This invention relates to method and apparatus for the transfer of heat from and to gases containing entrained solids. In accordance with another aspect, this invention relates to an improved apparatus comprising a waste heat recovery unit containing a fluidized bed of particulate solids wherein a gas containing suspended or entrained solids is introduced into the fluidized bed through a plurality of small diameter conduits to insure that the suspended solids remain entrained in the carrying gas until the mass enters the enlarged cross-sectional fluidized bed. In accordance with another aspect, the tubes in the tube bundle carrying the gas containing entrained solids from the inlet conduit into the enlarged cross-sectional fluidized bed portion of the unit are evenly distributed at the outlet end to provide even flow across the fluidized bed. In accordance with a further aspect, the actual gas passage space in the enlarged zone occupied by the fluidized "fixed" bed of particulate solids is substantially the same cross-sectional area as that of the inlet conduit or outlet conduit of the unit, thereby preventing the suspended solids from accumulating in the fluidized bed and allowing the suspended solids to flow in an entrained manner in these gases.
There are two problems in the design of a fluidized bed waste heat boiler for gas streams containing small particulate materials suspended therein such as carbon black smoke. One of the problems encountered is the difficulty in maintaining a high enough stream velocity up to the distribution plate below the fluidized bed so that the suspended solids will not settle out during the expanding approach to the fluidized bed. Another problem encountered is the tendency of the suspended particulate material, especially carbon black particles, to conglomerate somewhat while passing through the fluidized bed. In view of this tendency of the suspended solids, the low flow velocity prevailing inside the bed chamber is not adequate to transport the suspended solids out of the unit, resulting in accumulation of suspended solids in the fluidized bed which is undesirable. The present invention is directed to method and apparatus for eliminating these as well as other problems to provide a trouble-free waste heat boiler operation.
Accordingly, an object of this invention is to provide an improved waste heat recovery apparatus.
A further object is to provide a method for carrying out heat exchange in a fluidized bed operation with gases containing suspended solids.
In accordance with another object, improved means are provided for introducing a gas containing suspended solids into a fluidized bed waste heat recovery unit.
Other objects and aspects, as well as the several advantages of the invention, will be apparent to those skilled in the art upon reading the specification, the drawing, and the appended claims.
In accordance with the invention, a "fixed" fluidized bed heat exchanger having an indirect heat exchange means within the bed has a gas-containing entrained solids charged into the "fixed" fluidized bed by a spread tube bundle containing a plurality of small diameter tubes to effect even distribution of the gases into the fluidized bed and to effect fluidization of the fluidized bed and indirect heat exchange with a heat exchange medium being passed through the indirect heat exchange means.
In accordance with one specific embodiment, the tube bundle has a total flow path, i.e., the sum of the cross-sectional areas of all of the tubes, which is no greater than, and is about equal to or even somewhat less than, but not less than about 90 percent of the cross-sectional area of the inlet tube passing solids entrained in gas therethrough to insure that the solids remain entrained in the carrying gas until the mass enters the enlarged cross-sectional fluidized bed.
In accordance with another embodiment of the invention, the outlets of the tubes in the tube bundle are arranged evenly across the cross-section of the fluidized bed to effect an even distribution of gas flow into the enlarged fluidized solids zone of the waste heat recovery unit.
In accordance with a further embodiment of the invention, the actual gas passage space in the enlarged zone occupied by the fluidized "fixed" bed of particulate solids is substantially the same cross-sectional area as that of the outlet or inlet conduits, which prevents the suspended solids from accumulating in the fluidized bed and allows the suspended solids to flow in an entrained manner in these gases.
The velocity of the mass required to maintain entrainment depends upon many factors including the density and sizes of the particles entrained in the gas. Typically, for carbon black to be entrained in the carbon black reactor effluent smoke, the minimum range of linear velocity is about 50 to about 100 feet per second. Operating range preferred for carbon black (flocculent carbon black in the range of about 2 to about 30 micron size) is about 150 to 400 feet per second linear velocity.
In a preferred embodiment, the carbon black-containing smoke passes through a fluidized sand bed and out of the top section of the fluidized bed boiler where the cross-sectional area is decreased to insure entrainment of the now cooled carbon black in the flowing (now cooled) gas. The sand is heated by the hot smoke, and the sand transfers this heat to the water coil within the bed to produce steam. The depositing of any carbon black on the sand is removed by the fluidized "contact" of the sand particles with one another.
A better understanding of the invention will be obtained upon reference to the drawing which illustrates one preferred embodiment of an apparatus according to the invention.
Referring now to the drawing, a hot gas such as carbon black smoke at a temperature of about 2000.degree. F. enters the system by way of conduit 9 located in a lower portion of the waste heat recovery unit. The waste heat recovery unit comprises, in addition to inlet conduit 9, a cone-shaped section 20, an enlarged fluidized bed section 21, an inverted cone section 22, and an outlet conduit 18. A tube sheet 11 is provided at the juncture of conduit 9 with a lower portion of cone-shaped section 20 and a tube sheet or distributor plate 12 is positioned at the upper end of the tube bundle at the juncture with the enlarged fluidized bed section 21 and section 20 of the unit. A plurality of small cross-sectional area tubes or a tube bundle is positioned within cone-shaped section 20 and connected to tube sheets 11 and 12. In a preferred embodiment, the outlets of the tubes in tube sheet 12 are evenly distributed so that gas exiting from the small cross-sectional areas of tube 10 will be evenly distributed across the lower portion of the fluidized bed of particulate material. The tubes can be arranged on an equilateral triangular pitch, square pitch, hexagonal pitch, or any other desired pitch to obtain even distribution of the inlet gas.
Enlarged section 21 is provided with a fluidized bed of particulate material such as sand 16. The depth of the sand covers substantially the entire length of the enlarged section 21. Positioned within the bed of particulate material 16 is a heat exchange coil 15 through which water or other heat exchange fluid can be passed and converted to steam or other vapor.
The upper section or tapered area 22 causes the gases leaving the fluidized bed to accelerate and at the same time keep the solids, such as carbon black, entrained in the gas leaving the heat exchanger at 18. The hot gas reduced in temperature to, say, about 1200.degree. F. is removed by way of conduit 18 and passed to further processing such as additional cooling and then filtering, as desired, to recover the carbon black particles from the gas.
In the specific embodiment described, the total cross-sectional areas of all of the tubes 10 of the bundle positioned within cone-shaped section 20 is at least 90 percent of the cross-sectional area of inlet conduit 9 to insure that the solids entrained in the inlet gas remain entrained in the carrying gas until the mass enters the enlarged cross-sectional fluidized bed 16.
The actual gas passage space in the enlarged zone 21 occupied by the fluidized bed of sand 16 is substantially the same cross-sectional area as that of the inlet conduit 9 or outlet conduit 18, which prevents suspended or entrained solids, such as carbon black, from accumulating in bed 16, and allows the suspended solids, such as carbon black, to flow in an entrained manner in these gases.
Specific Example
The following calculated example sets forth conditions and particular dimensions for an apparatus such as set forth in the drawing.
These conduits 10 are evenly spaced in tube sheet 11 and in tube sheet 12.
Steam coil 15 is located within expanded fluidized-fixed sand bed 16 to remove heat from the sand which has been used to cool the carbon black smoke and its carrying gas (effluent from a carbon black furnace).
Although the invention has been illustrated above using a fixed fluidized bed of sand as the heat exchange solids, other solids such as alumina, silica-alumina, and the like, of course, can be used. Solids other than carbon black entrained in gas can be heat exchanged with the fluidized solids. For example, various pigments entrained in gas can be used. Also, instead of water being in the heat exchange coil, Dowtherm, or a hydrocarbon to be converted, e.g., cracked thermally, or preheated, can be used in the heat exchange coil.
Further, instead of cooling a material entrained in a gas, the system can be used to heat a material entrained in a gas, with a heating fluid passing through the coil located within the fluidized fixed bed of solids.