The present invention relates to electric induction heating of an electrically conductive strip or slab material with a generally rectangular sheet inductor or a multi-turn inductor particularly in applications where the dimensions of the electrically conductive material requires the cross sectional opening within the inductor to dynamically vary as the material passes through the inductor. The requirement for the dynamic change in the cross sectional opening may be based upon an abnormal region of the material, such as a curved strip or slab end, or a change in cross sectional thickness of the material, or a change in the electromagnetic properties of the material, or a combination of both an abnormal region of the material and varying electromagnetic properties of the material.
In industrial induction heat processing of a strip material or slab material, the fixed interior heating cross sectional opening of a rectangular sheet inductor or a multi-turn inductor through which the material passes is sized to achieve a required process level of induced material heating. The strip or slab material may have an abnormal region, for example, where the leading (head) or trailing (tail) of the strip or slab is either not flat (that is, curved upward or downward) or the cross sectional thickness of the material is greater than the interior heating cross sectional opening of the inductor. For example as shown in
In addition to the requirement to allow an abnormal region of the material to pass through the inductor, in some industrial induction heat processing of a strip or slab material such as a multiphase steel composition (for example dual phase steels, transformation induced plasticity (TRIP) steels, ferrite-bainite (FB) steels and complex phase (CP) steels) where the impedance of the (load) material varies as it passes through the rectangular sheet inductor or a multi-turn inductor, there is a need for load impedance match with the output of the induction power source supplying power to the inductor. Therefore there is the need for a rectangular sheet inductor or a multi-turn inductor that has an extendible cross sectional opening of the rectangular sheet inductor or a multi-turn inductor to allow an abnormal region of the material to pass through the inductor and to return to a smaller interior heating cross sectional opening and, either alternatively, or in combination therewith, to match load impedance of a material with varied electromagnetic properties by varying the cross sectional opening of the rectangular sheet inductor or a multi-turn inductor as the material passes through the inductor particularly when multiple strips or slabs are sequentially passing through the inductor and the change in the material's electromagnetic properties are randomly variable as the material passes through the inductor.
Where there is an industrial induction heating process that requires both increasing the interior cross sectional opening of the inductor for passage of an abnormal region of the material, and changing the interior cross sectional opening for variable load impedance matching there is the need for a rectangular sheet inductor or a multi-turn inductor to have separate features for performing each of these two functions.
In one aspect the present invention is an apparatus for, and method of, inductively heat treating a strip or slab material with a rectangular sheet inductor or a multi-turn inductor that requires enlargement of the interior cross sectional opening of the inductor to permit an abnormal region of the material to pass through the inductor and return to the inductor's heat treatment interior cross sectional opening when induction heat treating a heat treatment region of the material passing through the inductor's opening. The top inductor section or the bottom inductor section, or both the top and bottom inductor sections are moved away from the surface of the material passing through the interior of the inductor by sliding extension of the opposing sides of the top and/or bottom inductor(s) to allow the abnormal region of the material to pass through the inductor and sliding retraction of the opposing sides of the top and/or bottom inductor(s) to return to the inductor's interior heating cross sectional opening to inductively heat treat the material as it passes through the inductor.
In another aspect the present invention is an apparatus for, and method of, inductively heat treating a strip or slab material with a rectangular sheet inductor or a multi-turn inductor that requires enlargement of the interior cross sectional opening of the inductor to permit an abnormal region of the material to pass through the inductor and return to a different interior cross sectional opening when induction heat treating a heat treatment region of the material to pass within the inductor's opening. The top inductor section and the bottom inductor section can be spread apart from each other to allow the abnormal region of the material to pass through the inductor. If the material has varying electromagnetic properties the top inductor section or the bottom inductor section, or both the top and bottom inductor sections can be moved away from, or toward, the surface of the material passing through the inductor by sliding extension, or retraction of the opposing sides of the top and/or bottom inductor(s) to match inductive power output impedance to the variable load impedance of the material as it passes through the inductor.
The above and other aspects of the invention are set forth in this specification and the appended claims.
The foregoing brief summary, as well as the following detailed description of the invention, is better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, there is shown in the drawings exemplary forms of the invention that are presently preferred; however, the invention is not limited to the specific arrangements and instrumentalities disclosed in the following appended drawings.
In some applications of the present invention, a strip or slab material is defined herein as an electrically conductive material with an abnormal region and/or electromagnetic properties that may vary as the strip or slab material passes through a rectangular sheet inductor of one or more turns in an induction heating process, for example, for reheating the material before treatment in another industrial process, for example, forging after exit from the inductor. For convenience use of the term “material” herein is used to include both strip and slab materials and the term “variable material parameter” is used to describe the abnormal region or variable electromagnetic properties of the material. The rectangular sheet inductor can be formed from an electrically conductive material such as copper or a copper alloy and can be suitably connected to a source of alternating current to provide electric power for induction heating of the material as the material passes through the interior opening of the inductor.
In this embodiment of the invention moveable inductor sections 104 comprise one longer length side of the rectangular inductor that can be referred to as top inductor section 106 and inner moveable side inductor sections 108a and 108b that are respectively electrically continuous with the opposing ends of top inductor section 106 as shown in the figures. Each outer fixed side inductor section 114a or 114b is electrically connected to its corresponding inner moveable side inductor section 108a or 108b by an inductor side extension/retraction apparatus 116. Electrical insulation 109 that may be an electrical insulating material such as mica or electrical insulating medium such as air or other dielectric material is positioned between outer fixed sheet inductor side sections 114a and 114b, and inner moveable side inductor sections 108a and 108b and the inductor extension/retraction apparatus 116 on the adjustable first and second opposing sides of inductor 100.
Alternatively rectangular sheet inductor 100 can be described as being formed from a fixed sheet inductor side 107 opposing a moveable sheet inductor side 106 and adjustable first and second opposing sides with each adjustable opposing side formed from an outer fixed sheet inductor section 114a or 114b and an inner moveable sheet inductor section 108a or 108b with each fixed sheet inductor section joined to its respective moveable sheet inductor section by an inductor side extension/retraction apparatus 116. Provision is made in inductor 100 for connection to an alternating current power source. The first ends of the outer fixed sheet inductor sections 114a or 114b are suitably connected to the opposing ends of the fixed inductor side 107 and the first ends of the inner moveable sheet inductor sections 108a and 108b are suitably connected to the opposing ends of the moveable sheet inductor side 106. The fixed sheet inductor side 107 and the inner moveable sheet inductor sections 108a and 108b may be fabricated from a continuous electrically conductive sheet that is bended at connecting ends of fixed sheet inductor side 107 and inner moveable sheet inductor sections 108a and 108b to the shape shown in the drawings. The moveable sheet inductor side 106 and the inner moveable sheet inductor sections 108a and 108b may be fabricated from a continuous electrically conductive sheet that is bended at connecting ends of moveable sheet inductor side 106 and inner moveable sheet inductor sections 108a and 108b to the shape shown in the drawings.
In one embodiment of the invention thermal insulation 110 is provided on the interior of the fixed and moveable inductor sections to thermally insulate the interior inductor furnace walls that form furnace interior volume 112 through which strip or slab material 90 passes through as the moveable top inductor section 106 moves from a closed (fully retracted) position, through the partially extended positions, and the opened (fully extended) position. As shown in the figures in one embodiment of the invention two opposing “U” shaped thermal insulation sections are provided with the upper insulation attached to the interior of moveable sheet inductor side 106 and lower insulation attached to the interior of fixed sheet inductor side 107.
In some embodiments of the invention, the thermal insulation may comprise a folding thermal insulation material where the folds expand as the inductor furnace transitions from the closed position to the opened position to maintain insulation around the entire furnace volume.
In one embodiment of the invention inductor extension/retraction apparatus 116 comprises a triple-hinged flexible electrically conductive apparatus that has hinged flexible inductor joints 116a, 116b and 116c so that when each side inner moveable sheet inductor section (108a and 108b) transitions from a closed inductor (fully retracted) position shown in
In other embodiments of the invention the inductor side extension/retraction apparatus may comprise any number of joints and thus can be referred to as a multi jointed flexible apparatus.
In some embodiments of the invention the width of electrical conductors 118a′ and 118b′ can extend across the longitudinal length of the rectangular sheet inductor. In other examples of the invention, inductor side extension/retraction apparatus 115 comprises a plurality of inductor side extension/retraction apparatus 116 as shown, for example, in
In some examples of the invention, movement of the inductor from the closed (fully retracted) to the opened (fully extended) position may be required to allow the abnormal region of material 90 to pass through the interior of the inductor without inductively heating the abnormal region of the material and inductively heating the material passing through the inductor only when it is in the closed (fully retracted) position or a partially extended position.
Suitable single phase alternating current power source can be provided to the rectangular sheet inductor shown in
In other examples of the invention, movement of the opposing side moveable inductor sections 108a and 108b from the closed (fully retracted) position to the opened (fully extended) position may be used to accommodate a variable load impedance, for example, when the material comprises a multiphase steel with varied austenite (non-magnetic) and ferrite (magnetic) content. For the embodiment of the invention shown in
With reference to
Rectangular sheet inductor 101 further comprises first 74 and second 76 alternating current power supplies each with two terminals for connection to inductor, the first power supply 74 being connected at its first terminal 72 to the first half-turn 56 of the first inductor section 52 via fixed inductor sections 70 and 56a and at the other terminal 72′ to the second half-turn 58 of the first inductor section 52 via fixed inductor section 70′ and adjustable second opposing side 58b of the first adjustable first and second opposing sides 58a and 58b, with the connection being made at the end of the inductor opposite to the end having the shunt conductors. The second power supply 76 is connected at its first terminal 72″ to the first half-turn 62 of the second inductor section 54 via fixed inductor sections 70″ and 62b and at the other terminal 72″' to the second half-turn 60 of the second inductor section via fixed inductor section 70″' and adjustable second opposing side 60b of the second adjustable first and second opposing inductor sides 60a and 60b. The connection of the two power supplies to the inductor 101 form a series electrical circuit for current passing through inductor 101 at a given instant from the first power supply 74 through the first half-turn 56 of the first inductor section 52, through shunt conductor 66 and the first half-turn 62 of the second inductor section 54 into the second power supply 76, then from the second power supply 76 into the second half-turn 60 of the second inductor section 54 through shunt conductor 64 to the second half-turn of the first inductor section 58 and returning to the first power supply 74, with the current reversing its direction at another instant corresponding to an opposite cycle of the alternating current power supplies.
Each of the pair of first adjustable first 58a and second 58b opposing inductor sides and second adjustable first 60a and 60b opposing inductor sides are as disclosed above with each opposing inductor side comprising an outer fixed sheet inductor section and an inner moveable sheet inductor section with the first ends of the outer fixed sheet inductor sections of the first adjustable first and second opposing sides connected to the opposing ends of the fixed inductor sides 64 (shunt conductor) and 70′ and the first ends of the inner moveable sheet inductor sections of the first adjustable first and second opposing sides connected to the opposing ends of the moveable inductor side 58′. Similarly for the second adjustable first 60a and second 60b opposing inductor sides the first ends of the outer fixed sheet inductor sections of the second adjustable first and second opposing sides are connected to the opposing ends of the fixed inductor sides 64 and 70″' and the first ends of the inner moveable sheet inductor sections of the second adjustable first and second opposing inductor sides connected to the opposing ends of the moveable inductor side 60′. Similar to previous embodiments of the invention a separate inductor side extension/retraction apparatus is provided for connecting a second end of the outer fixed sheet inductor section and a second end of the inner moveable sheet inductor section of each of the pair of adjustable first and second opposing sides 58a-58b and 60a-60b. With this adjustable arrangement the pair of first adjustable first 58a and second 58b opposing inductor sides and second adjustable first 60a and 60b opposing inductor sides can extend or retract moveable inductor sides 58′ and 60′ to permit material with a variable material parameter to pass through a variable cross sectional opening in inductor sections 52 and 54.
In some embodiments of the two-turn inductor 101 illustrated in
Alternatively in other examples of the present invention shown in
In the above examples of the invention a single rectangular sheet inductor or a single multi-turn inductor are described. The moveable inductor section as disclosed herein can be applied to other arrangements of one or more rectangular sheet inductors and other arrangements of multi-turn inductors.
In some examples of the invention a dynamic impedance load matching control system can be provided so that real time monitoring of changes in load impedance can be used to adjust the position of the inductor's moveable coil sections for materials such as multiphase steels.
Orientation terminology such as top, bottom and side, or upper and lower do not limit the orientation of a rectangular sheet heating inductor of the present invention and is used to simply disclosure of the various embodiments of the invention.
In the description above, for the purposes of explanation, numerous specific requirements and several specific details have been set forth in order to provide a thorough understanding of the example and embodiments. It will be apparent however, to one skilled in the art, that one or more other examples or embodiments may be practiced without some of these specific details. The particular embodiments described are not provided to limit the invention but to illustrate it.
Reference throughout this specification to “one example or embodiment,” “an example or embodiment,” “one or more examples or embodiments,” or “different example or embodiments,” for example, means that a particular feature may be included in the practice of the invention. In the description various features are sometimes grouped together in a single example, embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of various inventive aspects.
The present invention has been described in terms of preferred examples and embodiments. Equivalents, alternatives and modifications, aside from those expressly stated, are possible and within the scope of the invention.
This application claims the benefit of U.S. Provisional Application No. 62/221,396, filed Sep. 21, 2015, which is hereby incorporated by reference in its entirety.
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Number | Date | Country | |
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62221396 | Sep 2015 | US |