Magnetic pump installation
10371449 ยท 2019-08-06
Assignee
Inventors
Cpc classification
F27D19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2009/0005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D21/0014
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2021/0085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2019/0003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C21C1/06
CHEMISTRY; METALLURGY
International classification
F27D27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C21C1/06
CHEMISTRY; METALLURGY
F27D19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A magnetic pump in a pump well in a molten metal furnace with a long, relatively thin side wall that wraps around a significant fraction of the circumference of the pump, which facilitates creation of an eddy current based flow field in the molten material with better magnetic coupling, thereby enhancing the effectiveness of the pump. Breach of the well wall will not result in spillage of metal outside the furnace, and the well can be monitored for any such breach or other change so that the pump can be lifted out of the well to protect it from contact with the molten metal in the event of such a breach, or other appropriate action can be taken.
Claims
1. A molten metal furnace comprising: a furnace vessel; a pump well positionable inside the furnace vessel and spaced apart from exterior walls of the furnace vessel; and an apparatus for agitating molten metal within the furnace vessel, the apparatus comprising: a magnetic pump at least partially within the pump well; a detector for detecting breach of the pump well; and a lift actuatable in response to a signal from the detector to lift the magnetic pump out of the pump well.
2. The furnace of claim 1, wherein the magnetic pump comprises a rotatable permanent magnet assembly and wherein the magnetic pump further comprises a motor for rotating the rotatable permanent magnet assembly.
3. The furnace of claim 1, wherein the magnetic pump comprises a stationary electromagnetic assembly.
4. The furnace of claim 1, further comprising a blower for injecting cooling medium on a first side of the pump well, wherein the cooling medium passes a second side of the pump well before exiting the pump well through an exit port.
5. The furnace of claim 4, further comprising a jacket for directing the cooling medium through the pump well.
6. The furnace of claim 1, wherein the detector is a thermocouple.
7. The furnace of claim 1, wherein the detector is a conduction detector.
8. The furnace of claim 1, wherein the lift comprises a plurality of rails disposed above the pump well.
9. The furnace of claim 1, wherein the lift comprises a cart for lifting the magnetic pump out of the pump well, wherein the cart traverses along a plurality of rails disposed above the pump well to move the magnetic pump away from the furnace.
10. The furnace of claim 1, further comprising a controller connected to the detector, the lift, the magnetic pump, and a blower.
11. A molten metal agitation apparatus for use in a non-ferrous molten metal furnace, the apparatus comprising: a pump well positionable inside a furnace vessel and spaced apart from exterior walls of the furnace vessel; a magnetic pump at least partially within the pump well; a detector for detecting breach of the pump well; and a lift actuatable in response to a signal from the detector to lift the magnetic pump out of the pump well.
12. The molten metal agitation apparatus of claim 11, wherein the magnetic pump comprises a rotatable permanent magnet assembly and wherein the magnetic pump further comprises a motor for rotating the rotatable permanent magnet assembly.
13. The molten metal agitation apparatus of claim 11, wherein the magnetic pump comprises a stationary electromagnetic assembly.
14. The molten metal agitation apparatus of claim 11, further comprising a blower for injecting cooling medium along a first side of the pump well, wherein the cooling medium passes along a second side of the pump well before exiting the pump well through an exit port.
15. The molten metal agitation apparatus of claim 14, further comprising a jacket for directing the cooling medium through the pump well.
16. The molten metal agitation apparatus of claim 11, wherein the detector is a thermocouple.
17. The molten metal agitation apparatus of claim 11, wherein the detector is a conduction detector.
18. The molten metal agitation apparatus of claim 11, wherein the lift comprises a plurality of rails disposed above the pump well, wherein a spacing between the plurality of rails is approximately equal to a size of an opening of the pump well.
19. The molten metal agitation apparatus of claim 11, wherein the lift comprises a cart for lifting the magnetic pump out of the pump well, wherein the cart traverses along a plurality of rails disposed above the pump well to move the magnetic pump away from the furnace.
20. A method, comprising: positioning a magnetic pump within a pump well of a furnace vessel, the pump well spaced apart from exterior walls of the furnace vessel; inducing eddy currents in molten metal within the furnace vessel by the magnetic pump; detecting a breach of the pump well; and automatically lifting the magnetic pump out of the pump well in response to detecting the breach of the pump well.
21. The method of claim 20, wherein inducing eddy currents include rotating permanent magnets of the magnetic pump.
22. The method of claim 20, wherein inducing eddy current include electromagnetically inducing the eddy currents.
23. The method of claim 20, wherein detecting the breach of the pump well includes generating a signal, and wherein automatically lifting the magnetic pump out of the pump well includes activating a lift system coupled to the magnetic pump in response to receiving the signal.
24. The method of claim 20, wherein detecting the breach of the pump well includes sensing an elevated temperature within the pump well by a thermocouple.
25. The method of claim 20, wherein detecting the breach of the pump well includes sensing conductivity in the pump well indicative of a presence of the molten metal.
26. The method of claim 20, wherein automatically lifting the magnetic pump comprises traversing a cart along a plurality of rails disposed above the pump well to move the magnetic pump away from the furnace.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION
(8) The subject matter of embodiments of the present invention is described here with specificity to meet statutory requirements, but this description is not necessarily intended to limit the scope of the claims. The claimed subject matter may be embodied in other ways, may include different elements or steps, and may be used in conjunction with other existing or future technologies. This description should not be interpreted as implying any particular order or arrangement among or between various steps or elements except when the order of individual steps or arrangement of elements is explicitly described.
(9) The present invention solves the problems described above by positioning a magnetic pump 10, which may be an electromagnetic or permanent magnet based pump, in a well 12 located entirely inside the exterior wall 14 of a metal melting furnace 16 and near the entrance 22 to a side well 18 of furnace 16. Certain kinds of scrap may be added in the side well 18, and the extra turbulence in the molten metal generated by the pump 10 quickly submerges and melts the scrap. Agitation in side well 18 also agitates the metal in the main hearth area 20 of furnace 16.
(10) While other pump configurations may be used, the pump 10 illustrated in
(11) Cooling jacket 30 is adjacent to a relatively thin refractory wall 32 of the furnace 16 well 12. This cooling maintains a thermal freeze plane. This reduces the likelihood that the aluminum or other molten metal will dissolve holes in the wall 32 of the well 12. If such holes nevertheless form, because the metal is still retained within the furnace, the consequences typically will be less severe than those potentially associated with breach of an exterior wall of a furnace.
(12) As mentioned, other pump arrangements, such as an electromagnetic pump, may be used instead of a permanent rotatable pump. For example, an induction motor such as the one described in U.S. Pat. No. 3,824,414, which issued Jul. 16, 1974 and is incorporated herein by reference, may be incorporated into a side well of a furnace.
(13) The pump arrangement of this invention provides an open channel flow system to move molten metal due to the eddy current based flow field created by the magnetic pump, thereby agitating the metal and contributing to maintenance of homogeneous temperatures within the metal. The arrangement of the pump within a relatively thin wall of a well within the furnace minimizes the distance between the moving metal and the magnet, thus facilitating creation of strong eddy currents in the molten material, thereby enhancing the effectiveness of the pump.
(14) In some cases, the magnetic pump is positioned within the furnace such that significant linear vortexes are created within the metal. For instance, the magnet may be positioned and configured to generate eddy current based flow field for the molten metal positioned within approximately half the thickness of the thin wall of the well (closest to the pump) and force a linear flow along this portion of the metal closest to the magnet. The other approximately half of the molten metal within the thin wall flows in a sympathetic, tortuous path that in turn generates a strong linear vortex throughout the depth of the well.
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(17) Detector 62 can be a thermocouple or other temperature detector for detecting the temperature within the well at the location of the detector. In some cases, detector 62 is a duplex type K thermocouple with an open-ended protection tube and ceramic bead insulators, although any suitable thermocouple or other temperature detector may be used.
(18) Detector 62 could, alternatively, be a detector capable of detecting the presence of molten metal in the well by other means. It can also be any other detector adapted to directly or indirectly detect a condition, such as elevated temperature, cessation of air flow, conductivity which indicates the presence of molten metal, change in moisture content of the air or any other parameter or condition capable of being monitored.
(19) In some embodiments, more than one detector 62 is used and in some cases, more than one type of detector is used. In one non-limiting embodiment, a thermocouple or other temperature detector is used, as well as a detector capable of detecting the presence of molten metal by another means, such as by measuring conductivity with a conduction probe. In one non-limiting embodiment, one of the detectors may be part of a Warrick conductivity system circuit that has liquid level sensing capabilities such as, but not limited to, Warrick Series 16M controls.
(20) If used, a thermocouple element may detect temperature from any suitable location, for example but not limited to, approximately from the bottom of the well 48. If used, a conductivity system, such as but not limited to a Warrick relay reference probe, may be connected directly to the well wall to detect a breach by sensing conductivity associated with any metal infiltration.
(21) A programmable logic controller or suitable processer can receive and interpret the signal from detector 62 and initiate any suitable action. For example, the PLC can sound or display an alarm so that a furnace operator can determine whether to lift pump 40 out of the well 48, or take any other appropriate action. Alternatively, the PLC can activate a lift apparatus to lift pump 40 out of well 48. Signals from detector 62 and/or the PLC could also be used to automatically or through operator action otherwise control the furnace by, for instance, stopping rotation of the magnets 46 or adjusting the speed of rotation by adjusting operation of motor/gearbox 42, adjust cooling airflow 56 by adjusting operation of blower 58, or changing heat input to the main hearth 52 or some other portion of the furnace 50.
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(23) All patents, publications and abstracts cited above are incorporated herein by reference in their entirety.
(24) Different arrangements of the components depicted in the drawings or described above, as well as components and steps not shown or described are possible. Similarly, some features and subcombinations are useful and may be employed without reference to other features and subcombinations. Embodiments of the invention have been described for illustrative and not restrictive purposes, and alternative embodiments will become apparent to readers of this patent. Accordingly, the present invention is not limited to the embodiments described above or depicted in the drawings, and various embodiments and modifications can be made without departing from the scope of the claims below.