US2000906A - Method of and apparatus for superheating - Google Patents

Method of and apparatus for superheating Download PDF

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US2000906A
US2000906A US512675A US51267531A US2000906A US 2000906 A US2000906 A US 2000906A US 512675 A US512675 A US 512675A US 51267531 A US51267531 A US 51267531A US 2000906 A US2000906 A US 2000906A
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steam
tubes
water
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superheater
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Charles S Turner
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F22STEAM GENERATION
    • F22GSUPERHEATING OF STEAM
    • F22G7/00Steam superheaters characterised by location, arrangement, or disposition
    • F22G7/14Steam superheaters characterised by location, arrangement, or disposition in water-tube boilers, e.g. between banks of water tubes
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/4935Heat exchanger or boiler making

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  • This invention relates to steam superheater conventionally a typical water tube boiler, and constructions, and has for one of its objects prosuperheater coils arranged therein for radiant vision of an improved form of superheater highly heating; serving to illustrate a typical applicaresistant to burning out, sagging or creeping, tion of one embodiment of y invention even though subjected over long periods to the Figure 2 is across sectionalview of asuperheat- 5 impingement thereagainst of radiant heat at high er tube, showing one method of applying the printemperature, and even though the supply of satciples of my invention thereto.
  • L urated steam to the superheater tubes may be gure 3 is a cross sectional view of a somewhat cut oil or greatly diminished, modified form of superheater tube embodying my Another object of this invention is the provision invention. 10 of a method and improved means whereby the Figure 4 is a similar sectional view showing antemperature of the superheated steam emanating other modification of my improved superheater from the superheater tubes may be controlled, autube construction. tomatically or otherwise, within close limits.
  • Figure 5 is a cross sectional view showin Still As commonly constructed, superheater tubes another modification of my improv superheatol' 15 are kept at a temperature sufliciently low to pretube construction.
  • FIG. 6 is a similar cross sectional view of anurated steam which is supplied to them from the other modification of y inventionmain boiler. If the supply of saturated steam is u e 7 S a s r Cross Sect V ew of cut off or greatly diminished, however, the heat other modification of y inventiona 20 impinging against the tubes may not be conducted
  • Figure 8 is a similar cross sectional view of anaway from them fast enough, in which event sagot modification y inventionging or creeping, or burning out of the tubes
  • Figure 9 is a similar cross sectional view of anis the common result. My invention contemother modification of y invention.
  • cooling means appurtenant the superheat- Figure 12 is a longitudinal Sectional w 30 er tubes in such heat-conducting relation to the th u a ta ff manif d, w i I may us exposed walls thereof that by supplying a reasonwith the tube construction shown in Figure 5.
  • Figure 13 is a view partly in elevation and at a minimum dlirerence of temperature, the supartly in section of a header construction and perheater tubes may be kept safely below their method of leading tubes thereto suitable for use 35 fusing temperature and prevented from creepwith some forms of my invention. ing or burning out.
  • Reference character l0 designates the tubes of of an improved form of superheater incorporata water tube steam boiler. Any desired form of ing the aforementioned safeguard against danboiler or steam generating equipment may be gerously high temperatures, but which 'nevertheusedwith my invention, however. Numeral II less is more effective in its superheating action indicates steam drums from which saturated than such construction as they are now commonly steam is led off through pipe l2 in the usual or constructed. any desired manner.
  • the superheater tubes to This application is a continuation in part of which the steam is conducted by the pipe l2 are 5 my previously filed application Ser. No. 496,868, generally designated l3 in Figure 1, and may filed Nov. 20, 1930. take any of the forms indicated in Figures 2 to Other objects and advantages will be apparent 10, inclusive, or any of many other modifications from the follow-ing description, where reference. thereof which will occur to persons understandis made to the accompanying drawings illustrating the principles underlying my invention.
  • the tubes for the cooling water are formed integrally with the superheater tube by crenelating the same in the manner shown; thus forming a plurality of quite closely spaced cooling chambers 22.
  • the meeting edges of the bent back portions so formed may be sealed by welding as indicated at 23.
  • the steam is conducted through the portion 24, and-will be seen to have a greater area. of contact with metal heated by conduction from the exposed outer portions of the tube than is the case with an ordinary cylindrical pipe, as
  • each oi the tubes 22 may also conduct heat into the interior and give it up to the steam, at least when or where the tubes 12 are empty of cooling water.
  • the distance from the most remote point of the outer wall to water-contactible metal of the jcooling tube will be seen to be short, and the provision of a direct metallic connection of adequate area, distributed at frequent intervals throughout the entire peripheral extent of the exposed walls of the tube construction enables sufflcient heat conduction to take place between the exposed portions of the chambers 24 and the contained cooling water within the spaces 22 and to let the water cool the tubes at all points when desired.
  • the tubes are formed in the manner shown in Figure 4, the cooling water, when used, may flow through the tubes 25, which, when and where empty of water, increase the conductive metallic surface and aid in heating the steam, as in the other embodiments.
  • the steam is of course conducted through the portion 20.
  • the principles oi. my invention may, if desired, be incorporated in a superheater which is built up in wall form, with alternate cooling and superheating tubes.
  • the cooling tubes are, excepting for the end ones, which may be separate pipes (48) completely enclosed, and formed by configurations of the superheater tubes, which therefore present an unbroken heat absorbing surface as great as is possible by any construction, while the cooling tubes are in such effective direct metallic connection with them that they provide very efllcient cooling action when the cooling fluid is flowing.
  • the super--' heater tubes in Figure 10 are designated A construction exceeding this in emciency in some particulars, and in which no welds are subjected to boiler pressure, is shown in Figure 9.
  • the fully eflective metallic connection between the cooling and superheating tubes is, as in' the tube form of Figure 6, only present at or near the surfaces, which results in very eilicient heat transfer between them only thereblong. This enables efllcient control of the temperature of the wall without undue absorption of heat from the steam in tubes 46.
  • the cooling tubes (45) effectively assist in transferring heat to the superheater tubes (48). 7
  • Figure 11' shows awall type superheater construction incorporating the tube design shown in Figure 10.
  • the numeral designates a furnace well, although the tubes may be placed in any desired position.
  • the cooling water may be taken from a lower part of the boiler and returned to an upperpart, as by conducting it from the'lower or "sludge drum “35 through the pipe 2
  • This method of supplying the cooling water is of course optional, however, and an outside scurce and disposal thereof might be provided if desired.
  • the steam may enter the superheater tubes from above, as through the header ll of Figure 1, and may leave through the header it at the bottom.
  • the cooling water stands at variant levels in the cooling tubes during normal operation in order to control the temperature of the delivered superheated steam, but no material desuperheating occurs as a result of the downfiow of steam through the lower, water-containing portions of the assembly, by reason of the fact that the cooling water absorbs heat much more readily from the effected by preventing the outside walls and so the steam from ever reaching a temperature higher than desired, rather than by desuperheating the steam after elevation of its temperature above that finally desired (and consequent excessive heating of the walls).
  • Any desired manifold and header construction may be used for conducting the steam and water to and from the tubes.
  • FIG 12 One form of such manifold suitable for use with the tube construction shown in Figure 5 is indicated in Figure 12, the tubes 21 being led into registering apertures in the manifold 3i, and the-water flowing to or from them through the pipe 32.
  • the arcuate plates 28 may be cut away within the manifold, as shown in the drawing, to permit the steam to flow into or from the section 30 through the pipe 33.
  • the arrows in Figure 6 indicate a flow of steam into the superheater at this point, and
  • i also the water header, designated 5
  • the headers maybe arranged as shown in , Figure 13. in which 50 indicates a steam header, which. may run' the length of the wall, as may I
  • the tube formation shown in Figure 13 is that shown cross sectionaliyin Figure 9.
  • the water-containing portion of the cooling tubes ceases to function as a superheater, by reason of the rapid heat absorption from its walls by the water.
  • the effective superheating area is therefore dependent upon and controllable by variation of the level of the cooling water in the cooling tubes. In the arrangement shown in * Figure 1, the higher the level of the water in the cooling tubes, the less effective area has the superheating portion, for only those portions of the superheating tubes above the water function as superheaters.
  • the inflow of water to the cooling tubes may be so adjusted relatively to the rate of vaporization of the cooling Water into steam, that the level of the cooling water may be maintained substantially constant at'any desired level, and by thus controlling ⁇ the superheating area, the temperature of the emanating steam may be maintained at any desired point.
  • the danger of injuring the superheater tubes during the period before saturated steam begins to pass through them may be eliminated, and the presence of sufficient water in the cooling tubes whenever the'passage of steam through the superheater tubes falls off or ceases, protects them from harm by the heat which otherwise might not be carried away with sufficient rapidity.
  • the flow of cooling water thereafter is preferably controlled by an automatic valve 40, across which the hand valve is by-passed.
  • the automatic valve 40' may be thermostatically controlled; a
  • thermostat which may be of any desired con-' struction, being indicated at 38 in Figure 1.
  • the valve 40 may thereby be governed in relation to the temperature of the emanating steam, and arranged to open sufficiently to allow the entry of a desired quantity of water when the tem-- perature of the superheated steam reaches a predetermined point, and to open and close propore tionately as the temperature of the steam rises above or falls below the desired point.
  • the temto produce superheated steam of the desired temperature.
  • a pluraliy chambered conduit structure for superheater installations comprising, a steam chamber arranged at an angle to the horizontal within the furnace alternatedly spaced portions of whose outer wall are directly exposed to external radiant heating influence, and a plurality of longitudinally extending chambers for the conducting of a cool:
  • a conduitassembly for water-cooled superheaters and the like comprising a relatively thinwalled steam conduit having exposed surface portions and longitudinally extending flutes therein, a cooling conduit having independent walls projecting into eachvof said flutes to interflt with the steam conduit, and metallic heat bridging portions integral with each of said cooling conduits and with the steam conduit and arranged substantially at the exposed surface portions of the latter, the other interntting portions of said steam and water conduits being arranged adjacenteach other but having distinct surfaces.
  • a tubular superheater construction comprising a steamconduit and abutting temperature control conduits spacedly arranged around and having wall portions separate from but interfltting with those of the steam conduit, and metallic heat bridging portions integral with the walls of the steam conduit and temperature control conduits and connecting said walls only near the exposed surfaces of the steam conduit but throughout substantially the entire active superheating length, inner parts of said interfitting wall portions being left unconnected.
  • a tubular superheater construction comprising a steam conduit, a plurality of separate temperature control conduits lying against spaced portions of the steam conduit, said temperature control conduits having walls abutting the steam conduit over a substantial area, and metallic heat bridging portions integral with the walls of both the temperature control and steam conduits throughout their entire eflective length and directly connecting the former to the latter along substantially the entire length, said heat bridging portions being located at exposed areas-directly subjectable to radiant heat.
  • a tubular superheater construction comprising an individually complete steam conduit, a
  • plurality of an individually complete separate temperature control conduits abutting the steam conduit, and metallic heat bridging portions integral with the wall portions of both the temperature control and steam conduits throughout substantially their entire effective length and directly connecting the former to the latter only at exposed surface portions of said steam conduit directly subjectable to radiant heat.
  • a superheater comprising a water and steam tube assembly including a plurality of alternate steam and water'conduit portions arranged around a container area and having alternated exposed outer faces, metallic heat-bridging means integral with all of said alternating exposed faces and completing a continuous outer wall lying outside said contained area, said alternated steam and water conduit portions also having abutting face portions lying within the area bounded by and unconnected by said heat-bridging means, whereby the schism between said abutting unconnected portions resists direct heat transfer between them while the bridging means assists direct heat absorption from the outer wall by both the steam and water conduit portions.
  • a tubular superheater construction arranged within the furnace and comprising a steam conduit, a plu rality of separate temperature control conduits abutting the steam conduit, certain of said abutting portions being unconnected, and metallic heat bridging portions integral with the wall portions ofboth the temperature control and steam conduits and directly connecting the former to the latter only at the exposed surface of said steam conduit, whereby heat interchange between one conduit and the exposed wall portions of the abutting conduit is facilitated, while the schism between the unconnected abutting wall portions between the edges thereof restricts heat interchange therebetween.
  • a superheater comprising a water and steam tube assembly including a plurality of conduit portions arranged around a contained area, said conduit portions having individual walls and each enclosing a longitudinal channel, and metallic bridging means integralwith all of said conduit portions throughout substantially their entire effective length and cooperating to form a portion of a continuous outer wall as well as to assist in the conduction of heat from the outer wall to the contained area, said contained area being distinct from said longitudinal channels contained within said conduit portions and forming, an additional channel.
  • a conduit assembly in combination with a furnace, arranged at an angle to the horizontal within the furnace and comprising exposed wall portions defining a passage for steam to be superheated and separate wall portions defining a passage for fluid for temperature control, metallic heat bridging portions connecting and integral with. both such wall portions and arranged substantially at said wall portions exposed to direct radiant heat impingement, means for supplying cooling fluid to the passage for temperature control fluid, 'and means responsive to the condition of the superheated steam and arranged to regulate the admission of such fluid to said passage to hold the same at a level within the limits of said exposed wall portion, whereby the amount of heat which may thereby be conducted away from the exposed wall portions defining the passage for steam to besuperheated may beregulated.
  • a superheater comprising a water and steam tube assembly including alternate steam and water conduit portions, the latter being connected to said cooling water supply source at the lower end and to said steam space at the upper end,
  • portions being arranged around a contained area and having alternated abutting faces exposed to radiant heat within the furnace, and metallic heat bridging means integral with both and connecting the alternated heat-exposed face portions of, the steam and water conduit portions throughout substantially their entire effective length.
  • a superheater comprising a water and steam tube assembly, the water tube portions of which are connected at the lower end to said water supply source and at the other end to said steam space, said assembly including a plurality of conduit portions arranged in abutting relation around a contained area, said conduit portions having individual walls and each enclosing a longitudinal channel, and the contained area defining another channel, and metallic bridging means integral with all of said conduit portions throughout substantially their entire effective length and cooperating to form a portion of a continuous outer wall as well as to assist in the conduction of heat from the outer wall to the contained area, said contained area being distinct from said longitudinal channels contained within said conduit portions and form:
  • a superheater comprising a water and steam tube assembly the water tube portionsof which are connected at the lower end to said water supply source and at the other end to said steam space, said assembly including a plurality of alternated conduit portions arranged around a contained area, certain of said conduit portions having individual wall sections enclosing isolated longitudinal channels, heat bridging weld portions integral with each of said conduit portions and an adjoining conduit portion and completing an unbroken heat bridge between such adjoining conduit portions throughout substantially their entire eifective length.
  • a superheater comprising a water and steam tube assembly the water tube portions of which are connected at the lower end to said water supply source and at the other end to said steam space, said assembly including a plurality of alternated conduit portions arranged around a contained area, certain of said conduit portions having individual wall sections enclosing isolated longitudinal channels, heat bridging weld portions integral with each of said conduit portions and an adjoining conduit portion and completing an unbroken heat bridge between such adjoining conduit portions throughout substantially their entire eifective length and between the outside of the assembly and the contained area.
  • superheating and superheater controlling means including a unitary plurally sectioned metallic superheater tube assembly comprising independent steam and cooling fluid passages, said assembly having an outer wall exposed to direct radiation within the furnace, and said cooling fluid passages being arranged upon said outer wall exposed to direct radiation, said steam and cooling fluid passages being in direct metallic heat-conductive communication with 1 each other and with the outer wall throughout substantially their entire effective length, and all having active portions within the heating chamber, said assembly being arranged at an angle to the horizontal and having separate inlets for steam and cooling fluid, a source of cooling fluid supply connected to the cooling fluid inlet of said assembly, and regulatable means responsive to the temperature of the superheated steam and arranged to hold the cooling fluid in the assembly at a level within the. zone of heating, comprising a throttle valve arranged between said cooling fluid passages and said inlet thereto for controlling the cooling fluid supply to said inlet.
  • a water regulated tubular superheater assembly exposed to direct radiation within the furnace and comprising a plurality of longitudinal generally parallel cooling fluid conduits arranged around a similarly extending contained area and having component wall portions exposed to radiation within-the furnace, and a steam conduit portion lying at least partially within such contained area and metallically integral with said cooling conduits throughout substantially their entire effective heat-absorbing length.
  • a tubular water-cooled superheater assembly extending through a portion of the furnace at an angle to the horizontal and spaced from the furnace walls, said superheater assembly comprising a metallically continuous outer wall exposed to direct radiation within the furnace and a plurality of wall portions therewithin defining conduits, at least one of said conduits being for steam while a plurality are for cooling water, said cooling fluid conduits being arranged at said outer' wall exposed to direct radiation, and a metallic heat bridging portion integral with said exposed outer wall portion and integral with wall portions defining both the steam and water con duits throughout substantially their entire effective length.
  • heater element comprising a structurally unitary tube arranged at an angle to the horizontal andhaving an outerwall exposed to direct radiation :70, L r. 20.
  • the furnace including a plurality of longitudinally extending cooling chambers connected to said source of cooling water, and an independent steam passage having spacedly separated portions of its wall exposed to external heat influence, between which exposed wall portions the longitudinally extending cooling chambers are peripherally arranged, the wall portions of said cooling chambers being arranged at and directly connected to said external wall exposed to direct radiation within the furnace for direct heatingabsorption therefrom, said wall portions of the cooling chambers cooperating with the spaced wall portions of the steam passage in constituting the outer conduit wall.
  • tion in a superheater structure consisting 01 separate metallic superheater and cooling water tubes arranged at an angle to the horizontal within a zone of heating and in heat interchanging relation to each otherthroughout substantially their entire effective heat absorbing length, which comprisessupplying steam and water to the respective tubes, directly throttling the inlet of the water supply below the evaporative capacity of the tubes sumciently to cause the water to assume a gravity induced level within the tubes, and

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  • General Engineering & Computer Science (AREA)
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Description

4 Sheets-Sheet l c. s. TURNER METHOD OF AND APPARATUS FOR SUPERHEATING Filed Jan. 31, 1931 P May 14, 1935.
\ INVENTOR fiidrdas 5 720% er ATTORNEYS BY Sam/V09 May 14, 1935.
C. S. TURNER METHOD OF AND APPARATUS FOR SUPERHEATING Filed Jan. 31, 1931 4 Sheets-Sheet 2 INVENTOR Cidrdas 5' 720 21 er ATTORNEYA? May 14, 1935. c, s, TURNER METHOD OF ANDVAPPARATUS FOR SUPERHEATING Filed Jan. 31, 1931 4 Sheets-Sheet 3 Liarjcs S. 720"]! er ATTORNEYS C. S. TURNER METHOD OF AND APPARATUS FOR SUPERHEATING May 14, 1935.
Filed Jan. 31, 1931 4 Sheets-Sheet INVENTOR CfidrZ as S, 720-2 61' Jaw 9* 72:
ATTORNEYS Patented May 14, 1935 UNITED STATES PATENT OFFICE METHOD OF AND APPARATUS FOR SUPERHEATING Charles S. Turner, Detroit, Mich.
Application January 31, 1931, SerialNo. 512,675
21 Claims. (Cl. 122-479) This invention relates to steam superheater conventionally a typical water tube boiler, and constructions, and has for one of its objects prosuperheater coils arranged therein for radiant vision of an improved form of superheater highly heating; serving to illustrate a typical applicaresistant to burning out, sagging or creeping, tion of one embodiment of y invention even though subjected over long periods to the Figure 2 is across sectionalview of asuperheat- 5 impingement thereagainst of radiant heat at high er tube, showing one method of applying the printemperature, and even though the supply of satciples of my invention thereto. L urated steam to the superheater tubes may be gure 3 is a cross sectional view of a somewhat cut oil or greatly diminished, modified form of superheater tube embodying my Another object of this invention is the provision invention. 10 of a method and improved means whereby the Figure 4 is a similar sectional view showing antemperature of the superheated steam emanating other modification of my improved superheater from the superheater tubes may be controlled, autube construction. tomatically or otherwise, within close limits. Figure 5 is a cross sectional view showin Still As commonly constructed, superheater tubes another modification of my improv superheatol' 15 are kept at a temperature sufliciently low to pretube construction.
vent their burning out or creeping by the sat- Figure 6 is a similar cross sectional view of anurated steam which is supplied to them from the other modification of y inventionmain boiler. If the supply of saturated steam is u e 7 S a s r Cross Sect V ew of cut off or greatly diminished, however, the heat other modification of y inventiona 20 impinging against the tubes may not be conducted Figure 8 is a similar cross sectional view of anaway from them fast enough, in which event sagot modification y inventionging or creeping, or burning out of the tubes Figure 9 is a similar cross sectional view of anis the common result. My invention contemother modification of y invention.
plates the integration of cooling means with the Figure 10 S 8- S o Cross Sectional View of 25 exposed walls of the superheater tubes in a way other modification of y invention which will prevent the attainment of dangerous F u 11 is a p p t v w sh w a typ temperatures by such walls when steam in nor- Cal method of installing my construction Shown mally operative quantities is absent, in other in Cross ec in Figure words, cooling means appurtenant the superheat- Figure 12 is a longitudinal Sectional w 30 er tubes in such heat-conducting relation to the th u a ta ff manif d, w i I may us exposed walls thereof that by supplying a reasonwith the tube construction shown in Figure 5. able amount of water, steam, or other cooler fluid, Figure 13 is a view partly in elevation and at a minimum dlirerence of temperature, the supartly in section of a header construction and perheater tubes may be kept safely below their method of leading tubes thereto suitable for use 35 fusing temperature and prevented from creepwith some forms of my invention. ing or burning out. Referring now to the drawings:
Another object of this invention is the provision Reference character l0 designates the tubes of of an improved form of superheater incorporata water tube steam boiler. Any desired form of ing the aforementioned safeguard against danboiler or steam generating equipment may be gerously high temperatures, but which 'nevertheusedwith my invention, however. Numeral II less is more effective in its superheating action indicates steam drums from which saturated than such construction as they are now commonly steam is led off through pipe l2 in the usual or constructed. any desired manner. The superheater tubes to This application is a continuation in part of which the steam is conducted by the pipe l2 are 5 my previously filed application Ser. No. 496,868, generally designated l3 in Figure 1, and may filed Nov. 20, 1930. take any of the forms indicated in Figures 2 to Other objects and advantages will be apparent 10, inclusive, or any of many other modifications from the follow-ing description, where reference. thereof which will occur to persons understandis made to the accompanying drawings illustrating the principles underlying my invention.
ing preferred embodiments of my invention and In the form illustrated in Figure 2, the steam wherein similar reference numerals designate slmto be superheated i conducted through a pluralilar parts throughout the several views. l ity of tubes ll, which are nested cylindrically and In the drawings: s secured together, as by welding, ( welds desig 5,5 Figure 1 is a sectional view showing somewhat nated l5) so that an inner passage. I8 is formed through which cooling water may be conducted. If desired, however, the procedure might be reversed, and the cooling water conducted through the tubes l4 and the steam led through the central passage. It will be noted that cooling water passing through the central passage l6 has direct;
and very effective metallic heat-conductive connection with the outer portions of the tubes M- which are exposed to the radiant heat within the furnace.
Hi and the contained cooling water within the space 86 to enable the water to effectively cool the tubes.
In the alternative method of construction shown cross-sectionally in Figure 3, the tubes for the cooling water are formed integrally with the superheater tube by crenelating the same in the manner shown; thus forming a plurality of quite closely spaced cooling chambers 22. The meeting edges of the bent back portions so formed may be sealed by welding as indicated at 23. The steam is conducted through the portion 24, and-will be seen to have a greater area. of contact with metal heated by conduction from the exposed outer portions of the tube than is the case with an ordinary cylindrical pipe, as
each oi the tubes 22 may also conduct heat into the interior and give it up to the steam, at least when or where the tubes 12 are empty of cooling water. Here again the distance from the most remote point of the outer wall to water-contactible metal of the jcooling tube will be seen to be short, and the provision of a direct metallic connection of adequate area, distributed at frequent intervals throughout the entire peripheral extent of the exposed walls of the tube construction enables sufflcient heat conduction to take place between the exposed portions of the chambers 24 and the contained cooling water within the spaces 22 and to let the water cool the tubes at all points when desired. I
I! the tubes are formed in the manner shown in Figure 4, the cooling water, when used, may flow through the tubes 25, which, when and where empty of water, increase the conductive metallic surface and aid in heating the steam, as in the other embodiments. The steam is of course conducted through the portion 20.
Still another method of building up an improved superheater embodying my invention is indicated inFlgure 5. It will be seen that this construction is in all essential features similar to Figure 3, but is assembled from pipes 21, and curved plate sections 20, the welds 29 serving to render the structure unitary. The steam may be conducted through the section II and the cooling water through the tubes 21.
It will be seen that it the cooling water is taken from the boiler, certain of the welds in. the consome considered objectionable, and may be avoided either by constructing the tubes as shown Thus it the steam supply normally passing through the tubes M is cut off or greatly,
in Figure 4, or by using one 01' the arrangements shown in 6, '7, 8, and 9. In these the water conducting or cooling tubes are designated 45 with diiferent exponents, and the steam conducting or superheating tubes are indicated by the numeral 46 with different exponents. The welds are designated 41, and it will be observed that in no instance are they called upon to withstand boiler pressure.
'value, and so heat exchange between the inner surfaces of the interfitting tubes 55 and the depressions in the large tube 45' is materially limited, thus restricting the ability of the water tubes 65 to absorb heat from the steam, while their efficiency in absorbing heat from the outer walls of the assembly is very great. of course the actual dimensions of the gap between the interfitting parts are immaterial and may vary while the assembly is in use. If merely made to interfit in the ordinary manner of making such parts, a gap of the order of .002-.005 inch would be present even where the surfaces would ordinarily be described as contacting." For this reason the tubes 45' may be merely laid in the depressions and welded in the manner shown. In the embodiment shown in Figure 7 also, the water tubes 65 (by reason of their positioning) absorb heat most effectively from the surface of the steam tube 4!.
As shown in Figures 9, l0, and 11, the principles oi. my invention may, if desired, be incorporated in a superheater which is built up in wall form, with alternate cooling and superheating tubes. In the form shown in Figure 10, the cooling tubes are, excepting for the end ones, which may be separate pipes (48) completely enclosed, and formed by configurations of the superheater tubes, which therefore present an unbroken heat absorbing surface as great as is possible by any construction, while the cooling tubes are in such effective direct metallic connection with them that they provide very efllcient cooling action when the cooling fluid is flowing. The super--' heater tubes in Figure 10 are designated A construction exceeding this in emciency in some particulars, and in which no welds are subjected to boiler pressure, is shown in Figure 9. In this construction the fully eflective metallic connection between the cooling and superheating tubes is, as in' the tube form of Figure 6, only present at or near the surfaces, which results in very eilicient heat transfer between them only thereblong. This enables efllcient control of the temperature of the wall without undue absorption of heat from the steam in tubes 46. when the cooling 'fluid is not flowing and the superheating function is in progress, the cooling tubes (45) effectively assist in transferring heat to the superheater tubes (48). 7
Figure 11' shows awall type superheater construction incorporating the tube design shown in Figure 10. The numeral designates a furnace well, although the tubes may be placed in any desired position.
ltwulbeseenthatinsllmy limvedsmrnot present", much more eflicient superheating action may be obtained than is possiblefrom ordinary tubes. R
If desired the cooling water may be taken from a lower part of the boiler and returned to an upperpart, as by conducting it from the'lower or "sludge drum "35 through the pipe 2| and the valves fill-Ml to the cooling passages of the superheater, which it may enter from below, as through the manifold it, (Figure 1), and leave 'at the top, as thrown the manifold 20, whence it is returned to one of the upper drums H through the pipe 3%, usually in the form of vapor. This method of supplying the cooling water is of course optional, however, and an outside scurce and disposal thereof might be provided if desired. It is only because the unusu-' ally eflicient construction and arrangement of my superheater tubes provides remarkably eflicient heat absorption from the exposed portions of the tubes when the cooling water flowing that it is possible to use the water from the steam drums of the boiler to augment its output.
The steam may enter the superheater tubes from above, as through the header ll of Figure 1, and may leave through the header it at the bottom. As will presently be explained, the cooling water stands at variant levels in the cooling tubes during normal operation in order to control the temperature of the delivered superheated steam, but no material desuperheating occurs as a result of the downfiow of steam through the lower, water-containing portions of the assembly, by reason of the fact that the cooling water absorbs heat much more readily from the effected by preventing the outside walls and so the steam from ever reaching a temperature higher than desired, rather than by desuperheating the steam after elevation of its temperature above that finally desired (and consequent excessive heating of the walls). Any desired manifold and header construction may be used for conducting the steam and water to and from the tubes. One form of such manifold suitable for use with the tube construction shown in Figure 5 is indicated in Figure 12, the tubes 21 being led into registering apertures in the manifold 3i, and the-water flowing to or from them through the pipe 32. The arcuate plates 28 may be cut away within the manifold, as shown in the drawing, to permit the steam to flow into or from the section 30 through the pipe 33. The arrows in Figure 6 indicate a flow of steam into the superheater at this point, and
i also the water header, designated 5|.
the flow of water as being out, although obviously identical manifolds may be used at each end of the tubes if desired, and the details of their structure will vary to conform to the tube design.
If a wall type superheater construction is used, the headers maybe arranged as shown in ,Figure 13. in which 50 indicates a steam header, which. may run' the length of the wall, as may I The tube formation shown in Figure 13 is that shown cross sectionaliyin Figure 9.
While water is contained in the cooling tubes,
thatportion'of the superheating tubes adjacent.
the water-containing portion of the cooling tubes ceases to function as a superheater, by reason of the rapid heat absorption from its walls by the water. The effective superheating area is therefore dependent upon and controllable by variation of the level of the cooling water in the cooling tubes. In the arrangement shown in *Figure 1, the higher the level of the water in the cooling tubes, the less effective area has the superheating portion, for only those portions of the superheating tubes above the water function as superheaters. When the boiler is operating, the inflow of water to the cooling tubes may be so adjusted relatively to the rate of vaporization of the cooling Water into steam, that the level of the cooling water may be maintained substantially constant at'any desired level, and by thus controlling \the superheating area, the temperature of the emanating steam may be maintained at any desired point. Likewise, by flooding the superheater tubes when the boiler is being started, the danger of injuring the superheater tubes during the period before saturated steam begins to pass through them may be eliminated, and the presence of sufficient water in the cooling tubes whenever the'passage of steam through the superheater tubes falls off or ceases, protects them from harm by the heat which otherwise might not be carried away with sufficient rapidity. y
In starting, the operator would ordinarily turn on the cooling water by hand, for which purpose the by-pass valve 40 is provided, (Figure 1). As
soon as'the steam started to flow normally, how-- ever, the operator would shut ofi the by pass valve, and the superheating action would commence as the water passed out of the cooling tubes. The flow of cooling water thereafter is preferably controlled by an automatic valve 40, across which the hand valve is by-passed. The automatic valve 40' may be thermostatically controlled; a
thermostat, which may be of any desired con-' struction, being indicated at 38 in Figure 1. The valve 40 may thereby be governed in relation to the temperature of the emanating steam, and arranged to open sufficiently to allow the entry of a desired quantity of water when the tem-- perature of the superheated steam reaches a predetermined point, and to open and close propore tionately as the temperature of the steam rises above or falls below the desired point. The temto produce superheated steam of the desired temperature.
What I claim is:
1. In combination with a furnace, a steam boiler, and a source of cooling water, a pluraliy chambered conduit structure for superheater installations comprising, a steam chamber arranged at an angle to the horizontal within the furnace alternatedly spaced portions of whose outer wall are directly exposed to external radiant heating influence, and a plurality of longitudinally extending chambers for the conducting of a cool:
. the latter,
3. A conduitassembly for water-cooled superheaters and the like comprising a relatively thinwalled steam conduit having exposed surface portions and longitudinally extending flutes therein, a cooling conduit having independent walls projecting into eachvof said flutes to interflt with the steam conduit, and metallic heat bridging portions integral with each of said cooling conduits and with the steam conduit and arranged substantially at the exposed surface portions of the latter, the other interntting portions of said steam and water conduits being arranged adjacenteach other but having distinct surfaces.
4. A tubular superheater construction comprising a steamconduit and abutting temperature control conduits spacedly arranged around and having wall portions separate from but interfltting with those of the steam conduit, and metallic heat bridging portions integral with the walls of the steam conduit and temperature control conduits and connecting said walls only near the exposed surfaces of the steam conduit but throughout substantially the entire active superheating length, inner parts of said interfitting wall portions being left unconnected. 5. A tubular superheater construction comprising a steam conduit, a plurality of separate temperature control conduits lying against spaced portions of the steam conduit, said temperature control conduits having walls abutting the steam conduit over a substantial area, and metallic heat bridging portions integral with the walls of both the temperature control and steam conduits throughout their entire eflective length and directly connecting the former to the latter along substantially the entire length, said heat bridging portions being located at exposed areas-directly subjectable to radiant heat.
6. A tubular superheater construction comprising an individually complete steam conduit, a
. plurality of an individually complete separate temperature control conduits abutting the steam conduit, and metallic heat bridging portions integral with the wall portions of both the temperature control and steam conduits throughout substantially their entire effective length and directly connecting the former to the latter only at exposed surface portions of said steam conduit directly subjectable to radiant heat.
g 7. In combination with a boiler and a source of heat, a superheater comprising a water and steam tube assembly including a plurality of alternate steam and water'conduit portions arranged around a container area and having alternated exposed outer faces, metallic heat-bridging means integral with all of said alternating exposed faces and completing a continuous outer wall lying outside said contained area, said alternated steam and water conduit portions also having abutting face portions lying within the area bounded by and unconnected by said heat-bridging means, whereby the schism between said abutting unconnected portions resists direct heat transfer between them while the bridging means assists direct heat absorption from the outer wall by both the steam and water conduit portions.
8. In combination with a* furnace, a steam space, and a cooling water supply source, a tubular superheater construction arranged within the furnace and comprising a steam conduit, a plu rality of separate temperature control conduits abutting the steam conduit, certain of said abutting portions being unconnected, and metallic heat bridging portions integral with the wall portions ofboth the temperature control and steam conduits and directly connecting the former to the latter only at the exposed surface of said steam conduit, whereby heat interchange between one conduit and the exposed wall portions of the abutting conduit is facilitated, while the schism between the unconnected abutting wall portions between the edges thereof restricts heat interchange therebetween.
9. In combination with 'a furnace, a steam space. and a cooling water supply source, a superheater comprising a water and steam tube assembly including a plurality of conduit portions arranged around a contained area, said conduit portions having individual walls and each enclosing a longitudinal channel, and metallic bridging means integralwith all of said conduit portions throughout substantially their entire effective length and cooperating to form a portion of a continuous outer wall as well as to assist in the conduction of heat from the outer wall to the contained area, said contained area being distinct from said longitudinal channels contained within said conduit portions and forming, an additional channel.
10. In a fluid-cooled superheater construction, in combination with a furnace, a conduit assembly arranged at an angle to the horizontal within the furnace and comprising exposed wall portions defining a passage for steam to be superheated and separate wall portions defining a passage for fluid for temperature control, metallic heat bridging portions connecting and integral with. both such wall portions and arranged substantially at said wall portions exposed to direct radiant heat impingement, means for supplying cooling fluid to the passage for temperature control fluid, 'and means responsive to the condition of the superheated steam and arranged to regulate the admission of such fluid to said passage to hold the same at a level within the limits of said exposed wall portion, whereby the amount of heat which may thereby be conducted away from the exposed wall portions defining the passage for steam to besuperheated may beregulated.
11. In combination with a furnace, a boiler, a steam space and a source of cooling water supply, a superheater comprising a water and steam tube assembly including alternate steam and water conduit portions, the latter being connected to said cooling water supply source at the lower end and to said steam space at the upper end,
said portions being arranged around a contained area and having alternated abutting faces exposed to radiant heat within the furnace, and metallic heat bridging means integral with both and connecting the alternated heat-exposed face portions of, the steam and water conduit portions throughout substantially their entire effective length.
12. In combination with a steam space and a water supply source, a superheater comprising a water and steam tube assembly, the water tube portions of which are connected at the lower end to said water supply source and at the other end to said steam space, said assembly including a plurality of conduit portions arranged in abutting relation around a contained area, said conduit portions having individual walls and each enclosing a longitudinal channel, and the contained area defining another channel, and metallic bridging means integral with all of said conduit portions throughout substantially their entire effective length and cooperating to form a portion of a continuous outer wall as well as to assist in the conduction of heat from the outer wall to the contained area, said contained area being distinct from said longitudinal channels contained within said conduit portions and form:
ing an additional channel.
13. In combination with a steam space and a water supply source, a superheater comprising a water and steam tube assembly the water tube portionsof which are connected at the lower end to said water supply source and at the other end to said steam space, said assembly including a plurality of alternated conduit portions arranged around a contained area, certain of said conduit portions having individual wall sections enclosing isolated longitudinal channels, heat bridging weld portions integral with each of said conduit portions and an adjoining conduit portion and completing an unbroken heat bridge between such adjoining conduit portions throughout substantially their entire eifective length.
14. In combination with a steam space and a Water supply source, a superheater comprising a water and steam tube assembly the water tube portions of which are connected at the lower end to said water supply source and at the other end to said steam space, said assembly including a plurality of alternated conduit portions arranged around a contained area, certain of said conduit portions having individual wall sections enclosing isolated longitudinal channels, heat bridging weld portions integral with each of said conduit portions and an adjoining conduit portion and completing an unbroken heat bridge between such adjoining conduit portions throughout substantially their entire eifective length and between the outside of the assembly and the contained area.
15. In combination with a furnace including a heating chamber, superheating and superheater controlling means including a unitary plurally sectioned metallic superheater tube assembly comprising independent steam and cooling fluid passages, said assembly having an outer wall exposed to direct radiation within the furnace, and said cooling fluid passages being arranged upon said outer wall exposed to direct radiation, said steam and cooling fluid passages being in direct metallic heat-conductive communication with 1 each other and with the outer wall throughout substantially their entire effective length, and all having active portions within the heating chamber, said assembly being arranged at an angle to the horizontal and having separate inlets for steam and cooling fluid, a source of cooling fluid supply connected to the cooling fluid inlet of said assembly, and regulatable means responsive to the temperature of the superheated steam and arranged to hold the cooling fluid in the assembly at a level within the. zone of heating, comprising a throttle valve arranged between said cooling fluid passages and said inlet thereto for controlling the cooling fluid supply to said inlet.
16. In combination with a furnace and a steam boiler, a water regulated tubular superheater assembly exposed to direct radiation within the furnace and comprising a plurality of longitudinal generally parallel cooling fluid conduits arranged around a similarly extending contained area and having component wall portions exposed to radiation within-the furnace, and a steam conduit portion lying at least partially within such contained area and metallically integral with said cooling conduits throughout substantially their entire effective heat-absorbing length.
17. In combination with a furnace and a steam boiler, a tubular water-cooled superheater assembly extending through a portion of the furnace at an angle to the horizontal and spaced from the furnace walls, said superheater assembly comprising a metallically continuous outer wall exposed to direct radiation within the furnace and a plurality of wall portions therewithin defining conduits, at least one of said conduits being for steam while a plurality are for cooling water, said cooling fluid conduits being arranged at said outer' wall exposed to direct radiation, and a metallic heat bridging portion integral with said exposed outer wall portion and integral with wall portions defining both the steam and water con duits throughout substantially their entire effective length.
18. The method of controlling superheating action in a superheater structure consisting of separate metallic superheater and cooling water tubes arranged at an angle to the horizontal within a zone of heating and in heat interchanging relation to each other throughout substantially their entire effective heat-absorbing length, which tubes arranged at an angle to the horizontal with' in a zone of heating and in heat interchanging relation to each other throughout substantially their entire effective heat-absorbing length, which comprises supplying steam and waterto the respective tubes, throttling the water. supply below the evaporative capacity of the tubes sufficiently to cause the water to assume a level within the tubes, and controllingly varying such throttling of the water supply relatively to the rate of heat impingmentv to maintain the water in the coo ling' water tubes at a level conforming to and adapted to delimit the degree of superheating of steam within the superheater tubes.
heater element comprising a structurally unitary tube arranged at an angle to the horizontal andhaving an outerwall exposed to direct radiation :70, L r. 20. In combination with a furnace, a t boiler, and a source of cooling wat a Super, w
within the furnace, including a plurality of longitudinally extending cooling chambers connected to said source of cooling water, and an independent steam passage having spacedly separated portions of its wall exposed to external heat influence, between which exposed wall portions the longitudinally extending cooling chambers are peripherally arranged, the wall portions of said cooling chambers being arranged at and directly connected to said external wall exposed to direct radiation within the furnace for direct heatingabsorption therefrom, said wall portions of the cooling chambers cooperating with the spaced wall portions of the steam passage in constituting the outer conduit wall.
21. The method of controlling superheater ac-,
tion in a superheater structure consisting 01 separate metallic superheater and cooling water tubes arranged at an angle to the horizontal within a zone of heating and in heat interchanging relation to each otherthroughout substantially their entire effective heat absorbing length, which comprisessupplying steam and water to the respective tubes, directly throttling the inlet of the water supply below the evaporative capacity of the tubes sumciently to cause the water to assume a gravity induced level within the tubes, and
raising or lowering such level to vary the eii'ective' superheating area and so control the temperature 0! the superheated steam.
CHARLES s. TURNER.
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Cited By (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2430774A (en) * 1944-11-28 1947-11-11 Frederick E Lynn Liquid cooler
US2443295A (en) * 1944-05-19 1948-06-15 Griscom Russell Co Method of making heat exchangers
US2448491A (en) * 1944-11-06 1948-08-31 Little Inc A Air separating system and process
US2451628A (en) * 1943-04-05 1948-10-19 Stewart Warner Corp Internal-combustion heater with air-heating tubes
US2539886A (en) * 1945-11-16 1951-01-30 Griscom Russell Co Tubeflo section
DE844302C (en) * 1949-04-05 1952-07-17 Steinmueller Gmbh L & C Superheated steam cooler
US2660155A (en) * 1949-01-12 1953-11-24 Combustion Eng Steam generating tubular water wall
US3004330A (en) * 1957-05-23 1961-10-17 Revere Copper & Brass Inc Tubes for structural and fluid conducting purposes, and methods of making the same
US3070131A (en) * 1957-12-06 1962-12-25 Gen Motors Corp By-pass duct for gas turbine engine
DE977109C (en) * 1954-02-10 1965-02-11 Sulzer Ag Steam power plant with reheating
US3177935A (en) * 1963-12-17 1965-04-13 Irwin E Rosman Cooling tube structure
US3317399A (en) * 1964-04-13 1967-05-02 Babcock & Wilcox Co Fuel element container
US3425453A (en) * 1965-10-21 1969-02-04 Forney Fuller Ocean pipeline system
JPS4921649U (en) * 1972-05-29 1974-02-23
DE2808686A1 (en) * 1978-03-01 1979-09-06 Oschatz Gmbh GAS-TIGHT FURNACE WALL FOR AN INDUSTRIAL FURNACE
US4380912A (en) * 1979-03-05 1983-04-26 Edwards Engineering Corp. Double wall tube assembly for use in heat exchangers
US4529009A (en) * 1983-08-03 1985-07-16 Plascoat U.K. Limited Multiple core hose
US20050016721A1 (en) * 2003-01-30 2005-01-27 Dragi Antonijevic Multi-channel heat exchanger and connection unit
US20060016579A1 (en) * 2002-12-24 2006-01-26 Bonner Michael R Profile traced insulated cover assembly

Cited By (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2451628A (en) * 1943-04-05 1948-10-19 Stewart Warner Corp Internal-combustion heater with air-heating tubes
US2443295A (en) * 1944-05-19 1948-06-15 Griscom Russell Co Method of making heat exchangers
US2448491A (en) * 1944-11-06 1948-08-31 Little Inc A Air separating system and process
US2430774A (en) * 1944-11-28 1947-11-11 Frederick E Lynn Liquid cooler
US2539886A (en) * 1945-11-16 1951-01-30 Griscom Russell Co Tubeflo section
US2660155A (en) * 1949-01-12 1953-11-24 Combustion Eng Steam generating tubular water wall
DE844302C (en) * 1949-04-05 1952-07-17 Steinmueller Gmbh L & C Superheated steam cooler
DE977109C (en) * 1954-02-10 1965-02-11 Sulzer Ag Steam power plant with reheating
US3004330A (en) * 1957-05-23 1961-10-17 Revere Copper & Brass Inc Tubes for structural and fluid conducting purposes, and methods of making the same
US3070131A (en) * 1957-12-06 1962-12-25 Gen Motors Corp By-pass duct for gas turbine engine
US3177935A (en) * 1963-12-17 1965-04-13 Irwin E Rosman Cooling tube structure
US3317399A (en) * 1964-04-13 1967-05-02 Babcock & Wilcox Co Fuel element container
US3425453A (en) * 1965-10-21 1969-02-04 Forney Fuller Ocean pipeline system
JPS4921649U (en) * 1972-05-29 1974-02-23
DE2808686A1 (en) * 1978-03-01 1979-09-06 Oschatz Gmbh GAS-TIGHT FURNACE WALL FOR AN INDUSTRIAL FURNACE
US4380912A (en) * 1979-03-05 1983-04-26 Edwards Engineering Corp. Double wall tube assembly for use in heat exchangers
US4529009A (en) * 1983-08-03 1985-07-16 Plascoat U.K. Limited Multiple core hose
US20060016579A1 (en) * 2002-12-24 2006-01-26 Bonner Michael R Profile traced insulated cover assembly
US7694717B2 (en) * 2002-12-24 2010-04-13 Bonner Michael R Profile traced insulated cover assembly
US20050016721A1 (en) * 2003-01-30 2005-01-27 Dragi Antonijevic Multi-channel heat exchanger and connection unit
US7337834B2 (en) * 2003-01-30 2008-03-04 Visteon Global Technologies, Inc. Multi-channel heat exchanger and connection unit

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