Claims
- 1. Apparatus, suitable for separating magnetisable particles from a fluid in which they are suspended, said apparatus comprising:
- a. superconductive electromagnet means for establishing a continuous high intensity magnetic field in a first zone,
- b. a plurality of elongate separating chambers coupled to each other with their axes aligned along a common axial direction,
- c. two openings provided in each of the said separating chambers for permitting fluid to enter and leave the separating chambers, the separating chambers being otherwise completely enclosed,
- d. a fluid permeable and magnetisable packing material provided in each of the separating chambers so that fluid flowing between the two openings passes through the packing material,
- e. means for moving said separating chambers reciprocatingly in the axial direction into and out of the first zone so as to move one of the separating chambers into the first zone and the other or another separating chamber outside of the first zone,
- f. means for passing fluid having magnetisable particles suspended therein into one of the openings of the one separating chamber, when the one separating chamber is positioned within the first zone, wherein magnetisable particles are magnetised by the high intensity magnetic field and are attracted to the packing material within that separating chamber, as the fluid passes through the packing material and exits through the other opening in the separating chamber, and
- g. removal means for removing the magnetisable particles attracted to the packing material within a separating chamber which has been in the first zone, when that separating chamber has been moved into a second zone by said moving means.
- 2. Apparatus as claimed in claim 1, wherein said plurality is two, the two separating chambers being linked together and the means for moving the separating chambers into and out of the first zone being reciprocating means which are intended to move each of the separating chambers into a different zone remote from the first zone for removal of the magnetisable particles attracted to the packing material, the two remote zones being disposed on opposite sides of the first zone.
- 3. Apparatus as claimed in claim 2, wherein each separating chamber has axial symmetry, and the separating chambers are axially aligned and rigidly linked together, so as to be axially movable by means coupled to one of the separating chambers.
- 4. Apparatus as claimed in claim 3, wherein the reciprocating means comprises a pinion which engages with a rack coupled to one of the separating chambers, so that, when the pinion is rotated by a suitable amount, the rack is displaced longitudinally by a sufficient amount to move one separating chamber from the first zone into one of said remote zones and to move the other separating chamber from the other said remote zone into the first zone.
- 5. Apparatus as claimed in claim 2, wherein the removal means includes flushing means for flushing a fluid through each separating chamber within each remote zone.
- 6. Apparatus as claimed in claim 5, wherein the removal means also includes magnetic degaussing means positioned in the remote zones for reducing the residual magnetism of the packing material within each separating chamber prior to flushing with a fluid.
- 7. Apparatus as claimed in claim 1, wherein each separating chamber is provided with two openings at one end thereof, one of which openings is connected to a duct which extends to that end of the chamber which is remote from the openings, whereby fluid can enter the chamber at one end and leave the chamber at the same end after passing through the packing material.
- 8. Apparatus as claimed in claim 1, wherein the superconductive electromagnet means includes an electromagnet coil which comprises a conductor made from an alloy of niobium and titanium and which is superconductive at the temperature of liquid helium.
- 9. Apparatus as claimed in claim 1, wherein the packing material comprises a stainless steel wool.
- 10. Apparatus as claimed in claim 9, wherein about 2% to 40% of the total volume occupied by the packing material is occupied by stainless steel, the remainder of the volume being void.
- 11. Apparatus as claimed in claim 1, wherein the packing material is particulate.
- 12. Apparatus as claimed in claim 11, wherein about 10% to 75% of the total volume occupied by the packing material is occupied by particles, the remainder of the volume being void.
- 13. A method of separating magnetisable particles from a fluid in which they are suspended, utilizing a plurality of elongate separating chambers coupled to each other with their axes aligned along a common axial direction, wherein each separating chamber is completely enclosed except for two openings for permitting fluid to enter and leave the separating chamber and wherein each separating chamber contains a fluid permeable and magnetisable packing material so disposed within the separating chamber that fluid flowing between the two openings passes through the packing material, which method comprises:
- a. establishing a high intensity magnetic field in a first zone,
- b. passing a quantity of said fluid having magnetisable particles suspended therein through one opening of one of the separating chambers disposed within the first zone, so that the magnetisable particles are magnetised by the magnetic field and attracted to the packing material, as the fluid passes through the packing material and exits through the other opening,
- c. moving the one separating chamber in a first sense along the axial direction out of the first zone and into a second zone and moving another separating chamber in the axial direction into the first zone,
- d. removing the magnetisable particles attracted to the packing material from the one separating chamber within the second zone,
- e. concurrently with (d), passing a further quantity of said fluid having magnetisable particles suspended therein to one opening of said another separating chamber within the first zone, so that the magnetisable particles are magnetised by the magnetic field and attracted to the packing material, as the fluid passes through the packing material and exits through the other opening,
- f. where necessary repeating steps (c) to (e) until all of said plurality of separating chambers have passed through said first zone,
- g. repeating steps (c) to (f) by moving said plurality of separating chambers in the sense opposite to the first sense along the axial direction,
- the high intensity magnetic field being continuously maintained in the first zone throughout (b) to (g).
- 14. A method as claimed in claim 13, which method additionally comprises:
- 1. moving the second separating chamber out of the first zone and into a third zone and moving the first separating chamber into the first zone; and
- 2. removing the magnetisable particles attracted to the packing material from the second separating chamber within the third zone;
- the high intensity magnetic field being continuously maintained in the first zone throughout (1) and (2) as well as throughout (b) to (e).
- 15. A method as claimed in claim 13, wherein the fluid having magnetisable particles suspended therein is a slurry of water and substantially non-magnetisable material, having magnetisable particles therein.
- 16. A method as claimed in claim 15, wherein the velocity at which the slurry is passed through each separating chamber is at least 30 cm/min.
- 17. A method as claimed in claim 15, wherein the velocity at which the slurry is passed through each separating chamber is not more than 1000 cm/min.
- 18. A method as claimed in claim 17, wherein the velocity at which the slurry is passed through each separating chamber is not more than 600 cm/min.
- 19. A method as claimed in claim 15, wherein the residence time of the slurry in the first zone is between about 3 seconds and about 2 minutes.
- 20. A method as claimed in claim 19, wherein the residence time of the slurry in the first zone is between about 5 seconds and about 25 seconds.
- 21. A method as claimed in claim 13, wherein the applied magnetic field has an intensity of at least 30,000 gauss.
- 22. A method as claimed in claim 13, wherein the magnetisable particles are removed from the first separating chamber within the second zone by flushing with a fluid.
- 23. A method as claimed in claim 13, wherein the magnetisable particles are removed from the first separating chamber within the second zone by reducing the residual magnetism of the packing material and flushing with a fluid.
- 24. A method as claimed in claim 15, wherein the slurry is defloculated before being passed through a separating chamber.
Priority Claims (1)
Number |
Date |
Country |
Kind |
32926/73 |
Jul 1973 |
UK |
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Parent Case Info
This application is a continuation-in-part of my application Ser. No. 486,425 filed on the July 8, 1974 now abandoned.
US Referenced Citations (12)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
486425 |
Jul 1974 |
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