Claims
- 1. A process for separating coal from raw input which includes coal and refuse, comprising the steps of:
- screening the raw input to produce solids having a size range of about 2".times.0;
- admixing said solids with a non-magnetic heavy medium to form a feedstock slurry having a solids content of at least about 10%;
- cyclonically separating said feedstock slurry to produce a coal-rich slurry and a refuse-rich slurry;
- said cyclonic separating step including the steps of:
- admitting said feedstock slurry tangentially into a substantially cylindrical chamber for subjecting said feedstock to substantially constant acceleration through a first axial extent,
- immediately thereafter admitting said feedstock slurry into a tapered chamber in fluid communication with said cylindrical chamber to subject said feedstock slurry to increasing acceleration through a second axial extent corresponding to about one-half said first axial extent,
- exhausting said coal-rich slurry in one direction from said cylindrical chamber through a vortex finder depending centrally into said cylindrical chamber a distance less than about one-half said first axial extent, and
- discharging said refuse-rich slurry in the opposite direction through an orifice in said tapered chamber aligned axially with said vortex finder,
- dewatering the coal-rich slurry to produce a coal product and a fine coal slurry;
- dewatering said refuse-rich slurry to produce a refuse product and a fine refuse slurry;
- mixing said fine coal and fine refuse slurries together to form said non-magnetic heavy medium;
- maintaining the specific gravity of the medium prior to introduction of said raw input below a predetermined specific gravity determined by the coal product to be prepared;
- whereby coal is separated from refuse in a continuous process utilizing an autogenous non-magnetic heavy medium.
- 2. The process according to claim 1 wherein said specific gravity of said medium differs from said coal product by at least about 0.35 units.
- 3. The process according to claim 1 wherein said desired coal product is anthracite, and said specific gravity of said medium is controlled within a range of about 1.10 to about 1.40.
- 4. The process according to claim 1 wherein said feedstock slurry has a solids content in a range of about 10% to about 20% of the total weight of the feedstock slurry, said solids consisting of +48 mesh material in said feedstock slurry.
- 5. The process according to claim 1 wherein said fine coal and fine refuse slurries provide substantially the entire heavy medium required for said cyclonic separating step.
- 6. The process according to claim 1 wherein said zone of increasing acceleration is provided by a tapered wall located between the bottom of said chamber and said orifice and having an included cone angle in a range of about 90.degree. to about 140.degree..
- 7. The process according to claim 1 wherein said substantially cylindrical chamber has a diameter in a range of about 14" to 20" and an axial length in a range of about 22" to 24", said vortex finder has an inside diameter in a range of about 6" to 8", and said orifice has a diameter in a range of 2.25" to 3.5".
- 8. The process according to claim 1 wherein said feedstock slurry is supplied to said inlet at a static pressure in a range of about 6 to about 8 psig. and is admitted into said substantially cylindrical chamber at a volumetric flow rate in a range of about 300 to 500 gpm.
- 9. The process according to claim 1 wherein said fine coal and fine refuse slurries are flowed together at one location, and the specific gravity of the conflowed slurries is measured downstream of said one location, said one location being prior to introduction of raw input to said medium to form said feedstock.
- 10. The process according to claim 9 wherein said mixed slurries are flowed onto said sizing screen located downstream of said location where said specific gravity is measured.
- 11. The process according to claim 1 wherein the viscosity of the feedstock slurry is maintained in a range of about 8 to about 9 seconds upstream of said cyclonic separating step.
- 12. The process according to claim 11 wherein said viscosity is maintained below about 8.25 seconds.
- 13. The process according to claim 1 including the step of allowing the medium to increase in temperature to at least about 100.degree. F. to help maintain a relatively low viscosity and to reduce surface tension upstream of said cyclonic separating step.
- 14. The process according to claim 1 including the steps intermediate said cyclonic separating step and said coal-rich slurry dewatering step of subjecting said coal-rich slurry to a secondary cyclonic separating step to produce an overflow of lower ash coal than said first-mentioned cyclonic separating step and crushing the underflow from said secondary cyclonic separating step and returning said crushed underflow to mix with said medium and raw input.
- 15. The process according to claim 1 including the step of flowing said heavy medium across said raw input during said screening step to wash raw input, and collecting below said sizing screen said screened and washed raw input with said heavy medium and thereby providing said feedstock slurry.
- 16. The process according to claim 1 wherein said specific gravity maintaining step includes the steps of measuring the specific gravity of said heavy medium upstream of said sizing screen and bleeding said heavy medium downstream of said measuring location and adding water to said feedstock slurry as needed to control said specific gravity.
- 17. A process for separating coal from raw input which includes coal and refuse, comprising the steps of:
- screening the raw input to produce feed solids having a size range of about 2".times.0;
- admixing said feed solids with a non-magnetic heavy medium having a specific gravity in a range of about 1.10 to about 1.40 to form a feedstock slurry;
- subjecting said feedstock slurry sequentially both to substantially constant acceleration for a predetermined time and then to increasing acceleration in at least one cyclonic separator to produce a coal-rich slurry and a refuse-rich slurry, said feedstock accelerating step including the steps of confining said feedstock slurry in a chamber having a substantially cylindrical shape with a predetermined axial dimension and a conical end wall having an axial extent corresponding to about one-half said predetermined axial dimension to provide said substantially constant acceleration followed by said increasing acceleration, and including the step of exhausting through a vortex finder terminating above the median of said cylindrical chamber said coal-rich slurry and discharging from the apex of said conical end wall the refuse-rich slurry;
- dewatering said coal-rich slurry to produce a coal product and a coal-rich underflow slurry;
- dewatering said refuse-rich slurry to produce a refuse product and a refuse-rich underflow slurry;
- conflowing said coal and refuse slurries to produce a heavy medium;
- periodically sampling said heavy medium to determine its specific gravity;
- bleeding said heavy medium and adding water to said feedstock slurry as indicated by said sampled specific gravity to adjust the specific gravity of the medium in said range;
- whereby coal is separated from refuse in a continuous process.
- 18. The process according to claim 17 including the step of centrifuging the medium produced in said bleeding step to produce solids and liquid, and admixing said liquid with said heavy medium.
- 19. The process according to claim 17 wherein said non-magnetic heavy medium circulates continuously in said process and, in the steady state, is generated entirely from the fine solids associated with the raw input.
- 20. A process for separating coal from raw input which includes coal and refuse, comprising the steps of:
- screening the raw input to produce feed solids having a size range of about 2".times.0;
- admixing said feed solids with a non-magnetic heavy medium to form a feedstock slurry having a solids content of at least about 10%;
- maintaining the specific gravity of said heavy medium prior to introduction of said raw input below the specific gravity of the coal to be separated;
- cyclonically separating said feedstock slurry to produce a coal-rich overflow slurry having middlings contained therein and a refuse-rich underflow slurry;
- said cyclonic separating step including the steps of:
- admitting said feedstock slurry tangentially into a substantially cylindrical chamber for subjecting said feedstock to substantially constant acceleration through a first axial extent,
- immediately thereafter admitting said feedstock slurry into a tapered chamber in fluid communication with said cylindrical chamber to subject said feedstock slurry to increasing acceleration through a second axial extent corresponding to about one-half said first axial extent,
- exhausting said coal-rich middlings-containing slurry in one direction from said cylindrical chamber through a vortex finder depending centrally into said cylindrical chamber a distance less than about one-half said first axial extent, and
- discharging said refuse-rich slurry in the opposite direction through an orifice in said tapered chamber aligned axially with said vortex finder,
- dewatering the coal-rich slurry to produce a coal product and a fine coal slurry;
- dewatering said refuse-rich slurry to produce a refuse product and a fine refuse slurry;
- admitting said middlings-containing coal-rich overflow into a secondary cyclonic separator to produce a low ash middlings-free overflow and a high ash middlings rich underflow;
- crushing said high ash middlings-rich underflow solids to a size range smaller than said screened raw input;
- admixing said high ash crushed underflow solids with said feed solids and with said fine coal and fine refuse slurries to form said feedstock slurry; and
- recirculating said feedstock slurry to said cyclonic separating step.
- 21. The process according to claim 20 wherein said coal is anthracite and said specific gravity of said medium is maintained below about 1.40 by bleeding said heavy medium prior to said admixing step and adding water to the feedstock slurry as required to maintain said specific gravity below said limit.
- 22. The process according to claim 20 wherein said secondary cyclonic separating step is performed in at least one hydrocyclone.
- 23. Apparatus for separating coal from raw input which includes coal and refuse, comprising:
- means for screening the raw input to produce solids having a size range of about 2".times.0;
- means for mixing said solids with a non-magnetic heavy medium to form a feedstock slurry;
- means for cyclonically separating said feedstock slurry to produce a coal-rich slurry and a refuse-rich slurry, said cyclonic separating means including a wall forming a substantially cylindrical chamber and a bottom wall forming a tapered chamber adjacent an underflow orifice, said cylindrical chamber having an axial length slightly greater than its inside diameter, said tapered chamber having an axial length corresponding to about one-half the axial length of said cylindrical chamber, and including a vortex finder depending centrally into said cylindrical chamber and terminating above the median thereof and an outlet orifice in said tapered chamber in axial alignment with said vortex finder;
- means for dewatering the coal-rich slurry to produce a coal product and a fine coal slurry;
- means for dewatering said refuse-rich slurry to produce a refuse product and a fine refuse slurry;
- means for mixing said fine coal and fine refuse slurries together to form said non-magnetic heavy medium; and
- means for feeding said heavy medium to said first-mentioned mixing means to form said feedstock slurry;
- whereby coal can be separated from refuse on a continuous basis utilizing an autogenous non-magnetic heavy medium.
- 24. Apparatus according to claim 23 wherein said feeding means flows said heavy medium across said raw input on said screening means.
- 25. Apparatus according to claim 23 including means cooperating with said feeding means to measure the specific gravity of said heavy medium before it is flowed into said mixing means.
- 26. Apparatus according to claim 23 including means connected to said feeding means for bleeding heavy medium therefrom, and means for supplying water to said mixing means.
- 27. Apparatus according to claim 23 wherein said mixing means includes a hopper disposed below said screening means for collecting said screened raw input and said heavy medium.
- 28. Apparatus according to claim 23 wherein said cyclonic separating means includes a constant acceleration hydrocyclone having said tapered bottom wall.
- 29. Apparatus according to claim 23 wherein said first-mentioned dewatering means includes a variable acceleration hydrocyclone.
- 30. Apparatus according to claim 23 wherein said cyclonic separating means includes primary and secondary cyclonic separators, means for flowing said overflow from said primary cyclonic separator to said secondary separator, means for crushing the underflow from said secondary separator, and means for feeding said crushed underflow to said mixing means.
- 31. Apparatus according to claim 30 wherein both of said secondary cyclonic separator is of the constant acceleration type.
- 32. Apparatus according to claim 23 wherein said substantially cylindrical chamber has an inside diameter of about 20", an axial length of about 23", and said bottom wall has an included tapered angle of about 100.degree. from its intersection with said substantially cylindrical chamber wall.
- 33. Apparatus according to claim 32 wherein said vortex finder depends about 11" into said cylindrical chamber and has about an 8" inside diameter, means providing an inlet tangentially into said cylindrical chamber at the end thereof remote from said orifice, said inlet having a cross-sectional area of about 12.5 in..sup.2 and said orifice having a cross-sectional area of about 9.5 in..sup.2.
- 34. A process for separating coal and refuse from raw input comprising the steps of:
- screening said raw input to a size range of about 2".times.0;
- entraining said screened raw input in a heavy medium slurry having a specific gravity lower than the specific gravity of the coal to be separated;
- admitting said raw input and heavy medium tangentially under pressure through an inlet into a substantially cylindrical chamber having an axial length slightly greater than its diameter to subject said input to a substantially constant acceleration for a predetermined time interval;
- causing said raw input to enter a tapered chamber having an included cone angle of about 90.degree. to about 120.degree. at one end of said substantially cylindrical chamber for increasing the acceleration on the raw input;
- discharging a refuse-rich slurry through an orifice at the apex of said tapered chamber; and
- exhausting coal-rich slurry from about the middle of said cylindrical chamber through a vortex finder of a predetermined inside diameter.
- 35. The process according to claim 34 wherein said coal is anthracite and said specific gravity is maintained in a range of about 1.10 to about 1.40.
- 36. The process according to claim 34 wherein said pressure is maintained in a range of about 6 to about 8 psig.
- 37. The process according to claim 34 wherein said heavy medium is substantially free from magnetic particles and including the step of causing at least a portion of said refuse-rich slurry to be recirculated to said inlet for causing substantially all of said heavy medium to be supplied from said raw input during steady state operation of the process.
- 38. The process according to claim 37 wherein the solids content of the combined raw input and medium slurry is maintained in a range of about 10% to 20% on a weight basis based on the weight of said combined slurry.
- 39. For use in a process of separating coal and refuse from raw input having a size range of about 2".times.0 entrained in a heavy medium slurry having a predetermined specific gravity, a cyclonic separator, comprising:
- a wall defining a substantially cylindrical chamber having a predetermined inside diameter;
- means providing a transverse end wall at one end of said chamber;
- means providing at least one tangential inlet into said chamber adjacent said end wall;
- a tapered end wall at the other end of said cylindrical chamber having an included cone angle in a range of about 90.degree. to about 140.degree.;
- means providing an orifice in said tapered wall adjacent the apex thereof;
- a vortex finder depending into said cylindrical chamber and terminating at about the median thereof; and
- the inside diameter of said cylindrical chamber being slightly less than its axial length.
- 40. The separator according to claim 39 wherein said tapered end wall has an axial length corresponding to about one-half the axial length of said substantially cylindrical chamber.
- 41. The separator according to claim 39 wherein said included cone angle is about 100.degree..
- 42. The separator according to claim 41 wherein said vortex finder has an inside diameter slightly less than about one-half the inside diameter of said substantially cylindrical chamber.
- 43. The separator according to claim 42 wherein the cross-sectional area of the orifice is slightly less than the cross-sectional area of said inlet and both are less than one-half the cross-sectional area of the vortex finder.
- 44. The separator according to claim 39 wherein said predetermined chamber diameter is about 20", said axial length of said substantially cylindrical chamber is about 23", the axial length of said vortex finder measured from said transverse end wall is about 11", inside diameter of said vortex finder is about 8", the inside diameter of said inlet is about 4", and the inside diameter of said orifice is about 31/2".
- 45. The separator according to claim 44 including means providing an outlet plenum above said chamber in fluid communication with said vortex finder and a port in said plenum above said vortex finder.
CROSS-REFERENCE TO RELATED APPLICATION
The present application is a continuation-in-part of copending application Ser. No. 253,401 filed on Apr. 13, 1981, now abandoned, for Autogenous Heavy Medium Process And Apparatus For Separating Coal From Refuse.
US Referenced Citations (35)
Foreign Referenced Citations (3)
Number |
Date |
Country |
506108 |
Sep 1954 |
CAX |
666801 |
Aug 1949 |
GBX |
2046630 |
Mar 1980 |
GBX |
Non-Patent Literature Citations (2)
Entry |
Coal Preparation, 3rd Ed., Leonard et al., Eds., American Institute of Mining, Metallurgical, and Petroleum Engineers, Ch. 10, 1968. |
"Coal Mining and Processing", Feb., 1981, p. 19. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
253401 |
Apr 1981 |
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