Claims
- 1. A method of separating magnetisable particles from a fluid utilizing a plurality of interconnected open-topped tanks and a plurality of fluid-permeable masses of magnetisable material, which method comprises performing the following operations on each tank;
- (a) at least partially filling the tank, with the associated mass of magnetisable material therein, with fluid containing magnetisable particles such that the fluid and magnetisable particles contact the mass of magnetisable material, the fluid and particles being prevented from escaping from the tank during filling;
- (b) either before, during or after filling, moving the tank into a separating zone in which a magnetic field is established;
- (c) holding the fluid containing the magnetisable particles, within the tank, substantially stationary with respect to the mass of magnetisable material for a finite period of time after completion of steps (a) and (b);
- (d) providing relative movement between the tank and the mass of magnetisable material as the tank passes through the separating zone until the mass of magnetisable material is outside the tank, such that the tank and mass of magnetisable material move vertically apart from one another whereby the fluid is drained from the mass of magnetisable material;
- (e) after draining, moving the tank out of the separating zone; and
- (f) removing magnetisable particles which have been retained within the mass of magnetisable material by magnetic attraction; wherein the tanks are moved one after another into and out of the separating zone.
- 2. A method according to claim 1 wherein the fluid is drained from the mass of magnetisable material by opening an outlet of the separating chamber to discharge the fluid from the separating chamber, the outlet being maintained in a closed state during filling of the separating chamber.
- 3. A method according to claim 1 wherein the draining includes providing relative movement apart of the mass of magnetisable material and the separating chamber containing the fluid so as to separate the mass of magnetisable material from the fluid.
- 4. A method according to claim 3 wherein said vertical movement is provided by moving each separating chamber downwards with respect to the associated mass of magnetisable material as the separating chambers and associated masses of magnetisable material pass substantially horizontally through the separating zone.
- 5. A method according to claim 1, wherein each separating chamber is at least partially filled with fluid containing magnetisable particles prior to being passed through the separating zone.
- 6. A magnetic separator for separating magnetisable particles from a fluid, said separator comprising:
- (a) a plurality of interconnected open-topped tanks;
- (b) a plurality of interconnected fluid-permeable masses of magnetisable material, each mass of magnetisable material being associated with a respective one of the tanks;
- (c) magnet means for establishing a magnetic field in a separating zone;
- (d) means for passing the plurality of interconnected tanks and the plurality of interconnected masses of magnetisable material continuously through the separating zone;
- (e) filling means for introducing fluid containing magnetisable particles into each tank with the associated mass of magnetisable material therein so as to immerse at least a portion of said mass;
- (f) vertically diverging means for guiding the plurality of interconnected tanks and plurality of interconnected masses of magnetisable material, such that each tank, with the associated magnetisable material therein, passes through the separating zone and after a finite period of time after filling of the tank and entry of the tank into the separating zone, each tank and the associated mass of magnetisable material then move vertically apart from one another until the mass of magnetisable material is outside the tank; and
- (g) means for removing magnetisable particles from each mass of magnetisable material after the mass of magnetisable material has been passed out of the separating zone.
- 7. A magnetic separator according to claim 6, wherein the means for removing magnetisable particles comprises means for flushing further fluid through the mass of magnetisable material associated with each separating chamber outside the separating zone.
- 8. A magnetic separator according to claim 6, wherein the draining means comprises a closable outlet of each separating chamber.
- 9. A magnetic separator according to claim 8, wherein said draining means includes means for automatically opening the outlet of each separating chamber after the finite period of time and for automatically closing the outlet of each separating chamber after the magnetisable particles have been removed from the mass of magnetisable material associated with that separating chamber.
- 10. A magnetic separator according to claim 8 wherein the throughflow cross-section of the outlet of each separating chamber is adjustable between a first value and a second value greater than the first value and means are provided for automatically adjusting the throughflow cross-section of the outlet from the first value to the second value after draining of the first-mentioned fluid and before further fluid is flushed through the mass of magnetisable material.
- 11. A magnetic separator according to claim 6 wherein the guide means comprise a track means for the tanks inclined downwards in the separating zone in the direction of motion of the plurality of interconnected tanks, and an overhead rail means for the masses of magnetisable material extending substantially horizontally through the separating zone, whereby, as the tanks and the associated masses of magnetisable material pass through the separating zone, the tanks gradually descend below the level of the masses of magnetisable material.
- 12. A magnetic separator according to claim 11, wherein means are provided for tipping each tank sideways after passing out of the separating zone to discharge fluid from the tank.
- 13. A magnetic separator according to claim 12, wherein each tank runs on wheels on said track means and said track means comprises an inverted T-section track, the track twisting sideways after passing out of the separating zone so as to tip the tanks sideways in that region.
- 14. A magnetic separator according to claim 6, wherein the plurality of interconnected tanks is in the form of an endless loop.
- 15. A magnetic separator according to claim 14, wherein the loop passes through two separating zones in which a magnetic field is established by the magnet means.
- 16. A magnetic separator according to claim 6, wherein the filling means is arranged to introduce fluid containing magnetisable particles into each tank outside the separating zone.
Priority Claims (1)
Number |
Date |
Country |
Kind |
17567/76 |
Apr 1976 |
GBX |
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Parent Case Info
This is a continuation of application Ser. No. 792,015, filed Apr. 28, 1977 now abandoned.
US Referenced Citations (6)
Foreign Referenced Citations (1)
Number |
Date |
Country |
937537 |
Nov 1973 |
CAX |
Continuations (1)
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Number |
Date |
Country |
Parent |
792015 |
Apr 1977 |
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