Claims
- 1. A method for effecting high temperature heat transfer in an industrial furnace system having a heat track conduit with an opening in its inner wall; a heat transfer cylinder positioned relative to said heat track conduit so that a portion of its cylindrical surface extends through said opening; a cylindrical furnace casing wall extending about that portion of said heat transfer cylinder which does not extend into said opening to define an annular heat transfer space between said casing wall and said heat transfer cylinder, a plurality of heat exchange tubes in said annular space; said method comprising the steps of:
- a) providing industrial burners in said heat track conduit and firing said burners to produce products of combustion at high temperature;
- b) heating that portion of the cylindrical surface of said heat transfer cylinder which extends into said opening from said burner's products of combustion;
- c) rotating said heat transfer cylinder so that the heated cylindrical surface portion resulting from step (b) is rotated into said heat transfer space;
- d) heating said heat exchange tubes in said annular space by said heated cylindrical surface portion of said heat transfer cylinder while simultaneously cooling said cylindrical portion when heat is transferred to said heat exchange tubes; and
- e) rotating said cylindrical surface portion when cooled by heat transfer to said heat exchange tubes back into said opening for reheating by said burner products of combustion whereby a continuous, regenerative furnace system is provided for indirectly heating fluid in said heat exchange tubes.
- 2. The method of claim 1 wherein said heat transfer cylinder is rotated continuously in steps (c) and (e).
- 3. The method of claim 1 wherein said heat transfer cylinder is rotated intermittently in steps (c) and (e).
- 4. The method of claim 1 wherein said heat transfer cylinder is positioned relative to said opening to define a pair of relatively narrow slots longitudinally extending between the cylindrical surface of said heat transfer cylinder and said heat track conduit opening; said method including the additional steps of providing an inlet and an outlet opening in fluid communication with said heat transfer space; pressurizing said heat transfer space by providing a fluid flowing at controlled rate from said inlet through said outlet; heating said heat exchange tubes by radiation from the surface of said heat transfer cylinder adjacent said annular heat transfer space and by convection from flow of said fluid within said heat transfer space.
- 5. The method of claim 4 wherein said pressure of said fluid is controlled at a value higher than the pressure of said products of combustion in said heat track conduit and said slot is sufficiently narrow to function as an orifice at said controlled pressure to prevent said products of combustion from said burner from entering into said annular heat transfer space.
- 6. The method of claim 5 wherein fuel and combustion air are supplied to said burners for providing said products of combustion, said fluid supplied to said heat transfer space is air and said method includes the additional step of providing preheated air to said burners from an outlet of said annular heat transfer space.
- 7. The method of claim 1 wherein said industrial burners are fired with pulverized coal as the fuel source and further including the step of controlling the ratio of pulverized coal and combustion air supplied to said burner at a substoichiometric ratio sufficient to produce burner products of combustion which are rich in combustibles H.sub.2 and CO, does not exceed 3,000.degree. F.
- 8. The method of claim 7 wherein said heat track conduit is a longitudinally extending conduit which is generally arcuate in cross-sectional configuration and open at one end downstream of said heat transfer cylinder and closed at its opposite end upstream of said heat transfer cylinder; said method comprising the additional step of firing said burners at controlled pressure to produce a free-standing jet stream of products of combustion which expands radially into heat transfer tangential impingement contact with that cylindrical surface portion of said heat transfer cylinder which extends into said opening thus avoiding substantial turbulence and localized high temperature areas thereat tending to produce NO.sub.x formations.
- 9. The method of claim 8 including the additional steps of providing a free-standing jet stream of completion air within said heat track conduit downstream of said burner; directing said completion air jet to tangentially impinge a portion of the surface of said heat transfer cylinder extending within said opening and controlling the rate of completion air flow within said jet and the velocity of said jet to permit controlled entrainment of said combustibles and products of combustion thereof such that the temperature of completion air jet stream does not rise above 3,000.degree. F.
- 10. The method of claim 9 further including the step of providing a second completion air free-standing jet positioned downstream of said first combustion air jet, said second completion air jet freely expanding into tangential contact with that portion of said heat transfer cylinder extending within said opening downstream of the position where said first completion air stream made initial contact with the surface of said heat transfer cylinder whereby the entire surface of said heat transfer cylinder extending within said opening is subjected to tangential, substantially non-turbulent jet impingement for effective heat transfer therewith while said products of combustion of said burners do not rise above 3,000.degree. F. to prevent NO.sub.x formation.
- 11. The method of claim 10 including the additional step of providing a plurality of coal-fired burners longitudinally spaced along said end wall and in alignment with one another and controlling the jet streams emanating from said burners such that adjacent burner streams radially expand into contact with one another at a position generally corresponding to that whereat said burner jets become entrained with said completion air jets whereby control of combustion of said combustibles within said burner jet streams can be effected in a predictable manner.
- 12. The method of claim 1 wherein said heat track means has a closed inlet end and an open outlet end, said burners positioned in said closed inlet end and fired so the burner flame does not extend to said heat transfer cylinder surface within said heat track conduit whereby radiation from said flame is effective to heat said heat transfer cylinder surface within said heat track conduit.
Parent Case Info
This is a Continuation-In-Part of my co-pending patent application Ser. No. 520,244 filed May 7, 1990 now U.S. Patent No. 5.078,368.
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
520244 |
May 1990 |
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