IP Library › Granted Patent US 12,734,531
Granted Patent B2
US 12,734,531 · App. 18/689,546 · Granted Sep 15, 2026

Apparatus and process for separating components of a multiphase hydrocarbon stream

Inventors: Wolfgang Hofer (Vienna, AT); Andreas Lechleitner (Vienna, AT); Martina Baroncelli (Munich, DE)
Assignee: OMV DOWNSTREAM GMBH
B04C5/103B01D21/2416B01D21/267B04C5/04B04C5/181B04C5/20B29B17/04B01D21/2411B29B2017/0496
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,734,531
App. No.
18/689,546
Granted
Sep 15, 2026
Kind
B2
Abstract

An apparatus and a process enable separating components of a multiphase hydrocarbon stream. The apparatus may include an outer vessel having a top end with a top outlet and a bottom end with a bottom outlet, with a longitudinal axis extending between the top end and the bottom end. An outer vessel body disposed between the top end and the bottom end has an outer vessel internal volume in fluid communication with the top outlet and the bottom outlet. The outer vessel body may include a first section with a tangential inlet arranged to introduce the multiphase hydrocarbon stream tangentially into the outer vessel internal volume to create a vortex flow, and a second section arranged closer to the bottom end than the first section. The outer vessel internal volume has a smaller cross-sectional circumference in the second section than in the first section. An inner vessel disposed within the outer vessel body includes an inner vessel body having an inner vessel internal volume, and an inner bottom inlet oriented toward the bottom end of the outer vessel and in fluid communication with the inner vessel internal volume and with the outer vessel internal volume. A traversing conduit in fluid communication with the inner vessel internal volume may traverse the outer vessel body.

Claims (30)

1 . An apparatus for separating components of a multiphase hydrocarbon stream, the apparatus comprising:

an outer vessel having a top end comprising a top outlet, a bottom end comprising a bottom outlet, with a longitudinal axis extending between the top end and the bottom end, and an outer vessel body disposed between the top end and the bottom end and having an outer vessel internal volume in fluid communication with the top outlet and the bottom outlet;

wherein the outer vessel body comprises:

a first section comprising a tangential inlet arranged to introduce the multiphase hydrocarbon stream tangentially into the outer vessel internal volume to create a vortex flow, and

a second section arranged closer to the bottom end than the first section, wherein the outer vessel internal volume has a smaller cross-sectional circumference in the second section than in the first section;

an inner vessel disposed within the outer vessel body, said inner vessel comprising:

an inner vessel body having an inner vessel internal volume, and

an inner bottom inlet oriented toward the bottom end of the outer vessel and in fluid communication with the inner vessel internal volume and with the outer vessel internal volume, and

an inner top outlet oriented toward the top end of the outer vessel and in fluid communication with the outer vessel internal volume and the inner vessel internal volume; and

a traversing conduit in fluid communication with the inner vessel internal volume and traversing the outer vessel body, so that a product stream can be conveyed from the inner vessel internal volume outside of the outer vessel, wherein the traversing conduit traverses the outer vessel body at a position that is further down along the longitudinal axis than the inner top outlet of the inner vessel.

2 . The apparatus according to claim 1 , wherein a ratio of the cross-sectional circumference of the outer vessel internal volume in the second section to the cross-sectional circumference of the outer vessel internal volume in the first section is between 0.05 and 0.95.

3 . The apparatus according to claim 1 , wherein the apparatus further comprises a cooling system fluidly connected to the top outlet, wherein the cooling system is adapted to condense a part of a vapor product exiting the outer vessel internal volume via the top outlet and convey the condensed part of the vapor product back into the outer vessel internal volume.

4 . The apparatus according to claim 1 , wherein the outer vessel internal volume in the first section and/or in the second section is substantially cylindrical or substantially frustoconical.

5 . The apparatus according to claim 1 , wherein the first section comprises a second tangential inlet arranged to introduce the multiphase hydrocarbon stream tangentially into the outer vessel internal volume to create a vortex flow.

6 . The apparatus according to claim 1 , wherein the second section comprises a lower tangential inlet arranged to introduce a stream tangentially into the outer vessel internal volume.

7 . The apparatus according to claim 1 , wherein the inner vessel comprises a barrier arranged between the inner top outlet and the top end of the outer vessel, wherein said barrier is arranged to at least partially block solids from entering the inner vessel internal volume via the inner top outlet but allow fluids to exit the inner vessel internal volume via the inner top outlet.

8 . A process for separating components of a multiphase hydrocarbon stream in an apparatus according to claim 1 , the process comprising the steps of:

introducing the multiphase hydrocarbon stream via the tangential inlet into the outer vessel internal volume to create a vortex flow, whereby a vapor product is separated from the hydrocarbon stream and conveyed to the top outlet;

recovering said vapor product from the top outlet;

conveying the hydrocarbon stream from the first section to the second section, thereby increasing a tangential velocity of the vortex flow, wherein the hydrocarbon stream is separated into a solid-enriched product stream and a solid-reduced product stream, wherein the solid-enriched product stream is conveyed to the bottom outlet;

recovering the solid-enriched product stream from the bottom outlet;

conveying the solid-reduced product stream to the inner vessel internal volume via the inner bottom inlet; and

recovering the solid-reduced product stream from the inner vessel internal volume via the traversing conduit.

9 . The process according to claim 8 , wherein the process further comprises the step of condensing a part of the vapor product exiting the outer vessel internal volume via the top outlet and conveying the condensed part of the vapor product back into the outer vessel internal volume.

10 . The process according to claim 9 , wherein said condensing is achieved by spraying a fluid onto the vapor product, wherein a temperature of said fluid is lower than a temperature of the vapor product.

11 . The process according to claim 10 , wherein said fluid is obtained by condensing and recycling a part of the recovered vapor product.

12 . The process according to claim 8 , wherein a temperature of the multiphase hydrocarbon stream at the tangential inlet is between 300° C. and 480° C.

13 . The process according to claim 8 , wherein the multiphase hydrocarbon stream is obtained from depolymerization of plastic materials.

14 . The process according to claim 13 , wherein the plastic materials comprise polyolefins.

15 . The process according to claim 8 , wherein the multiphase hydrocarbon stream comprises impurities selected from aluminum powder and/or organophosphorous compounds.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 6, 2024
From: HOFER, WOLFGANG; LECHLEITNER, ANDREAS; BARONCELLI, MARTINA
To: OMV DOWNSTREAM GMBH
Reel/Frame 066667/0735 →
Priority Claims (1)
EP 21195298 · Sep 7, 2021 · regional
Continuity (1)
Related Publication 20240375127A1 · Nov 14, 2024
References Cited (15)
US 2776931A · Chaney · 1957 [cited by applicant]
US 2927890A · Metrailer · 1960 [cited by applicant]
US 3885933A · Putney · 1975 [cited by examiner]
US 4749490A · Smyth et al. · 1988 [cited by applicant]
US 4778494A · Patterson · 1988 [cited by applicant]
US 6019825A · Greene et al. · 2000 [cited by applicant]
US 8114283B2 · Parkinson · 2012 [cited by examiner]
US 9861921B2 · Hemstock · 2018 [cited by examiner]
US 20140151290A1 · Ford · 2014 [cited by examiner]
US 20180326326A1 · Opawale · 2018 [cited by examiner]
DE 1255082B · 1967 [cited by applicant]
WO 2020168062A1 · 2020 [cited by applicant]
European Search Report dated Feb. 25, 2022 issued in European Patent Application No. 21195298.1, 10 pp. [cited by applicant]
International Search Report dated Dec. 21, 2022 issued in PCT International Patent Application No. PCT/EP2022/074673, 2 pp. [cited by applicant]
Indian Office Action dated May 14, 2026 issued in Indian Patent Application No. 202417001381, 7 pp. [cited by applicant]