Claims
- 1. A method of separating an admixture of particles or fluids into separate products of relatively higher magnetic susceptibility and relatively lower or zero magnetic susceptibility, comprising the steps of:
- (a) feeding a stream of the admixture along a pinched annular sluice from a wider input end to a narrower outlet end;
- (b) stratifying the stream into contacting layers, one upon another, each layer mainly incorporating a different component of the admixture and extending between the input and outlet ends of the pinched annular sluice by subjecting the stream to a magnetic field which produces a differential force on components of the admixture having different magnetic susceptibilities, as they are fed along the pinched annular sluice, sufficient to produce a stratification of the stream to form said layers; and
- (c) directing the layers of the stream into respective output channels.
- 2. A method according to claim 1 wherein the magnetic field is produced by an apertured disc-shaped magnet disposed so that the stream of material is fed past the magnet substantially parallel to a face thereof.
- 3. A method according to claim 2 wherein the magnet is a superconducting solenoid magnet.
- 4. A method of separating an admixture of particles or fluids into separate products of relatively higher magnetic susceptibility and relatively lower or zero magnetic susceptibility, comprising the steps of:
- (a) feeding a stream of the admixture along a flow path by directing the stream along a pinched sluice from a wider input end to a narrower outlet end, as considered along a transverse direction across the flow path, said feeding step including the step of increasing the depth of the stream as the stream travels from the input end to the outlet end;
- (b) stratifying the stream of increasing depth into contacting layers, each of increasing depth, one upon another, each layer of increasing depth mainly incorporating a different component of the admixture and extending between the input and outlet ends of the pinched sluice by subjecting the stream of increasing depth to a magnetic field which produces a differential force on components of the admixture having different magnetic susceptibilities, as they are fed along the pinched sluice, sufficient to produce a stratification of the stream of increasing depth to form said layers, each of increasing depth; and
- (c) directing the layers, each of increasing depth, of the stream of increasing depth into respective output channels.
- 5. A method according to claim 4 wherein the different layers are directed into the respective output channels by splitter means disposed within the trajectory of the stream of material discharged from the sluice.
- 6. A method according to claim 4 of separating a component of higher density and higher magnetic susceptibility from a component of lower density and lower or zero magnetic susceptibility, wherein the magnetic field is produced by a magnet disposed beneath the sluice so as to assist the separating effect of gravity on the different components.
- 7. A method according to claim 4 of separating a component of lower density and higher magnetic susceptibility from a component of higher density and lower or zero magnetic susceptibility, wherein the magnetic field is produced by a magnet disposed beneath the sluice so as to oppose the separating effect of gravity on the different components.
- 8. A method according to claim 4 of separating a component of higher density and higher magnetic susceptibility from a component of lower density and lower or zero magnetic susceptibility, wherein the magnetic field is produced by a magnet disposed above the sluice so as to oppose the separating effect of gravity on the different components.
- 9. A method according to claim 4 of separating a component of lower density and higher magnetic susceptibility from a component of higher density and lower or zero magnetic susceptibility wherein the magnetic field is produced by a magnet disposed above the sluice so as to assist the separating effect of gravity on the different components.
- 10. A magnetic separator for separating an admixture of particles or fluids into separate products of relatively higher magnetic susceptibility and relatively lower or zero magnetic susceptibility, comprising:
- (a) a pinched sluice having a bed extending along a flow path from a wider input end to a narrower outlet end, as considered along a transverse direction across the flow path;
- (b) means for feeding a stream of the admixture onto the bed of the sluice at the input end to cause the stream to be fed along the bed to the outlet end, and for increasing the depth of the stream as the stream travels from the input end to the outlet end;
- (c) stratifying means including a disc magnet disposed with a face thereof substantially parallel to the bed of the sluice, said stratifying means being operative for stratifying the stream of increasing depth into contacting layers, each of increasing depth, one upon another, each layer of increasing depth mainly incorporating a different component of the admixture and extending between the inlet and outlet ends of the pinched sluice by producing a differential magnetic force on components of the admixture having different magnetic susceptibilities as they are fed along the sluice, so as to stratify the stream of increasing depth and form said layers, each of increasing depth, in the bed;
- (d) a plurality of output channels adjacent the outlet end of the sluice; and
- (e) splitter means disposed away from the sluice so as to divide the discharge from the sluice into said separate products and direct said products into different respective output channels.
- 11. A magnetic separator according to claim 10 wherein the position of the splitter means is adjustable to vary the proportions of the discharge which is fed into the different output channels.
- 12. A magnetic separator according to claim 10 wherein the sluice is an inclined annular sluice, the magnet is an annular superconducting magnet, and the splitter means is of tubular form disposed coaxially below the outlet end of the sluice.
- 13. A magnetic separator according to claim 10 wherein the magnet consists of a superconducting solenoid.
- 14. A magnetic separator according to claim 13 incorporating means for adjusting the position of the solenoid relative to the sluice.
- 15. A magnetic separator according to claim 13 wherein the magnetic force acting on the stream is adjustable by varying the current in the superconducting solenoid.
- 16. A magnetic separator according to claim 10 incorporating two inclined annular sluices disposed coaxially one above the other with a superconducting magnet disposed between them so as to separate the stream on both sluices into layers consisting of the different components but with the positions reversed, the splitter means comprising a pair of tubes disposed coaxially with respect to the sluices in positions such that the upper stream from the upper sluice is directed into the inner tube, the lower stream from the upper sluice, and the upper stream from the lower sluice are directed into the space between the splitter tubes, and the lower stream from the lower sluice is fed into a channel surrounding the outer tube.
- 17. A magnetic separator according to claim 16 wherein the positions of both splitter tubes are adjustable vertically.
Priority Claims (1)
Number |
Date |
Country |
Kind |
8530360 |
Dec 1985 |
GBX |
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Parent Case Info
This is a continuation of application Ser. No. 07/090,251 filed July 27, 1987, now abandoned.
US Referenced Citations (7)
Foreign Referenced Citations (1)
Number |
Date |
Country |
2317013 |
Jun 1975 |
FRX |
Continuations (1)
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Number |
Date |
Country |
Parent |
90251 |
Jul 1987 |
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