IP Library Granted Patent US 11,377,401
Granted Patent B2
US 11,377,401 · App. 16/514,491 · Granted Jul 5, 2022

Efficiency of a gas conditioning system via hydrate inhibitor injection

Inventor: Paul W. Sibal (The Woodlands, TX)
Assignee: ExxonMobil Technology and Engineering Company
C07C7/005B01D53/002B01D53/1456B01D53/64C07C7/11C07C7/20B01D2257/602B01D2257/80
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Quick Facts
Patent No.
US 11,377,401
App. No.
16/514,491
Granted
Jul 5, 2022
Kind
B2
Abstract

A gas conditioning system is described herein. The system includes a slug catcher configured to separate a hydrocarbon feed stream into a liquid stream and a gas stream, and a first hydrate inhibitor injection unit configured to lower a hydrate formation temperature of the gas stream using a first hydrate inhibitor. The system includes a pressure reduction unit, a first separation unit configured to remove a first liquid stream including the first hydrate inhibitor from the gas stream, a mercury removal unit, and an acid gas removal unit. The system also includes a second hydrate inhibitor injection unit configured to further lower the hydrate formation temperature of the gas stream using a second hydrate inhibitor, a cooling unit, a second separation unit configured to remove a second liquid stream including the second hydrate inhibitor from the gas stream, and a dehydration unit configured to produce a final treated gas stream.

Claims (24)

1. A method for improving the efficiency of a gas conditioning system via hydrate inhibitor injection, comprising:

separating a hydrocarbon feed stream into a liquid stream and a first gas stream within a slug catcher;

injecting a first hydrate inhibitor into the first gas stream within a first hydrate inhibitor injection unit, thereby producing a second gas stream of the first gas stream and the first hydrate inhibitor, such that a hydrate formation temperature of the first gas stream is altered from a first hydrate formation temperature to a second, lowered hydrate formation temperature for the second gas stream;

reducing a pressure of the second gas stream within a pressure reduction unit, thereby producing a third gas stream, and transporting the third gas stream from the pressure reduction unit to a first separation unit;

removing a first liquid stream comprising condensed water combined with the first hydrate inhibitor and condensed hydrocarbons from the third gas stream within the first separation unit, thereby producing a fourth gas stream, and transporting the fourth gas stream to a mercury removal unit;

removing mercury from the fourth gas stream within the mercury removal unit, thereby producing a fifth gas stream, and transporting fifth the gas stream to an acid gas removal unit;

removing acid gases from the fifth gas stream within the acid gas removal unit, thereby producing a sixth gas stream, and transporting the sixth gas stream to a second hydrate inhibitor injection unit;

injecting a second hydrate inhibitor into the sixth gas stream within the second hydrate inhibitor injection unit, thereby producing a seventh gas stream, such that the hydrate formation temperature of the sixth gas stream is altered from a third hydrate formation temperature to a fourth, lowered hydrate formation temperature for the seventh gas stream, and transporting the seventh gas stream to a cooling unit;

reducing a temperature of the seventh gas stream within the cooling unit, thereby obtaining an eighth gas stream, and transporting the eighth gas stream to a second separation unit;

removing a second liquid stream comprising additional condensed water combined with the second hydrate inhibitor and additional condensed hydrocarbons from the eighth gas stream within the second separation unit, thereby producing a ninth gas stream, and transporting the ninth gas stream to a dehydration unit; and

removing residual water from the ninth gas stream within the dehydration unit, producing a final treated gas stream.

2. The method of claim 1 , comprising:

transporting the first liquid stream and the second liquid stream to a gas/liquid/liquid separation unit;

separating the first liquid stream and the second liquid stream into (i) a liquid hydrocarbon stream comprising the condensed hydrocarbons and the additional condensed hydrocarbons, (ii) a rich hydrate inhibitor stream comprising the first hydrate inhibitor, the second hydrate inhibitor, the condensed water, and the additional condensed water, and (iii) a first off gas stream within the gas/liquid/liquid separation unit;

transporting the rich hydrate inhibitor stream to a hydrate inhibitor regeneration unit; and

producing a regenerated hydrate inhibitor stream from the rich hydrate inhibitor stream within the hydrate inhibitor regeneration unit; and

reusing at least a portion of the regenerated hydrate inhibitor stream within the first hydrate inhibitor injection unit and the second hydrate inhibitor injection unit.

3. The method of claim 2 , comprising:

transporting the liquid hydrocarbon stream to a condensate stabilizer;

separating the liquid hydrocarbon stream into a second off gas stream and a liquid stream comprising field condensate within the condensate stabilizer; and

flowing the first off gas stream and the second off gas stream back into the gas conditioning system upstream of the mercury removal unit.

4. The method of claim 1 , wherein the first hydrate inhibitor and the second hydrate inhibitor comprise monoethylene glycol (MEG), diethylene glycol (DEG), or triethylene glycol (TEG).

5. The method of claim 1 , wherein the first hydrate inhibitor injection unit and the second hydrate inhibitor injection unit comprise co-current contactors, ball misters, static mixers, or spray nozzles.

6. The method of claim 1 , comprising: flowing the final treated gas stream to a gas processing facility located downstream of the gas conditioning system; and producing LNG or recovering NGLs from the final treated gas stream within the gas processing facility.

Assignments (2)
MERGER Recorded May 26, 2023
From: EXXONMOBIL UPSTREAM RESEARCH COMPANY
To: EXXONMOBIL TECHNOLOGY AND ENGINEERING COMPANY
Reel/Frame 063772/0047 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 23, 2022
From: SIBAL, PAUL W.
To: EXXONMOBIL UPSTREAM RESEARCH COMPANY
Reel/Frame 059380/0946 →
Continuity (2)
Provisional Application 62717410 · Aug 10, 2018
Related Publication 20200048168A1 · Feb 13, 2020
Cited By (1)
US 12,704,076