31. 31
    A method as defined by any of the preceding claims wherein said conductors are located in opposing spaced rows in said formation.
  32. 32
    A method as defined by Claim 31 wherein said rows comprise three spaced rows, two outer rows bounding the volume and a central row equally spaced between the two outer rows.
  33. 33
    A method as defined by any of the preceding claims further comprising the step of modifying the electric field pattern so as to average the electric field intensity in said volume to enhance the uniformity of heating of said volume.
  34. 34
    A method as defined by Claim 33 wherein the step of modifying the electric field pattern comprises the step of modifying the effective length of some of said conductors.
  35. 35
    A method as defined by any of the preceding claims wherein said dielectric heating is continued to heat said volume to a temperature below the temperature required for extraction of valuable constituents from said volume, and further comprising the step of applying further non-electrical heating to said volume prior to withdrawing said valuable constituents from said volume.
  36. 36
    A system for in situ treatment of bydrocarboneous earth formations substantially as hereinbefore described and exemplified by annexed drawings. ׳
  37. 37
    A method for in sitii treatment of .״nydrocarboneous earth formations substantially as hereinbefore described.
Independent claims37