Radiant tubular element for industrial plants and similar
10126063 ยท 2018-11-13
Inventors
Cpc classification
F23C3/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23D14/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C21D9/0006
CHEMISTRY; METALLURGY
F27D99/0035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/426
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23D14/151
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F1/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D99/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23D14/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23C3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Tubular radiant element for industrial plants and the like, made of a metal material resistant to high temperatures, including at least one vertical tubular portion, optionally at least a curved tubular portion, provided with a surface (S), including at least one radiation and stiffening means arranged on at least a portion of the surface (S) of the tubular radiant element.
Claims
1. A tubular radiant element for industrial plants for heat treatments of steel and/or other metals, comprising: at least a central vertical tubular portion having a top portion and a bottom portion and two side vertical tubular portions, wherein said central and two side vertical tubular portions are all connected by upper and lower curved tubular portions, all of said portions having circular sections and provided with a surface (S) of said circular sections; a plurality of radiation and stiffening means comprising a plurality of protrusions; wherein the tubular radiant element is comprised of a metal material resistant to high temperatures at least up to 1300 C., wherein said protrusions are provided on: the top portion of the central vertical tubular portion and each of said side vertical tubular portions, and on at least a portion of said upper curved tubular portions, the central vertical portion comprising a smooth surface in the bottom portion, wherein all the plurality of protrusions are arranged on and project radially outwards from said surface of said circular sections to prevent the forming of turbulences or vortices in the hottest portions of the tubular radiant element, wherein said plurality of protrusions do not contact each other and are arranged into substantially linear lines and columns spaced from each other, spacing out a means arranged in vertical direction with a means arranged in horizontal direction, wherein said protrusions have a length of between 2 cm and 10 cm and a width of between 2 cm and 4 cm, and wherein said protrusions project relative to said surface (S) from about 0.5 cm to about 1 cm, wherein each of said plurality of protrusions has a pyramidal three-dimensional shape.
2. The tubular radiant element according to claim 1, wherein said plurality of radiation and stiffening means is obtained by processing the material that constitutes said tubular radiant element, including the moulding of the same on a special mould or the pressing by special presses or other equipment suitable for the purpose.
3. The tubular radiant element according to claim 1, wherein said plurality of radiation and stiffening means is made of a metal material resistant to high temperatures, or alloys thereof, including nickel and chromium alloys, Inconel 600, 601 or 602, Incoloy 800, Incoloy 800H, stainless steel AISI304, 310, 309, 309S, 316, 316Ti, 330, 321, AVESTA235MA, ALUFER, ALLOY X, Kanthal materials such as APM, APMT, Mitsubishi materials such as MA230, MA250, cast iron Ni-resist or other cast iron derivatives, molten metal materials with or without nickel components, chromium, aluminium, such as Gx40CrNi 26-20, KHR48N, KHR35H, and/or other metal or non metal materials suitable for the purpose.
4. The tubular radiant element according to claim 1, comprising a coating layer at said plurality of radiation and stiffening means.
5. The tubular radiant element according to claim 4, wherein said coating layer has an even thickness of at least 0.2 mm.
6. The tubular radiant element according to claim 4, wherein said coating layer is arranged within the tubular radiant element, has a tubular shape or corresponding to the tubular element wherein it is inserted and exhibits a substantially smooth and continuous or corrugated surface.
7. The tubular radiant element according to claim 1, wherein said tubular radiant element has a thickness of about 0.5-14 mm depending on the material it is made of.
8. The tubular radiant element of claim 1, wherein the bottom portion of the central vertical tubular portion is configured for connection to a burner and the top portion of the central vertical tubular portion is not reached by a burner flame.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The features of the invention shall be better understood by any man skilled in the art from the following description and annexed drawing tables, provided by way of a non-limiting example, wherein:
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(12) With reference to the annexed
(13) With reference to
(14) The tubular radiant element 10 may comprise at least one vertical tubular portion 12, optionally at least one curved tubular portion 14 and at least one union element 16.
(15) The at least one union element 16, optionally shaped as known welds and/or joints, connects and combines together the at least one vertical tubular portion 12 with the optional at least one curved tubular portion 14 and/or with other devices or portions required for the operation thereof.
(16) The tubular radiant element 10 may be shaped as a double U, W or M, single P, double P, double M or may have any other shape suitable for the purpose.
(17) By way of a non-limiting example only, the annexed figures show a tubular radiant element 10 shaped as a double P.
(18) Each portion 12, 14 of the tubular radiant element 10 has a substantially circular section but it may also have other types of section, without departing from the scope of protection of the present invention, such as an oval, rectangular, square, polygonal section, et cetera.
(19) The tubular radiant element 10 may be made of a metal material resistant to high temperatures, optionally as metal alloys, in particular capable of resisting at least up to 1300 C., such as: nickel and chromium alloys, for example Inconel 600, 601 or 602, Incoloy 800, Incoloy 800H, AISI304, 310, 309, 309S, 316, 316Ti, 330, 321, AVESTA235MA, ALUFER, ALLOY X, Kanthal materials such as APM, APMT, et cetera, Mitsubishi materials such as MA230, MA250, et cetera, cast-iron Ni-resist or other cast iron derivatives, molten metal materials with or without nickel, chromium, aluminium components et cetera, such as Gx40CrNi 26-20, KHR48N, KHR35H, et cetera, and/or other materials suitable for the purpose.
(20) The tubular radiant element 10 is obtained by cutting, calendaring, forming, pressing and welding of the sheet and/or rolled sections, and/or through melting and/or forging and/or extrusion, et cetera, according to the material used.
(21) The tubular radiant element has a thickness of about 0.5-14 mm depending on the material it is made of, for example a thickness from 0.5 mm to 14 mm for tubular radiant elements made of sheet and/or rolled sections and a thickness from 6 mm to 14 mm for tubular radiant elements made through melting, forging, extrusion, et cetera.
(22) The tubular radiant element 10 comprises at least one radiation and stiffening element 18. In particular, the tubular radiant element 10 comprises a plurality of radiation and stiffening means 18, provided on at least a portion of the surface S of the tubular radiant element 10.
(23) The at least one radiation and stiffening means 18 may be provided on at least a portion of the vertical tubular portions 12 and/or on at least a portion of the curved tubular portions 14 and/or on the entire surface S of the same tubular radiant element 10.
(24) In one version of the invention, the at least one radiation and stiffening means 18 is provided in at least some of the portions of the tubular radiant element 10 not directly contacting the flame coming from the burner.
(25) By way of a non-limiting example, shown in
(26) In one version of the invention, the central vertical tubular portion 12 does not exhibit radiation and stiffening elements 18.
(27) The at least one radiation and stiffening means 18 is provided in the zones of the tubular radiant element where it is necessary to have a larger radiant surface and/or a better stiffening of the structure thereof, while optionally preventing the forming of possible turbulences or vortices in the hottest portions of the same or in the portions closer to the burner.
(28) The at least one radiation and stiffening means 18 allows obtaining a series of advantages related to the radiant capabilities of the tubular radiant element 10, such as: a greater heat radiation efficiency, an increase of the overall radiant surface, a better heat radiation evenness, consequently achieving a product of steel and/or other metals treated in a better way and therefore with better properties.
(29) The at least one radiation and stiffening means 18 further allows obtaining a series of advantages related to the stiffness of the tubular radiant element, such as: lower deformation over time, longer duration over greater absorption of the mechanical waves generated by the connected burner, and by the same operation of the tubular element, which cause mechanical stress to the same tubular radiant element 10 causing the breakage or twisting thereof, less elongation of the same tubular radiant element 10 by deformation and/or a more adequate elongation, higher resistance to heating and cooling thermal shocks which cause changes in temperature between 600 C. and 1300 C., et cetera.
(30) Moreover, thanks to the presence of the at least one radiation and stiffening means 18, it may be possible to obtain a better flame vortex within the tubular radiant element 10, which may cause an acceleration of the resulting fumes. In this way it could be possible to obtain a shorter ignition time of the burner, while reducing the consumptions related thereto. Such speeding up of the fumes may cause a greater combustion in the return step of the same, with consequent reduction of the emission of harmful substances, such as nitrogen oxides and mixtures thereof.
(31) The at least one radiation and stiffening means 18 may comprise an indentation and/or a protrusion and/or a corrugation and/or a coupling and/or a ribbing and/or a channel, et cetera, projecting inside and/or outside relative to surface S of the tubular radiant element 10 and/or a reticular element and/or any other element capable of increasing the radiant surface and the stiffening of the same tubular radiant element 10.
(32) The at least one radiation and stiffening element has any geometrical shape, for example spheroid, cap, ovoid, ellipsoidal, annular, parallelepiped, cubic, polyhedral, prismatic, pyramid, conical, linear, et cetera, a plan and/or section configuration of any shape, for example rectangular, square, oval, ellipsoidal, helical, circular, polygonal, reticular, with rounded edges, et cetera.
(33) The at least one radiation and stiffening means 18 may be obtained by processing the material that constitutes the tubular radiant element 10, such as the moulding of the same on a special mould or the pressing by special presses or other equipment suitable for the purpose.
(34) In one version of the invention, visible in the
(35) Such at least one radiation and stiffening means 18 comprising means already formed may subsequently be applied to the tubular radiant element 10, for example by welding or other methods suitable for the purpose. In this way, in fact, the radiation surface of the tubular radiant element 10 is increased and at the same time, the structure thereof is stiffened, making it more resistant to the mechanical and dynamic stresses, for example given by the vibrations imparted by the burner.
(36) In yet a further version of the invention, visible in
(37) In a further version of the invention (not shown) the surface of the coating layer 20 has corrugations and/or a non smooth shape.
(38) Such coating layer 20 may be made of the same material that constitutes the tubular radiant element 10 or another material resistant to high temperatures and suitable for the purpose.
(39) The at least one radiation and stiffening means 18 may exhibit any dimension. In particular, the dimensions of the at least one radiation and stiffening means 18 may range, for the larger dimension, between 0.2 mm and the entire length and/or circumference and/or perimeter of the tubular radiant element 10 whereon they are made, and for the smaller dimension, between 0.2 mm and 200 mm.
(40) In one version of the invention, the dimensions of the at least one radiation and stiffening means 18 are comprised, for the larger dimension, between 2 cm and 10 cm and for the smaller dimension, between 2 cm and 4 cm.
(41) The at least one radiation and stiffening means 18 projects relative to surface S of the tubular radiant element 10 by about 0.1 cm-10 cm.
(42) In one version of the invention, the projection dimensions of the at least one radiation and stiffening means 18 range between 0.5 cm and 1 cm.
(43) Such at least one radiation and stiffening means 18 made be made of the same materials that constitute the tubular radiant element 10 or other similar materials suitable for the purpose.
(44) Such at least one radiation and stiffening means exhibits a predetermined arrangement and shape so that the end result exhibits the desired features of stiffening and increase of the radiation surface. In particular, the forming of the at least one radiation and stiffening means 18 is prevented from causing the forming of undesired cracks, slits and/or deformations which could weaken the overall structure of the tubular radiant element 10 itself.
(45) In a non-limiting exemplary embodiment of the invention, outside surface S of the tubular radiant element 10 there is a plurality of radiation and stiffening means 18 arranged according to a circular arrangement and/or into substantially linear lines and columns, spacing out a means arranged in vertical direction with a means arranged in horizontal direction, as seen in
(46) The plurality of radiation and stiffening means 18 may also exhibit other arrangements, without departing from the scope of protection of the present invention.
(47) On such vertical side tubular portions there is at least one radiation and stiffening element 18 substantially shaped as a channel or ribbing, arranged according to the longitudinal axis of the same tubular portion and with length substantially equal to that of the latter.
(48) Generally, in one embodiment, the at least one radiation and stiffening means 18 causes a thickness variation, positive or negative, compared with the thickness of the tubular radiant element 10, by about 10%.
(49) By way of a non-limiting example only, below are some examples of the increase of the radiant surface of tubular radiant elements 10 provided with a plurality of radiation and stiffening means 18.
EXAMPLE 1
(50) The increase of radiant surface on the vertical side tubular portions 12 is equal to about 13256 mm.sup.2 thanks to the presence of 94 radiation and stiffening means 18 in vertical position, and 95 radiation and stiffening means 18 in horizontal position.
EXAMPLE 2
(51) The increase of radiant surface on the central vertical tubular portion 12, having a larger diameter than the side ones, is equal to 26460 mm.sup.2 thanks to the presence of 189 radiation and stiffening means 18 in vertical position, and 189 radiation and stiffening means 18 in horizontal position.
EXAMPLE 3
(52) The increase of radiant surface on the curved tubular portion 14 is equal to about 5320 mm.sup.2 thanks to the presence of 38 radiation and stiffening means 18 in vertical position, and 38 radiation and stiffening means 18 in a horizontal position.
(53) It has thus been observed that the invention achieves the intended objects.
(54) The present invention has been described according to preferred embodiments but equivalent versions may be conceived without departing from the scope of protection offered by the following claims.