Claims
- 1. In a TRC apparatus having a tubular thermal cracking reactor including a reaction chamber cracking zone, means for delivering hot inert particulate solids to the reactor, means for delivering hydrocarbon feed or hydrodesulfurized residual oil fluid feed to the reactor and means for delivering a diluent gas at a temperature between 1300.degree. F. and 2500.degree. F. to the reactor and wherein the hydrocarbon fluid feed or the hydrodesulfurized residual oil fluid feed along with the inert particulate solids and diluent gas are passed through the cracking zone for a residence time of 0.05 to 2 seconds, the improvement comprising a solids-gas separator designed to effect rapid removal of particulate solids from a dilute mixed phase stream of solids and gas leaving the reactor, said separator comprising a chamber for disengaging solids from the incoming mixed phase stream, said chamber having rectilinear longitudinal walls to form a flow path essentially rectangular in cross section, said chamber also having a mixed phase inlet, a gas phase outlet, and a solids phase outlet, with the inlet being at one end of the chamber disposed normal to one wall of the rectilinear chamber, the solids phase outlet being at the other end of the chamber and suitably arranged for downflow of discharged solids by gravity, and the gas outlet being therebetween and oriented to effect a 180.degree. change in direction of the gas and wherein the separator further comprises a weir disposed in said chamber and extending across the flow path adjacent the gas phase outlet upstream of the solids phase outlet.
- 2. In a TRC apparatus having a tubular thermal cracking reactor including a reaction zone, means for delivering hot inert particulate solids to the reactor, means for delivering hydrocarbon feed or hydrodesulfurized residual oil fluid feed to the reactor and means for delivering a diluent gas at a temperature between 1300.degree. F. and 2500.degree. F. to the reactor and wherein the hydrocarbon fluid feed or the hydrodesulfurized residual oil fluid feed along with the hot inert particulate solids and diluent gas are passed through the reaction zone for a residence time of 0.05 to 2 seconds, the improvement comprising a solids-gas separator designed to effect rapid removal of particulate solids from a dilute mixed phase stream of solids and gas leaving the reactor, the separator comprising a chamber for disengaging solids from the incoming mixed phase stream, said chamber having slightly arcuate longitudinal walls to form a flow path essentially rectangular in cross section, said chamber also having a mixed phase inlet, a gas phase outlet, and a solids phase outlet, with the mixed phase inlet being at one end of the chamber and disposed normal to one wall of the rectilinear chamber, and the solids phase outlet being at the other end of the chamber and suitably arranged for downflow of discharged solids by gravity, and said gas phase outlet being therebetween and oriented to effect a 180.degree. change in direction of the gas, and wherein said separator further comprises a weir disposed in said chamber and extending across said flow path adjacent said gas phase outlet upstream of said solids phase outlet.
- 3. In a TRC apparatus as in claim 1 or 2, wherein the separator mixed phase inlet is of an inside diameter D.sub.i, and which separator is further characterized by the flow path having a preferred height H equal to at least D.sub.i or 4 inches, whichever is greater, and with a preferred width W between 0.75 and 1.25 D.sub.i, and wherein the gas phase outlet is located between the mixed phase inlet and the solids phase outlet at a preferred distance from the mixed phase inlet which is no greater than 4.0 D.sub.i as measured between their respective centerlines.
- 4. In a TRC apparatus as in claim 3 wherein the distance between inlet and gas outlet centerlines of the separator is no less than 1.5 D.sub.i but not greater than 2.5 D.sub.i.
- 5. In a TRC apparatus as in claim 4 wherein the height H of the flow path in the separator is twice D.sub.i.
- 6. In a TRC apparatus as in claim 5 wherein the width W of the flow path in the separator is no less than 0.9 D.sub.i but no greater than 1.10 D.sub.i.
- 7. The TRC apparatus of claim 3 wherein the chamber in the separator has a longitudinal dimension that is extended beyond the gas outlet by a length L.
- 8. The TRC apparatus as in claim 7 wherein the length L of the chamber extension in the separator is less than or equal to 5 D.sub.i.
- 9. In a TRC apparatus having a tubular thermal cracking reactor including a reaction chamber, means for delivering hot inert particulate solids to the reactor, means for delivering hydrocarbon feed or hydrodesulfurized residual oil fluid feed to the reactor and means for delivering a diluent gas at a temperature between 1300.degree. F. and 2500.degree. F. to the reactor and wherein the hydrocarbon feed or the hydrodesulfurized residual oil fluid feed along with the inert particulate solids and diluent gas are passed through the reaction chamber for a residence time of 0.05 to 2 seconds, the improvement comprising:
- a solids-gas separation system to separate a dilute mixed phase stream of gas and particulate solids leaving the reactor into an essentially solids free gas stream, the separation system comprising:
- a chamber for rapidly disengaging about 80% of the particulate solids from the incoming dilute mixed phase stream, said chamber having approximately rectilinear or slightly arcuate longitudinal side walls to form a flow path of height H and width W approximately rectangular in cross section, said chamber also having a mixed phase inlet of inside width D.sub.i, a gas outlet, and a solids outlet, said inlet being at one end of the chamber and disposed normal to the flow path the height H of which is equal to at least D.sub.i or 4 inches, whichever is greater, and the width W of which is no less than 0.75 D.sub.i but no more than 1.25 D.sub.i, said solids outlet being at the opposite end of the chamber and being suitably arranged for downflow of discharged solids by gravity, and said gas outlet being therebetween at a distance no greater than 4 D.sub.i from the inlet as measured between respective centerlines and oriented to effect a 180.degree. change in direction of the gas whereby resultant centrifugal forces direct the solid particles in the incoming stream toward a wall of the chamber opposite to the inlet forming thereat and maintaining an essentially static bed of solids, the surface of the bed defining a curvilinear path of an arc of approximately 90.degree. of a circle for the outflow of solids to the solids outlet,
- a secondary solids-gas separator, said secondary separator removing essentially all of the residual solids,
- a first conduit connecting the gas outlet from the chamber to the secondary separator,
- a vessel connected to said solids outlet for the discharge of solids,
- a second conduit connecting said vessel to the solids outlet and,
- pressure balance means to maintain a height of solids in said second conduit to provide a positive seal between the chamber and vessel.
- 10. The TRC apparatus of claim 9 wherein the pressure balance means is the hydraulic forces acting on the chamber, second conduit and vessel, the second conduit being sized for sufficient pressure loss to provide the height of solids.
- 11. The TRC apparatus of claim 9 wherein the pressure balance means is a check valve at the outlet end of the second conduit.
- 12. The TRC apparatus of claim 9 wherein the pressure balance means is a pressure control valve on the solids discharge vessel.
CROSS REFERENCE TO RELATED CASE
This is a continuation-in-part application of Ser. No. 06/055,148 filed July 6, 1979, now U.S. Pat. No. 4,288,235.
US Referenced Citations (23)
Foreign Referenced Citations (1)
Number |
Date |
Country |
1088435 |
Mar 1955 |
FRX |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
55148 |
Jul 1979 |
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