GB1569073A - Removal and recovery of sulphur dioxide from stack gases - Google Patents

Removal and recovery of sulphur dioxide from stack gases Download PDF

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GB1569073A
GB1569073A GB1990678A GB1990678A GB1569073A GB 1569073 A GB1569073 A GB 1569073A GB 1990678 A GB1990678 A GB 1990678A GB 1990678 A GB1990678 A GB 1990678A GB 1569073 A GB1569073 A GB 1569073A
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effluent
sulfur dioxide
pressure
gaseous effluent
temperature
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Duvall L J
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Duvall L J
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D53/00Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D53/00Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols
    • B01D53/002Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols by condensation
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01BNON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
    • C01B17/00Sulfur; Compounds thereof
    • C01B17/48Sulfur dioxide; Sulfurous acid
    • C01B17/50Preparation of sulfur dioxide
    • C01B17/60Isolation of sulfur dioxide from gases
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25JLIQUEFACTION, SOLIDIFICATION OR SEPARATION OF GASES OR GASEOUS OR LIQUEFIED GASEOUS MIXTURES BY PRESSURE AND COLD TREATMENT OR BY BRINGING THEM INTO THE SUPERCRITICAL STATE
    • F25J3/00Processes or apparatus for separating the constituents of gaseous or liquefied gaseous mixtures involving the use of liquefaction or solidification
    • F25J3/08Separating gaseous impurities from gases or gaseous mixtures or from liquefied gases or liquefied gaseous mixtures

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Organic Chemistry (AREA)
  • Analytical Chemistry (AREA)
  • General Chemical & Material Sciences (AREA)
  • Oil, Petroleum & Natural Gas (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Inorganic Chemistry (AREA)
  • Physics & Mathematics (AREA)
  • Mechanical Engineering (AREA)
  • Thermal Sciences (AREA)
  • General Engineering & Computer Science (AREA)
  • Treating Waste Gases (AREA)

Description

(54) REMOVAL AND RECOVERY OF SULFUR DIOXIDE FROM STACK GASES (71) 1, LEE JosEPEI DUVALL, a citizen of the United States of America, of 1855 Trevilian Way, Louisville, State of Kentucky 40205, United States of America, do hereby dedare the invention, for which I pray that a patent may be granted to me, and the method by which it is to be performed, to be particularly described in and by the following statement: REMOVAL AND RECOVERY OF SULFUR DIOXIDE FROM STACK GASES TECHNICAL FIELD OF THE INVENTION The present invention relates to an improved, simple, energy-conservative, yet efficient method and apparatus for the extraction of sulfur dioxide and water vapor from gaseous effluent emitted upon combustion of sulfur-bearing materials.
Recent widespread attention has been directed toward the environmental impact attendant the combustion of sulfur-bearing fuels as the source of essentially sulfur-free fuels become exceedingly scarce. As these sulfur-bearing fuels are combusted in, for example, the production of electrical power, copious quantities of sulfur dioxide, partially associated with water vapor, are generated and must be removed from the gaseous effluent before discharge thereof to the atmosphere. The present invention is directed to both achieving these ends and, additionally, providing for the easy recovery of sulfur dioxide in commercially usable form.
Moreover, the present invention is directed to achieving these ends while minimizing substantially the energy requirements therefor.
BACKGROUND 'TO THE PRIOR ART Many techniques have been developed to remove noxious sulfur dioxide from stack gases emitted upon combustion of sulfurous fuels. Chemical scrubbers and catalytic, fluidized beds have been advanced for these purposes: however, most often these are complex apparatus of high cost which, while removing the sulfur dioxide component, generally do not yield an easily recoverable end product, should such be desirable.
Similarly, other systems employ extractive techniques for the removal of sulfur dioxide from the gaseous effluent which yield sulfur dioxide trapped in a catalytic or absorbent agent. Thus, not only is recovery of the sulfur dioxide made more difficult but, additionally, the catalyst or sorbent must then be regenerated after a relatively short amount (A time to render same continuously useful.
Other systems rest upon the ease of liquefaction of sulfur dioxide from its gaseous state for their efficacy. See, for example, Hasche, U. S. Patents No. 1,810,312 and No.
1,939,694. However, such systems too present considerable drawbacks. For instance, and quite importantly, furnace efficiency may be reduced as the result of surging through the system.
Accordingly, the need exists to efficiently, yet simply, extract sulfur dioxide and associated water vapor from gaseous effluent emitted from the combustion of sulfur-bearing materials and allow recovery of sulfur dioxide component in a commercially usable form. The need also exists to realize these objectives while minimizing the energy requirements therefor.
SUMMARY OF THE INVENTION In accordance with the present invention it has been determined that the foregoing objectives may be realized by air reduction of the gaseous effluent emitted upon combustion of sulfur-bearing materials to liquefy and separate the sulfur dioxide and water vapor components thereof. In carrying out the invention, the stack gases are first cooled in a heat exchanger and subsequently slightly compressed to a degree sufficient to afford liquefaction of sulfur dioxide and condensation of water vapor, followed by recovery thereof through suitable pressure-isolation means to allow constant, uninterrupted operation of the system. In order to effect energy-conservation, the gaseous effluent is cooled within a range of about 1"C to about 25"C and most preferably to within a range of about 1"C to about 5"C, and is compressed within a range of from about 2 inches of water gauge [WG] to about 100 psig; advantageously from about 2 inches [WG to about 50 psig, preferably from about 2 inches [WG] to 20 psig, and most preferably from about 2 inches [WG] to about 10 psig. The liquid thus recovered is capable of many commercial uses such as, for example, bleaching textile fibers, etc., without further, extensive processing.
System efficiency and, accordingly, utility are enhanced by selective routing of cooled effluent gases in heat-exchange relationship with hot stack gas to aid in the cooling of incoming gas. Cooperating with the liquefaction apparatus is a spray curtain cooling chamber which employs cold condensate to further effect increased efficiency of the system.
BRIEF DESCRIPTION OF THE DRAWING The Figure of Drawing is a diagrammatic sketch of the apparatus of the present invention.
DETAILED DESCRIPTION OF THE INVENTION In order to further illustrate the present invention and the objects and advantages thereof, the following preferred embodiment will be described, the same intended to be illustrative and in no wise limitative.
The present invention rests upon the ease af liquefaction of sulfur dioxide at ambient temperatures and relatively low pressures.
Sulfur-bearing fuels combusted in a furnace employed, for example, in the generation of electrical power, emit copious quantities of sulfur dioxide, at least partially associated with water vapor, entrained in the gaseous duent. In my earlier U. S. Patent No.
3,994,706, I disclose an efficient method for removal of the sulfur dioxide component from such gaseous effluent. However, certain problems are yet attendant the most effective manner in yielding an exhaust virtually free of sulfur dioxide. Initially, it has been determined that any water vapor present in the stack gases emitted by a furnace complicates maximum extraction since, even at room temperature, water is capable of retaining 50 times its volume of sulfur dioxide. Accordingly, when employing typical fuels in typical furnaces, water vapor will be present within the range of from about 10% to 12%, compared with the overall composition of the stack gases, thus minimizing complete removal of sulfur dioxide. Therefore, the instant invention is directed, in part, to an improvement whereby the entrained water vapor component is similarly removed, thus giving rise to increased, overall operating efficiency.
In my specification, Serial No. 1,526,148, I disclose a method for effectively removing both water vapor and sulfur dioxide from stack gases, which comprises a compression of these gases to a pressure up to about 100 psig. However, I have determined that much lower pressures may effectively be employed without sacrificing system efficiency.
Thus, the instant invention is also directed to an improvement over that disclosed in Serial No. 1,526,148, whereby pressures as low as 2 inches WG may be used. Consequently, energy requirements to practice the present invention are materially reduced, as are capital expenditures for associated apparatus.
In capsule summary, the stack gases generated upon combustion of a sulfur-bearing fuel are first cooled in a heat exchanger.
The cooled effluent, with entrained sulfur dioxide component, is then compressed and directed to a first treatment chamber wherein cold sulfur dioxide condensate is sprayed within the effluent stream to remove a portion of the gaseous sulfur dioxide and water vapor components. The effluent, with the remaining sulfur dioxide and water vapor, is then directed to a second processing chamber wherein the last vestiges of sulfur dioxide and water vapor are removed by the combined action of a reduction in temperature and an increase in pressure. A portion of the sulfur dioxide condensate may then be employed in the first process chamber while the remainder is routed to a collection chambei via pressure isolation means in order that the overall system operates isobarically and without surging. The collected liquid sulfur dioxide may then be employed for other commercial uses.
The sulfur dioxide-free exhaust gases, which have been substantially cooled by the system, are similarly discharged under controlled pressure to preclude surging through the furnace which would, of course, result in uneven and inefficient operation thereof.
These cooled exhaust gases are routed through the heat exchanger, or in otherwise heat-exchange relationship with the stack gas, in order to enhance cooling capabilities while minimizing outside power requirements.
Moreover, by proper routing of the effluent streams, the system environment may be closely regulated for maximum efficiency.
For example, when the system is operated in a hot ambient environment, a portion of the cooled exhaust gas may be diverted for purposes of cooling the system surroundings.
Should, to the contrary, the system be required to operate in a relatively cold environment, the hot stack gases may be employed to heat the system surroundings before being subjected to the sulfur dioxide and water vapor removal system. Accord tingly, very favourable economics may be realized from practicing the instant invention.
Referring to the Figure of Drawing, there is shown diagrammatically a system according to the present invention for use in the abatement of air pollution resulting from the release of sulfur dioxide to the atmosphere as the result of combustion of sulfur-bearing fuels. These fuels, typically coal or oil, are combusted in a furnace 10 to, for example, provide steam for the generation of electrical power. The furnace, as is conventional, is equipped with an inlet duct 12 which, additionally, incorporates a damper 14 to be more fully described hereinbelow. Gaseous effluent resulting from the combustion of the fuel and containing considerable quantities of sulfur dioxide, at least partially associated with water vapor, is removed from furnace 10 via an exit duct 16 and is thence directed te a heat exchanger 18. Optionally, in order to further increase system efficiency, particulate removal means 15 may be employed.
Such apparatus as precipitators, bag filters, and the like, are well known in the art and require no greater description herein. Typically, the gaseous effluent emitted from furnace 10 will arrive at heat exchanger 18 at E temperature of approximately 1500C. However, depending upon the efficiency of the furnace or other operating parameters, the temperature of the effluent may range between 100" and 200"C.
Recognizing that sulfur dioxide possesses a critical temperature of approximately 158"C, it is necessary that the gaseous effluent be cooled to at least that tempera ture and, preferably, to within the range of approximately 55"C to 65"C. Most preferably, this effluent will be cooled to within the range of approximately -1 to + S 0C.
The necessary cooling is achieved by heat exchanger 18 which may be of any variety well known to the skilled artisan; for example, countercurrent liquid or air. Most preferably, heat exchanger 18 is a fin-type heat exchanger which employs heat pipe technology. These heat exchangers operate in a nearly isothermal manner, thus providing high recovery efficiency. Also, there are no moving parts requiring routine maintenance and there are no external power requirements, thus contributing to both efficiency and economy of operation. As shown in the Figure of Drawing, the cooled exhaust gases may be routed through heat exchanger 18 to further enhance efficiency.
These cooled gases are then directed to an air compressor 22 via exit duct 20, which is provided with an auxiliary duct 21 containing a damper 26.
Compressor 22 may be of any well known variety including rotary, rotary screw, centrifugal, or the like. When operating in relatively low pressure ranges within the pressure parameters of the instant invention, the compressor 22 may be a centrifugal fan of modern design which can reach pressures of 150 inches [WG] or 4 psig. The power requirements of centrifugal fans operating at these pressures are relatively low thereby reducing energy requirements and enhancing the economics of practicing the present process. While the absolute manner in which the compressor operates is not of extreme concern, it is essential that the load capabilities of compressor 22 be greater than the CFM requirement of furnace 10. Once the CFM requirement for maximum efficiency of furnace 10 has been calculated, without regard to the sulfur dioxide removal system, compressor 22 should be selected in order that it possesses an excess capability of at leat 10% to 15% over the necessary, optimum flow rate through the furnace 10. This excess capacity thus compensates for volume losses through the sulfur dioxide removal system. In concert with air compressor 22, damper 26 controllably admits ambient air through auxiliary duct 21. In effect, damper 26 operates as a compensator valve to offset differences in the volume of stack gases leaving the furnace and the volume drawn by compressor 22, the admission of the ambient air thus equalizing the CFM requirement of furnace 10.
In order to effect separation of the sulfur dioxide component from the gaseous effluent, it is necessary to compress the gases to a degree corresponding to the pressuretemperature thermodynamic relationship of the vapor/liquid equilibrium of sulfur dioxide. This degree of compression is automatically determined by first sensing the temperature of the gaseous effluent by temperature sensor 32, which may be of any convenient design and provide electrical, mechanical or hydraulic output to valve 42, which is then automatically controlled to provide the desired degree of compression in the system. For example, for gaseous effluent which has been cooled to approximately 1"C (just above the freezing point of water), there will be required a degree of compression resulting in an absolute pressure of approximately 5 inches [WG] to initiate liquefaction of the sulfur dioxide component. When the gaseous effluent is cooled to approximately 25"C, the absolute pressure required is approximately 4 kgm/cm2 (58 psig). Due to such considerations as the rise in temperature of the gaseous effluent accompanying compression in air compressor 22 (i.e., heat of compression), it may be desirable when the effluent is cooled to within a range of about 1"C to about 25"C, to provide a compressor capable of producing a pressure of at least, approximately 5 to 6 kgm/cm2 absolute. Also, chemical interaction between the effluent components will necessitate a somewhat higher degree of compression than theoretical.
The compressed gases are passed from compressor 22, via duct 25 to a first cooling chamber 27, which is a spray curtain cooling chamber modified for particular use in conjunction with the instant sulfur dioxide removal system. Spray curtain cooling chamber 27 has a plurality of heads, 28, which generate spray columns 29. As will be described more fully hereinbelow, retrieved condensate of sulfur dioxide is pumped to cooling chamber 27, the condensate forming the plurality of spray columns of finely dispersed sulfur dioxide.
The compressed gases emanating from compressor 22 will have experienced an increase in temperature due to the heat of compression thereof. The cooling chamber 27 offsets, to a large degree, this increased heat of compression as the spray columns are generated from cold condensate having a temperature of from about 1" to 5"C. The action of this spray curtain will effect an initial, partial, removal of sulfur dioxide from the effluent, as viell as an initial separation of water vapor due to a propensity for condensation upon the cold condensate particles in spray columns 29, in conjunc tioti with the increased pressure accompanying the action of compressor 22. The effluent gas, having undergone partial removal of sulfur dioxide and water vapor, exits spray cooling curtain chamber 27 via duct 30, which is provided with a temperature sensor, and is directed to processing chamber 34.
The processing chamber 34 is essentially a heat exchanger similar in configuration to heat exchanger 18.
The compressed effluent entering process chamber 34 is caused to follow a sinuous route about baffle member 36 upon which the sulfur dioxide component liquefies due to the reduction in temperature provided by heat exchanger 18 and an increase in pressure provided by air compressor 22. The processing chamber 34 is divided to provide a lower, collection chamber 38 by a perforated panel 40. Thus, the liquid sulfur dioxide removed from the gaseous effluent will drain downwardly on baffle members 36 through perforated panel 40 and collect in chamber 38.
Temperature sensor 32 operates in concert with pressure sensor 33 and one-way valve 42, together with dampers 14 and 26. As heretofore noted, it is essential that furnace 10 operates at a constant CFM, without surging, in order that the efficiency thereof is maximized. As demand changes are made upon the furnace, the pressure-temperature relationship necessary for effective separation of both the sulfur dioxide and water vapor, as well as the volume flow of gaseous effluent, will be effected. As such changes occur, temperature sensor 32 will provide an appropriate signal, which may be electrical, hydraulic, or mechanical, which controls oneway valve 42, thereby allowing appropriate change in the volume flow rate of effluent from the system, which bears directly upon the pressure therein. In conjunction with this operation, pressure sensor 33 similarly signals valve 42 an indication that the required pressure in process chamber 34 has been attained. Due to the vagaries of operating flow rates, dampers 14 and 26 are automatically adjustable to provide a wide range of flow rates through the system. Specifically, damper 14 is selectively adjustable to afford a constant flow rate through furnace 10 at that rate most efficient therefor, and this rate is independently variable over the entire range of operating parameters of the furnace without regard to those of the appended removal system. As operating parameters of the removal system vary in response to the pressure/temperature demands therein, air Is selectively admitted to the system via damper 26 to afford the most efficient removal of liquid sulfur dioxide.
If, for example, furnace 10 requires 10,000 CFM of air for most efficient operation, the total volume of air will be admitted through damper 14. Due to the quality of fuel employed, the volume of stack gas may vary slightly, but this will have little, if any, effect upon these initial requirements. The intake of compressor 22 draws air through damper 14 while damper 26 is correspondingly adjusted, preferably automatically, to insure this constant 10,000 CFM of air through furnace 10. If the required pressure in processing chamber 34 varies in response to, for example, a change in temperature, damper 26 is automatically opened or closed to insure proper operating conditions while yet ailowing constant flow through furnace 10.
Accordingly, the system is capable of effective and efficient removal of sulfur dioxide and water vapor from the gaseous effluent over an adjustably controllable range of from about 100 CFM to about 100,000 CFM.
As noted above, it is most desirable to remove water vapor entrained in the stack eases since water is capable of absorbing many times its own volume of sulfur dioxide.
To effect efficient removal of water vapor, it has been determined that the optimum operating parameters for processing chamber 34 be a temperature within the range of about 10C to about 25"C and a pressure within a range of about 2 inches of water gauge [WG] to about 100 psig, to yield a dew point of less than approximately 5"C.
The process becomes progressively more energy efficient as the temperature and pressure are reduced. Preferably, the temperature is maintained at about 1"C, which is just above the freezing point of water, while the pressure is kept within the range of about 2 inches [WG] to about 10 psig. As conditions dictate, pressure ranges of about 2 inches WGJ to about 20 psig or about 2 inches [WG] to about 50 psig are suggested in order to increase energy efficiency of the process. When operating in these ranges, the exhaust gas is about 99% free of water vapor and 95% to 98% of the sulfur dioxide is removed.
The liquid sulfur dioxide and condensed water vapor collected in chamber 38 are removed via exit duct 46, through level controlled valve 48 and duct 50 to isolation chamber 52 which allows routing of the condensate to a storage facility 54 without affecting the system pressure in process chamber 34.
As the level of liquid sulfur dioxide falls below a predetermined point, a float 56 causes level control valve 48 to open admitting condensate from collection chamber 38 to chamber 52. Simultaneously with the opening of valve 48, a float 58 causes level control valve 60 to be shut. As the liquid level rises, these floats 56, 58 cause corresponding valves 48, 60 to close and open, respectively, thus allowing the liquid in isolation chamber 52 to be transferred to storate. Accordingly, the fluid is removed from the system under substantially isobaric conditions.
Cold condensate stored in isolation chamber 52 at a temperature of from about 1" to 5"C, may then be employed as the source of cooling spray columns 29 heretofore described. Obviously, until the system has been in operation long enough to collect significant quantities of condensate, spray curtain cooling chamber 27 is inoperable.
However, once the level of condensate in isolation chamber 52 has reached a steady state, a portion thereof may be removed via pipe 62 by the action of a pump 64 to the nozzle heads 28. The spray columns 29 will, as noted, aid in the reduction of the temperature of the gaseous effluent and simultaneously effect initial, partial removal of the sulfur dioxide and water vapor components. Liquid collecting in chamber 27 is returned to isolation chamber 52 via pipe 66.
Removal of sulfur dioxide and water vapor from the gaseous effluent yields a cold residuum for discharge to the atmosphere. This cold residuum passes through one-way valve 42 under controlled pressure conditions, described above, and is selectively routed in proximity with heat exchanger 18 or is otherwise caused to pass in heat-exchange relationship with the hot, incoming effluent thereby reducing overall demands on the system. Thence, it is discharged via duct 45.
Similarly, the cold residuum may be employed, alone or in concert with hot stack gases, to affect environmental control of the surroundings of the system. That is, by properly routing the hot and/or cold gas streams in heat-exchange relationship with the environs of the apparatus, they may be maintained within a regulated temperature range of from about 10 C to about 16"C.
Such a feature yet further enhances the operation efficiency and economy of the system. For example, the hot stack gases may be selectively passed through a conventional heat radiator to appropriately heat the ambient. Similarly, when cooling is desired, the cold exhaust gas from duct 43 may be selectively diverted through air conditioner-type raditors.
While the invention has been described and illustrated with reference to a certain preferred embodiment thereof, those skilled in the art will appreciate that various modifications, changes, omissions and substitutions can be made without departing from the spirit thereof. It is intended, therefore, that the invention be limited only by the scope of the following claims.
WHAT I CLAIM IS:- 1. A method for modification of a gaseous effluent, emitted upon combustion of sulfur-containing materials in a furnace having a predetermined optimum flow rate of air thereto for most efficient operation thereof, by removal and recovery of sulfur dioxide and water vapor from said effluent prior to discharge thereof to the atmosphere, said method comprising the steps of: (a) cooling said gaseous effluent to within a temperature within a range of from about 1"C to about 25"C; (b) compressing said gaseous effluent to R pressure within the range of from about 2 inches of water gauge up to about 100 psig; (c) sensing the pressure of the cooled and compressed effluent; (d) sensing the temperature of the cooled and compressed effluent; (e) liquefying sulfur dioxide and water vapor entrained in said effluent by maintaining the temperature/pressure relationship of said cooled and compressed effluent below the thermodynamic equilibrium point for liquefaction of sulfur dioxide and water vapor from said effluent, ta yield a modified residuum effluent essentially free from sulfur dioxide and water (f) controliedly discharging said modified residuum effluent to the atmosphere through
**WARNING** end of DESC field may overlap start of CLMS **.

Claims (15)

**WARNING** start of CLMS field may overlap end of DESC **. a dew point of less than approximately 5"C. The process becomes progressively more energy efficient as the temperature and pressure are reduced. Preferably, the temperature is maintained at about 1"C, which is just above the freezing point of water, while the pressure is kept within the range of about 2 inches [WG] to about 10 psig. As conditions dictate, pressure ranges of about 2 inches WGJ to about 20 psig or about 2 inches [WG] to about 50 psig are suggested in order to increase energy efficiency of the process. When operating in these ranges, the exhaust gas is about 99% free of water vapor and 95% to 98% of the sulfur dioxide is removed. The liquid sulfur dioxide and condensed water vapor collected in chamber 38 are removed via exit duct 46, through level controlled valve 48 and duct 50 to isolation chamber 52 which allows routing of the condensate to a storage facility 54 without affecting the system pressure in process chamber 34. As the level of liquid sulfur dioxide falls below a predetermined point, a float 56 causes level control valve 48 to open admitting condensate from collection chamber 38 to chamber 52. Simultaneously with the opening of valve 48, a float 58 causes level control valve 60 to be shut. As the liquid level rises, these floats 56, 58 cause corresponding valves 48, 60 to close and open, respectively, thus allowing the liquid in isolation chamber 52 to be transferred to storate. Accordingly, the fluid is removed from the system under substantially isobaric conditions. Cold condensate stored in isolation chamber 52 at a temperature of from about 1" to 5"C, may then be employed as the source of cooling spray columns 29 heretofore described. Obviously, until the system has been in operation long enough to collect significant quantities of condensate, spray curtain cooling chamber 27 is inoperable. However, once the level of condensate in isolation chamber 52 has reached a steady state, a portion thereof may be removed via pipe 62 by the action of a pump 64 to the nozzle heads 28. The spray columns 29 will, as noted, aid in the reduction of the temperature of the gaseous effluent and simultaneously effect initial, partial removal of the sulfur dioxide and water vapor components. Liquid collecting in chamber 27 is returned to isolation chamber 52 via pipe 66. Removal of sulfur dioxide and water vapor from the gaseous effluent yields a cold residuum for discharge to the atmosphere. This cold residuum passes through one-way valve 42 under controlled pressure conditions, described above, and is selectively routed in proximity with heat exchanger 18 or is otherwise caused to pass in heat-exchange relationship with the hot, incoming effluent thereby reducing overall demands on the system. Thence, it is discharged via duct 45. Similarly, the cold residuum may be employed, alone or in concert with hot stack gases, to affect environmental control of the surroundings of the system. That is, by properly routing the hot and/or cold gas streams in heat-exchange relationship with the environs of the apparatus, they may be maintained within a regulated temperature range of from about 10 C to about 16"C. Such a feature yet further enhances the operation efficiency and economy of the system. For example, the hot stack gases may be selectively passed through a conventional heat radiator to appropriately heat the ambient. Similarly, when cooling is desired, the cold exhaust gas from duct 43 may be selectively diverted through air conditioner-type raditors. While the invention has been described and illustrated with reference to a certain preferred embodiment thereof, those skilled in the art will appreciate that various modifications, changes, omissions and substitutions can be made without departing from the spirit thereof. It is intended, therefore, that the invention be limited only by the scope of the following claims. WHAT I CLAIM IS:-
1. A method for modification of a gaseous effluent, emitted upon combustion of sulfur-containing materials in a furnace having a predetermined optimum flow rate of air thereto for most efficient operation thereof, by removal and recovery of sulfur dioxide and water vapor from said effluent prior to discharge thereof to the atmosphere, said method comprising the steps of: (a) cooling said gaseous effluent to within a temperature within a range of from about 1"C to about 25"C; (b) compressing said gaseous effluent to R pressure within the range of from about 2 inches of water gauge up to about 100 psig; (c) sensing the pressure of the cooled and compressed effluent; (d) sensing the temperature of the cooled and compressed effluent; (e) liquefying sulfur dioxide and water vapor entrained in said effluent by maintaining the temperature/pressure relationship of said cooled and compressed effluent below the thermodynamic equilibrium point for liquefaction of sulfur dioxide and water vapor from said effluent, ta yield a modified residuum effluent essentially free from sulfur dioxide and water (f) controliedly discharging said modified residuum effluent to the atmosphere through
discharge flow means in response to the sensed pressure and temperature of said cooled and compressed effluent whereby said temperature/pressure relationship is maintained by adjusting the volume flow rate of modified residuum effluent discharged; (g) admitting a volume of air through damper flow means to said effluent upstream of said discharge flow means to directly compensate for increases and decreases in the volume flow rate of modified residuum effluent discharged, whereby surging through the furnace is precluded, thus maintaining constant said optimum flow rate of air thereto while allowing the adjustment of the volume flow rate of modified residuum effluent discharged; and, (h) contacting said effluent with sulfur dioxide and water condensate prior to said liquefying step.
2. The method of Claim 1, wherein gaseous effluent is compressed to a pressure within the range of from about 2 inches of water gauge up to about 50 psig.
3. The method of Claim 1, wherein the gaseous effluent is compressed to a pressure within the range of from about 2 inches of water gauge up to about 20 psig.
4. The method of Claim 1, wherein the gaseous effluent is compressed to a pressure within the range of from about 2 inches of water gauge up to about 10 psig.
5. The method of Claim 1, wherein the gaseous effluent is cooled to approximately 1"C.
6. The method of Claim 5, wherein gaseous effluent is compressed to a pressure within the range of from about 2 inches of water gauge up to about 50 psig.
7. The method of Claim 5, wherein the gaseous effluent is compressed to a pressure within the range of from about 2 inches of water gauge up to about 20 psig.
8. The method of Claim 5, wherein the gaseous effluent is compressed to a pressure within the range of from about 2 inches of water gauge up to about 10 psig.
9. The method of Claim 5, wherein said discharging step includes routing said residuum in heat-exchange relationship with said gaseous effluent prior discharging said residuum to the atmosphere.
10. The method of Claim 5, further including the step of collecting said liquefied sulfur dioxide and recycling a portion thereof to said contacting step.
11. The method of Claim 5, further comprising the step of regulating the environment under which said method is practiced by selectively routing said residuum and/or said gaseous effluent in heat-exchange relationship of the environs wherein said method Is practiced whereby the temperature of said environs is maintained within the range of from about 10 C to 16"C.
12. The method of Claim 5, wherein the compressing step is accomplished with a centrifugal fan.
13. A method for modification of a gaseous effluent substantially as hereinbefore described with reference to and as illustrated in the accompanying drawings
14. A apparatus for modifying a gaseous effluent substantially as hereinbefore described with reference to and as illustrated in the accompanying drawings.
15. Sulfur dioxide recovered from a gaseous effluent by the method or apparatus as claimed in any preceding claim.
GB1990678A 1975-08-12 1978-05-16 Removal and recovery of sulphur dioxide from stack gases Expired GB1569073A (en)

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US05/855,153 US4153437A (en) 1976-10-29 1977-11-28 Removal and recovery of sulfur dioxide from stack gases

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EP0541009A1 (en) * 1991-11-06 1993-05-12 VOMM IMPIANTI E PROCESSI S.r.L. Method for eliminating pollutants from gas produced during substrate drying
EP0655270A1 (en) * 1993-11-29 1995-05-31 Basf Corporation Energy efficient apparatus for removing emissions
US5433761A (en) * 1993-11-29 1995-07-18 Basf Corporation Energy efficient apparatus for removing emissions
US5433769A (en) * 1993-11-29 1995-07-18 Basf Corporation Energy efficient process for removing emissions

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0537616A1 (en) * 1991-10-12 1993-04-21 BRESCH ENTSORGUNG GmbH Process for separating of fluoro-chloro-hydrocarbons from gas mixtures
EP0541009A1 (en) * 1991-11-06 1993-05-12 VOMM IMPIANTI E PROCESSI S.r.L. Method for eliminating pollutants from gas produced during substrate drying
EP0655270A1 (en) * 1993-11-29 1995-05-31 Basf Corporation Energy efficient apparatus for removing emissions
US5433761A (en) * 1993-11-29 1995-07-18 Basf Corporation Energy efficient apparatus for removing emissions
US5433769A (en) * 1993-11-29 1995-07-18 Basf Corporation Energy efficient process for removing emissions

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