Thermal management of bearings in hot magnetic separator
09644683 ยท 2017-05-09
Assignee
Inventors
Cpc classification
B03C1/30
PERFORMING OPERATIONS; TRANSPORTING
B03C1/247
PERFORMING OPERATIONS; TRANSPORTING
F16C37/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B03C1/02
PERFORMING OPERATIONS; TRANSPORTING
B03C2201/20
PERFORMING OPERATIONS; TRANSPORTING
International classification
B03C1/247
PERFORMING OPERATIONS; TRANSPORTING
F16C37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An apparatus for separating hot particles including a plurality of materials having different magnetic properties includes a plurality of permanent magnets arranged in a magnet assembly and configured to create a magnetic flux capable of providing a coercive force on at least a portion of the particles, the magnet assembly being mounted on a stationary shaft, a moving surface proximate the magnet assembly for carrying the particles in a downward path through the magnetic flux while the coercive force attracts the portion of the hot particles toward the moving surface, the moving surface being mounted on a drive shaft supported by a bearing, and an inert gas supply system which supplies inert gas into a gap between the stationary shaft and the drive shaft for cooling the drive shaft and the bearings, and into the magnet assembly for purging the magnet assembly of oxygen.
Claims
1. An apparatus for separating hot particles including a plurality of materials having different magnetic properties, the apparatus comprising: a plurality of permanent magnets arranged in a magnet assembly and configured to create a magnetic flux capable of providing a coercive force on at least a portion of said particles, said magnet assembly being mounted on a stationary shaft; a moving surface proximate said magnet assembly for carrying said particles in a downward path through said magnetic flux while said coercive force attracts said portion of said hot particles toward said moving surface, said moving surface being mounted on a drive shaft supported by bearings, an outer surface of said stationary shaft and an inner surface of said drive shaft defining an annular gap therebetween; an inert gas supply system which supplies an inert gas flow, via a line disposed within an interior of said stationary shaft, into said annular gap for cooling said drive shaft and at least one of said bearings and for purging an interior of said magnet assembly of oxygen, said annular gap being disposed between said at least one of said bearings and said magnet assembly so as to divide said inert gas flow into a first portion which is introduced to said at least of one of said bearings and a second portion which is introduced to said interior of said magnet assembly; and an opening in the stationary shaft which defines an inert gas flow path from the interior of said magnet assembly to the interior of the stationary shaft, whereby said first portion of inert gas flow flows from the interior of said magnet assembly to the interior of the stationary shaft, and then from the interior of the stationary shaft to atmosphere, wherein said second portion of inert gas flow introduced to said at least one of said bearings flows from said at least one of said bearings to atmosphere without flowing through the interior of the stationary shaft.
2. The apparatus as defined in claim 1 further including a housing enclosing the magnet assembly and the moving surface, wherein said at least one of said bearings is disposed outside the housing.
3. The apparatus as defined in claim 1 further including a feed system for supplying said particles onto said moving surface.
4. The apparatus as defined in claim 3 further including a control system for controlling the temperature of said particles supplied by said feed system.
5. The apparatus as defined in claim 4 wherein the control system controls the feed system based on one or more monitored temperatures of the apparatus.
6. The apparatus as defined in claim 1 further including a splitter below said moving surface for selectively dividing particles of less magnetic strength from those of greater magnetic strength.
7. The apparatus as defined in claim 1 wherein said moving surface moves in a curved path.
Description
BRIEF DESCRIPTION OF THE DRAWING FIGURES
(1) Additional features and aspects of the hot magnetic separator disclosed here will become more apparent from the following detailed description considered with reference to the accompanying drawing figures in which like elements are designated by like reference numerals.
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6) An embodiment of the apparatus for separating hot particles including a plurality of materials having different magnetic properties is illustrated in
(7) The apparatus also includes a moving surface/shell 11 proximate the magnet assembly 22. A pair of end plates 15 are joined to the respective opposite side openings of the shell 11. The shell 11 and end plates 15 together form a drum 10 and are either in contact with the high temperature feed material or are very near it. These parts must be designed and made to withstand the high temperatures, abrasive nature, and significant thermal expansion that are caused by a temperature change of up to 700 to 800 degrees C. To combat this, high nickel super-alloys, commonly known in the industry, are the chosen materials for the shell 11 and end plates 15.
(8) As illustrated in
(9)
(10) The apparatus also includes a cooling system for maintaining the temperature of the magnets 14 substantially below their Curie point. In particular, the cooling system includes a circuit for routing liquid coolant in the space between the magnet assembly 22 and the shell 11.
(11) As illustrated in
(12) As illustrated in
(13) The apparatus further includes a splitter 41 located below the shell 11 for selectively dividing particles of less magnetic susceptibility from those of greater magnetic susceptibility. The position of the splitter 41 relative to the drum 10 allows it to divide particles of less magnetic susceptibility and particles of greater susceptibility into appropriate chutes 45 for further handling as appropriate via respective material collectors 42, 43. The splitter 41 and chutes 45 are arranged so that material having different levels of attraction to the magnet assembly 22 will land in different respective collectors 42, 43.
(14) The detailed description above describes features and aspects of embodiments of a hot magnetic separator disclosed by way of example. The invention is not limited, however, to the precise embodiments and variations described. Changes, modifications and equivalents can be employed by one skilled in the art without departing from the spirit and scope of the invention as defined in the appended claims. It is expressly intended that all such changes, modifications and equivalents which fall within the scope of the claims are embraced by the claims.