Tramp metal separation assembly
11344894 · 2022-05-31
Assignee
Inventors
- Shyh-Yi Wey (Taipei, TW)
- Wen-Cheng Chang (Taipei, TW)
- Ken-Der Lin (Taipei, TW)
- Bao-Ding Li (Taipei, TW)
Cpc classification
B03C1/12
PERFORMING OPERATIONS; TRANSPORTING
B03C1/284
PERFORMING OPERATIONS; TRANSPORTING
B03C2201/20
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A tramp metal separation assembly comprises a housing, a core rod and a sleeve tube. The housing includes a first and second discharging areas and a feeding area. The core rod includes a first and second non-magnetic sections and a magnetic section. The core rod is mounted on the housing in a way that the first and second non-magnetic sections correspond respectively to the first and second discharging areas and the magnetic section corresponds to the feeding area. The sleeve tube includes a first and second portions. The sleeve tube is sleeved outside the core rod in a way that it is moveable between a first position, wherein the first portion corresponds to the magnetic section and the second portion corresponds to the second non-magnetic section, and a second position, wherein the first portion corresponds to the first non-magnetic section and the second portion corresponds to the magnetic section.
Claims
1. A tramp metal separation assembly, comprising: a housing including a first discharging area, a second discharging area and a feeding area between the first discharging area and the second discharging area; a cylindrical core rod made of non-magnetic materials and including a first longitudinal axis, an axial extending hollow interior having a first part, a second part and a third part, the second part adapted to be a magnetic section by being filled therewith a set of magnets, the first part and the third part respectively adapted to be a first non-magnetic section and a second non-magnetic section, the cylindrical core rod being mounted on the housing in a way that the first and second non-magnetic sections correspond respectively to the first and second discharging areas and the magnetic section corresponds to the feeding area; and a sleeve tube made of non-magnetic materials and including a first portion, a second portion, a longitudinal length shorter than the longitudinal length of the cylindrical core rod and an axial hole with an inner diameter larger than the outer diameter of the cylindrical core rod, the sleeve tube being sleeved outside the core rod in a way that it is moveable to and fro along the first longitudinal axis of the core rod and between a first position, wherein the first portion corresponds to the magnetic section to capture tramp metals of the raw materials and the second portion corresponds to the second non-magnetic section to discharge tramp metals captured thereon, and a second position, wherein the first portion corresponds to the first non-magnetic section to discharge tramp metals captured thereon, and the second portion corresponds to the magnetic section to capture tramp metals of the raw materials, wherein the housing includes a front wall, a rear wall, a first side wall, a second side wall, a first inner plate and a second inner plate, the front and rear walls combine with the first and second side walls to define a generally elongate receiving space within the housing, the first inner plate and the second inner plate are respectively disposed between the first side wall and the second side wall to divide the space into the first discharging area, the second discharging area and the feeding area, the cylindrical core rod is adapted to pass through the first inner plate and the second inner plate and secures respectively each of ends thereof on the front and rear walls, and the sleeve tube is also adapted to pass through the first inner plate and the second inner plate in a way that it is moveable to and fro between the first and second positions, wherein the tramp metal separation assembly further comprises a first driving plate, a second driving plate and a linear actuator, wherein the first driving plate is fixedly connected to a first end of the sleeve tube and disposed in the first discharging area; the second driving plate is fixedly connected to a second end of the sleeve tube and disposed in the second discharging area, each of the driving plates is configured to be moveable along the cylindrical core rod, and the linear actuator is connected with one of the driving plates for actuating the sleeve tube to move back and forth between the first position and the second position, and wherein the first driving plate has a third bore for being passed through by the first non-magnetic section of the cylindrical core rod and the second driving plate has a fourth bore for being passed through by the second non-magnetic section of the cylindrical core rod.
2. The tramp metal separation assembly of claim 1, further comprising a first non-magnetic inner tube and a second non-magnetic inner tube, wherein the first non-magnetic inner tube is disposed within the first part and abuts against a first side of the set of magnets, and the second non-magnetic inner tube is disposed within the third part and abuts against a second side of the set of magnets.
3. The tramp metal separation assembly of claim 1, further comprising a plurality of the cylindrical core rods and a plurality of the sleeve tubes, wherein the cylindrical core rods and the sleeve tubes are divided into a plurality of groups, each of the groups is arranged in a way that each of the cylindrical core rods and the sleeve tubes thereof is parallel to each other in a horizontal plane, and each of the horizontal planes is spaced apart such that the cylindrical core rods and the sleeve tubes are provided in a staggered configuration to ensure contact of the raw materials with the first and second portions of the sleeve tubes.
4. The tramp metal separation assembly of claim 1, wherein the first inner plate has at least a first bore and the second inner plate has at least a second bore, the first and second bores are coaxial and have the same diameter, the cylindrical core rod passes through the first and second bores to secure respectively each of ends thereof on the front and rear walls of the housing.
5. The tramp metal separation assembly of claim 4, wherein the sleeve tube includes a convex ring disposed between the first portion and the second portion and has a first outer diameter smaller than the diameter of the first and second bores.
6. The tramp metal separation assembly of claim 5, wherein the sleeve tube includes a plurality of flanges for dividing the surface of the sleeve member into a plurality of receiving regions, and each of the flanges has a second outer diameter smaller than the first outer diameter of the convex ring.
7. The tramp metal separation assembly of claim 1, further comprising a control means coupled with the linear actuator to control the action thereof.
8. A tramp metal separation assembly, comprising: a housing including a first discharging area, a second discharging area and a feeding area between the first discharging area and the second discharging area; a cylindrical core rod made of non-magnetic materials and including a first longitudinal axis, an axial extending hollow interior having a first part, a second part and a third part, the second part adapted to be a magnetic section by being filled therewith a set of magnets, the first part and the third part respectively adapted to be a first non-magnetic section and a second non-magnetic section, the cylindrical core rod being mounted on the housing in a way that the first and second non-magnetic sections correspond respectively to the first and second discharging areas and the magnetic section corresponds to the feeding area; and a sleeve tube made of non-magnetic materials and including a first portion, a second portion, a longitudinal length shorter than the longitudinal length of the cylindrical core rod and an axial hole with an inner diameter larger than the outer diameter of the cylindrical core rod, the sleeve tube being sleeved outside the core rod in a way that it is moveable to and fro along the first longitudinal axis of the core rod and between a first position, wherein the first portion corresponds to the magnetic section to capture tramp metals of the raw materials and the second portion corresponds to the second non-magnetic section to discharge tramp metals captured thereon, and a second position, wherein the first portion corresponds to the first non-magnetic section to discharge tramp metals captured thereon, and the second portion corresponds to the magnetic section to capture tramp metals of the raw materials, wherein the housing includes a front wall, a rear wall, a first side wall, a second side wall, a first inner plate and a second inner plate, the front and rear walls combine with the first and second side walls to define a generally elongate receiving space within the housing, the first inner plate and the second inner plate are respectively disposed between the first side wall and the second side wall to divide the space into the first discharging area, the second discharging area and the feeding area, the cylindrical core rod is adapted to pass through the first inner plate and the second inner plate and secures respectively each of ends thereof on the front and rear walls, and the sleeve tube is also adapted to pass through the first inner plate and the second inner plate in a way that it is moveable to and fro between the first and second positions, wherein the tramp metal separation assembly further comprises a first driving plate, a second driving plate and a linear actuator, wherein the first driving plate is fixedly connected to a first end of the sleeve tube and disposed in the first discharging area; the second driving plate is fixedly connected to a second end of the sleeve tube and disposed in the second discharging area, each of the driving plates is configured to be moveable along the cylindrical core rod, and the linear actuator is connected with one of the driving plates for actuating the sleeve tube to move back and forth between the first position and the second position, and wherein the tramp metal separation assembly further comprises a guiding rod disposed on one of the side walls of the housing, wherein the guiding rod has a second longitudinal axis parallel to the first longitudinal axis of the cylindrical core rod and is coupled with the driving plates for guiding the back and forth movement thereof.
9. The tramp metal separation assembly of claim 1, wherein the linear actuator is a pneumatic linear actuator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above, as well as other advantages of the present invention will become readily apparent to those skilled in the art from the following detailed description when considered in the light of the accompanying drawings in which:
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DETAILED DESCRIPTION OF THE INVENTION
(10) Referring now to
(11) The housing 20 comprises a front wall 22, a rear wall 24, a first side wall 26 and a second side wall 28. The front and rear walls 22, 24 combine with the first and second side walls 26, 28 to define a generally elongate receiving space 30 within the housing 20. The housing 20 further comprises a first inner plate 32 and a second inner plate 34. The first inner plate 32 and the second inner plate 34 are respectively disposed between the first side wall 26 and the second side wall 28 to divide the space 30 into a first discharging area 38, a second discharging area 40 and a feeding area 36 between the first discharging area 38 and the second discharging area 40. The feeding area 36 has an inlet 41 into which a raw material containing tramp metals are introduced and an outlet 42 from which the raw material is discharged. The first and second discharging areas 38, 40 respectively have a first discharging outlet 44 and a second discharging outlet 46 disposed in the bottom side thereof.
(12) The cylindrical core rod 60, as shown in
(13) The sleeve tube 80, as shown in
(14) Referring now to
(15) The sleeve tube 80 is sleeved outside the cylindrical core rod 60 by the axial hole 803 thereof and also extends through the first bore 320 and the second bore 340 in a way that it is moveable along the first longitudinal axis X-X′ of the cylindrical core rod 60 and between a first position, as shown in
(16) In addition, in this embodiment, as shown in
(17) In this embodiment, as shown in
(18) In operation, as shown in
(19) The tramp metal separation assembly 10 also comprises a pair of linear actuators 100 respectively disposed on the housing 10 and connected with one of the driving plates 90, 92 or both for actuating the sleeve tubes 80 to move back and forth between the first position and the second position. In this embodiment, each of the linear actuators 100 may be a pneumatic linear actuator that is controlled by a solenoid-operated pneumatic valve assembly, as is well known in the art. Each of the pneumatic linear actuators 100 has a piston 102 coupled to one of the driving plates 90, 92 so that all of the sleeve tubes 80 can be actuated at the same time to move reciprocally between the first and second positions.
(20) In this embodiment, the tramp metal separation assembly 10 further comprises a pair of guiding rods 96 disposed respectively on each of the side walls 26, 28 of the housing 30. Each of the guiding rods 96 has a second longitudinal axis Y-Y′ parallel to the first longitudinal axis X-X′ of the cylindrical core rod 60 and passes through a guiding opening 902, 922 disposed on each of the driving plates 90, 92 for guiding the back and forth movement thereof. The periphery of each of the guiding openings 902, 922 is disposed with a third bushing 98, 99 so that each of the driving plates 90, 92 can move smoothly on each of the guiding rods 96.
(21) In addition, in this embodiment, the tramp metal separation assembly 10 further includes a control means 200 secured on the housing 10, which are coupled with each of the linear actuators 100 for controlling the action thereof. In typical operation, the linear actuators 100 are performed automatically, either at predetermined time intervals or in response to a user command that is provided to the control means 200. The control means 200 can usually be a programmable logic controller (PLC) which is well known in the art. Generally speaking, the control means 200 may include control elements such as an input module, a timing module, an execution module, and a solenoid valve etc.