Internal lining for delayed coker drum

US10047298B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10047298-B2
Application numberUS-201514641903-A
CountryUS
Kind codeB2
Filing dateMar 9, 2015
Priority dateMar 12, 2014
Publication dateAug 14, 2018
Grant dateAug 14, 2018

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  1. Title

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  2. Abstract

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  5. First independent claim

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Abstract

Official abstract text for this publication.

A delayed coking unit has a thermal shock-resistant, erosion-resistant internal lining to reduce thermally-induced mechanical stresses in the pressure boundary of the coke drum. The lining is effective to reduce or mitigate the transient thermal stress that occurs in the pressure boundary of the coke drum and to reduce or minimize the high thermal stress resulting from temperature differentials at the skirt-to-shell junction.

First claim

Opening claim text (preview).

The invention claimed is: 1. A delayed coking drum consisting of an inner surface, a top ellipsoidal or hemispherical head with a vapor outlet at the top, a bottom conical head with an outlet for coke product and a feed inlet at/near the bottom, and a vertical cylindrical section, wherein a shock-resistant and erosion-resistant internal lining is applied to the inner surface of the drum to reduce or minimize a transient thermal stress that occurs in the drum during portions of a coking cycle when the thermal stresses arise, wherein the internal lining is a refractory lining containing one of a refractory aggregate having a thermal expansion rate whereby the refractory lining delays transfer of heat from inside the drum during the coking cycle to the drum, and an aggregate that matches thermal expansion of the drum, wherein the refractory lining containing one of a refractory aggregate having a thermal expansion rate and an aggregate that matches the thermal expansion of the drum forms a thermal barrier that delays transfer of heat from inside the drum during the coking cycle to the drum. 2. A delayed coking drum according to claim 1 in which the refractory lining applied to the bottom conical head of the drum. 3. A delayed coking drum according to claim 1 in which the refractory lining is applied in a lower cylindrical section of the vertical cylindrical section of the drum. 4. A delayed coking drum according to claim 3 in which the refractory lining is applied in an upper cylindrical section of the vertical cylindrical section of the drum. 5. A delayed coking drum according to claim 1 in which the refractory lining is a monolithic lining comprising a rammed refractory secured by means of anchors attached to the inner surface of the drum. 6. A delayed coking drum according to claim 5 in which the refractory lining is a monolithic lining comprising a rammed refractory secured by means of a single point anchoring system attached to the inner surface of the drum. 7. A delayed coking drum according to claim 6 in which the single point anchoring system is attached to the inner surface of the drum by means of stud welds in which thermal strain is accumulated only across individual welds. 8. A delayed coking drum according to claim 1 in which the refractory lining has a thickness of 1.9 to 5 cm. 9. A delayed coking drum according to claim 1 , wherein the internal lining includes a pin and plate assembly oriented such that the assembly forms an air gap. 10. A delayed coking drum according to claim 9 in which the assembly is applied in the lower, conical section of the drum. 11. A delayed coking drum according to claim 9 in which the assembly is applied in the lower cylindrical section of the drum. 12. A delayed coking drum according to claim 11 in which the refractory lining is applied in the upper cylindrical section of the drum. 13. A delayed coking process comprising: heating a heavy oil feed in a furnace to a temperature at which thermal cracking is initiated, introducing the heated feed into a delayed coking drum, the delayed coking drum consisting of an inner surface, a top ellipsoidal or hemispherical head with a vapor outlet at the top, a bottom conical head with an outlet for coke product and a feed inlet at/near the bottom, and a vertical cylindrical section, wherein a shock-resistant and erosion-resistant internal lining is applied to the inner surface of the drum to reduce or minimize a transient thermal stress that occurs in the drum during portions of a coking cycle when the thermal stresses arise, wherein the internal lining is a refractory lining containing one of a refractory aggregate having a thermal expansion rate whereby the refractory lining delays transfer of heat from inside the drum during the coking cycle to the drum, and an aggregate that matches thermal expansion of the drum, wherein the refractory lining containing one of a refractory aggregate having a thermal expansion rate and an aggregate that matches the thermal expansion of the drum forms a thermal barrier that delays transfer of heat from inside the drum during the coking cycle to the drum; coking the heated feed in the drum to produce thermally cracked hydrocarbon vapors and a coke product; purging cracked products remaining in the drum with steam; quenching the coke in the drum with water; and discharging the quenched coke through the coke outlet. 14. A delayed coking process according to claim 13 in which the heavy oil feed is preheated to a temperature to bring the oil into a pumpable condition in which it is fed into the furnace. 15. A delayed coking process according to claim 13 in which the preheated heavy oil feed is heated in the furnace to a temperature in the range of 380 to 525° C. 16. A delayed coking process according to claim 13 in which the heavy oil feed is heated to promote coking in the coke drum at a pressure ranging from 1 to 6 bar. 17. A delayed coking process according to claim 13 in which the refractory lining comprises a rammed refractory secured by means of anchors attached to the inner surface of the drum. 18. A delayed coking process according to claim 17 in which the refractory lining comprises a rammed refractory secured by means of a single point anchoring system attached to the inner surface of the drum. 19. A delayed coking process according to claim 18 in which the single point anchoring system is attached to the inner surface of the drum by means of stud welds in which thermal strain is accumulated only across individual welds. 20. A delayed coking process according to claim 13 in which the refractory lining has a thickness of 1.9 to 5 cm. 21. A delayed coking process according to claim 13 in which the refractory lining comprises an air-setting rammed refractory. 22. A delayed coking process according to claim 13 in which the refractory lining comprises discrete sections that are capable of passing through the coke product outlet. 23. A delayed coking process in which a heavy oil feed is heated in a furnace to a temperature at which thermal cracking is initiated comprising, introducing the heated feed into a delayed coking drum, the delayed coking drum consisting of an inner surface, a top ellipsoidal or hemispherical head with a vapor outlet at the top, a bottom conical head with an outlet for coke product and a feed inlet at/near the bottom, and a vertical cylindrical section, wherein a shock-resistant and erosion-resistant internal lining is applied to the inner surface of the drum to reduce or minimize a transient thermal stress that occurs in the drum during portions of a coking cycle when the thermal stresses arise, wherein the internal lining is a refractory lining containing one of a refractory aggregate having a thermal expansion rate whereby the refractory lining delays transfer of heat from inside the drum during the coking cycle to the drum, and an aggregate that matches thermal expansion of the drum, wherein the refractory lining containing one of a refractory aggregate having a thermal expansion rate and an aggregate that matches the thermal expansion of the drum forms a thermal barrier that delays transfer of heat from inside the drum during the coking cycle to the drum; coking the heated feed in the drum to produce thermally cracked hydrocarbon vapors and a coke product; purging cracked products remaining in the drum with steam; quenching the coke in the drum with water; and discharging the quenched coke through the c

Assignees

Inventors

Classifications

  • C10G9/18Primary

    Apparatus · CPC title

  • Coking mineral oils, bitumen, tar, and the like or mixtures thereof with solid carbonaceous material (cracking oils C10G) · CPC title

  • Preventing incrustations · CPC title

  • Retorts · CPC title

  • C10B1/04Primary

    Vertical retorts · CPC title

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What does patent US10047298B2 cover?
A delayed coking unit has a thermal shock-resistant, erosion-resistant internal lining to reduce thermally-induced mechanical stresses in the pressure boundary of the coke drum. The lining is effective to reduce or mitigate the transient thermal stress that occurs in the pressure boundary of the coke drum and to reduce or minimize the high thermal stress resulting from temperature differentials…
Who is the assignee on this patent?
Hinson Christopher S, Fowler Christopher John, Sinclair David Scott, and 4 more
What technology area does this patent fall under?
Primary CPC classification C10G9/18. Mapped technology areas include Chemistry & Metallurgy.
When was this patent published?
Publication date Tue Aug 14 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).