Claims
- 1. A cyclone separator for multi-phase liquid mixtures for separating denser liquid components of the mixture from less dense liquid components thereof, the cyclone separator comprising an axially extending separating chamber having towards one end inlet means for admission of the mixture with a tangential flow component, wherein one of said liquid components forms droplets within the other liquid component and further wherein the distribution of such droplets is determinative of the efficiency of the separator, with the efficiency in turn being affected by variations in the cross-sectional area of the inlet means, the separating chamber having an axially positioned overflow outlet adjacent said one end, said separating chamber being generally open and unobstructed and of a generally tapered configuration with a relatively large cross-sectional size at said one end and a relatively small cross-sectional size at an axially positioned underflow outlet at the end of the separating chamber opposite said one end, wherein, in use, the denser component is directed to the underflow outlet in a fashion such as to encompass an inner axially positioned core of the less dense component which is subjected at least over a substantial part of its length to a pressure differential causing it to flow in an unobstructed axial path to said overflow outlet, the cyclone separator further including control means which comprises a flap-like member mounted for pivotal movement and disposed at or adjacent said inlet means so that pivotal movement thereof causes variation of the cross-sectional dimension of said inlet means, said separating chamber having its inner wall at the inlet end thereof defined by an unobstructed inner circumferential surface and wherein said flap like member is arranged so that it does not extend into the separation chamber beyond a projection of said inner circumferential surface through the inlet area of the separation chamber.
- 2. A cyclone separator according to claim 1 wherein said feed inlet is defined by a portion of the separating chamber and at least one inlet tract communicating with that portion, said portion being that portion of the separating chamber which is at the same lengthwise position as the or each inlet tract, wherein the or each inlet tract presents inner and outer profiles, when viewed axially of the separator, at least the inward projection of said inner profile extending from a location at which the inner profile or its said projection meets the circumference of said portion characterised in that said flap member (13) comprises a control surface (14) defining said inner profile and is characterised by a vector U describing the location of any particular point on the inner profile and having its point of origin at said second location is such that as the magnitude of vector U increases, an angle .rho. between vector U and that tangent to said circumference which passes through said location never decreases substantially and never becomes less than negative 0.52 radian, at least for substantial magnitudes of vector U.
- 3. A cyclone separator according to claim 2 wherein said outer profile extends from a location at which it meets the circumference of said portion of the separating chamber, said outer profile being characterised in that a vector T describing the location of any particular point on said outer profile and contained in a plane normal to said axis, and having its origin at said first location, is such that as the magnitude of the vector T increases, an angle .theta. between the vector T and that tangent to said circumference which passes through said first location never decreases substantially and never becomes less than negative 0.1 radian; the cross-sectional area perpendicular to the direction of flow generally contracting in the direction of flow.
- 4. A cyclone separator as claimed in claim 3 wherein said inlet means is characterised in that as said magnitude of said first vector T increases said angle .theta. never decreases substantially and never becomes less than negative 0.1 radian for all magnitudes of vector T less than .eta.D, and that as said second vector U increases, said angle .zeta. never decreases substantially and never becomes less than negative 0.52 radian for at all magnitudes of vector U less than .alpha.D, at least for substantial magnitudes of vector J, where ps
- .alpha.<.eta.<2.pi.+.alpha. (c)
- 0.35<.alpha.<1.5, where (d)
- .eta.D being the length of the outer profile of the inlet tract, viewed axially of the separating chamber, D being the diameter of said portion of the separating chamber .alpha.D being the length of the inner profile of the inlet tract viewed axially of the separating chamber, .eta.D being measured from a first location at which the outer profile meets the circumference of its portion of the separating chamber and .alpha.D being measured from a second location at which at least an inward projection of the inner profile meets said circumference.
- 5. A cyclone separator as claimed in claim 4 wherein
- 0.02<4A.sub.i /.pi.D.sup.2 <0.1 (e)
- where A.sub.i is the cross-sectional area of said tract, or the combined cross-sectional area of all said tracts, if there are more than one tract, the or each cross-sectional area being measured in a plane substantially perpendicular to tract inlet flow and intersecting the point of termination of said inner profile.
- 6. A cyclone separator as claimed in claim 5 characterised in that
- .alpha.<.eta.<.pi.+.alpha. (f)
- 7. A cyclone separator as claimed in claim 5 wherein the or each tract is of rectangular cross-section over at least a length qD for q<.alpha. the cross-section over at least a length W.sub.n and a width t.sub.n where
- .SIGMA.t.sub.n .times.W.sub.n =A.sub.i, and (g)
- D/35<t<D/6 (h)
- where W.sub.n is the length of the cross-sectional of the n.sup.th tract and t.sub.n is the width of the n.sup.th tract.
- 8. A cyclone separator as claimed in claim 7 wherein the sides of the or each cross-section of length W are aligned generally in the axial direction of the separator and those of width t are aligned generally normally to the axis of the separator.
- 9. A cyclone separator as claimed in claim 8 where W>t.
- 10. A cyclone separator as claimed in claim 1 wherein the or each tract extends at a respective angle to the axis of the separator, when viewed normally of said axis, wherein the respective angle .rho. between said axis and the main inlet flow direction for liquid mixture when admitted through a respective inlet tract, at the point where the mean flow path intersects the said respective tract cross-section at which the area A.sub.i is measured, is
- 80.degree.<.rho.<95.degree. (j)
- where the angle .rho. is defined such that for values thereof less than 90.degree. the liquid flow into the separating chamber in use, along said flow path, has a motional component which is directed in the direction from the larger diameter to the smaller diameter end of the separating chamber.
- 11. A cyclone separator as claimed in claim 1, wherein the or each inlet tract is of substantially involute form.
- 12. A cyclone separator as claimed in claim 1 wherein the or each inlet tract has an outer profile of substantially involute form.
- 13. A cyclone separator as claimed in claim 6 wherein the or each tract is of rectangular cross-section over at least a length qD for q<.alpha. the cross-section over at least .alpha. length W.sub.n and a width t.sub.n where
- .SIGMA.t.sub.n .times.W.sub.n =A.sub.i, and (g)
- D/35<t<D/6 (h)
- where W.sub.n is the length of the cross-sectional of the n.sup.th tract and t.sub.n is the width of the n.sup.th tract.
- 14. The cyclone separator of claim 1 wherein said inlet means is comprised of an inlet tract having upper and lower profiles intersecting with and terminating in a feed inlet near said one end of said separating chamber.
- 15. The cyclone separator of claim 14 wherein 0.02<4A.sub.i /.pi.D.sup.2 <0.1 where A.sub.i is the cross-sectional area of the inlet tract measured in a plane substantially perpendicular to the inlet tract at a point of termination of the lower profile of the inlet tract with the feed inlet in the one end of the separating chamber, and D is the diameter of the separation chamber at the feed inlet.
- 16. A cyclone separator for multi-phase liquid hydrocarbon and water mixtures to separate denser liquid components of the mixture from less dense liquid components thereof, with one liquid phase of the mixture being in the form of droplets forming an emulsion in the other liquid phase, and with the distribution of such droplets in the emulsion being determinative of the efficiency of the separator, the cyclone separator comprising;
- an axially extending separating chamber having an inlet means at one end for admission of the hydrocarbon and water mixture, such admission having a tangential flow component which when varied is operative to affect the efficiency of the separator, said separating chamber having an unobstructed inner circumferential surface at its inlet end;
- an axially positioned overflow outlet adjacent said one end of said separating chamber, said separating chamber being open and unobstructed throughout its length and having a generally tapered or stepped configuration to form a relatively large cross-sectional size at said one end and a relatively small cross-sectional size at the other end;
- underflow outlet means adjacent the other end of the separating chamber opposite said one end, wherein, in use, the denser liquid component of the mixture is directed to the underflow outlet in a fashion such as to encompass an inner axially positioned core of the less dense liquid component which is subjected at least over a substantial part of its length within the chamber to a pressure differential causing it to flow in an unobstructed axial path to said overflow outlet; and
- control means arranged in the inlet means for varying the tangential flow component to thereby affect the separation efficiency of the separator by varying the cross-section area of the inlet in a manner that prevents shear forces from being applied to the admitted mixture, said control means being arranged in the inlet means so that said control means does not extend beyond a projection of said inner circumferential surface through said inlet means.
- 17. The cyclone separator of claim 16 wherein said inlet means is comprised of an inlet tract having upper and lower profiles intersecting with and terminating in a feed inlet near said one end of said separating chamber to form the tangential flow component of the admitted mixture.
- 18. The cyclone separator of claim 17 wherein 0.02<4A.sub.i /.pi.D.sup.2 <0.1 where A.sub.i is the cross-sectional area of the inlet tract measured in a plane substantially perpendicular to the inlet tract at a point of termination of the lower profile of the inlet tract with the feed inlet in the one end of the separating chamber and D is the diameter of the separating chamber at said feed inlet.
Priority Claims (1)
Number |
Date |
Country |
Kind |
OG4728.75 |
Feb 1987 |
AUX |
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Parent Case Info
This is a continuation of application Ser. No. 271,858, filed as PCT AU87/00057 on Feb. 27, 1987, published as WO87/05234 on Sept. 11, 1987, abandoned.
US Referenced Citations (6)
Foreign Referenced Citations (1)
Number |
Date |
Country |
813722 |
Aug 1922 |
AUX |
Continuations (1)
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Number |
Date |
Country |
Parent |
271858 |
Oct 1988 |
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