IP Library › Granted Patent US 10,352,505
Granted Patent B2
US 10,352,505 · App. 15/269,328 · Granted Jul 16, 2019

Method and apparatus for real time enhancing of the operation of a fluid transport pipeline

Inventors: Keith C. McDowell (Montgomery, TX); Jacques A. Cibils (Houston, TX)
Assignee: ExxonMobil Research and Engineering Company
F17D5/06G01M3/2815Y10T137/0318Y10T137/0452
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Quick Facts
Patent No.
US 10,352,505
App. No.
15/269,328
Granted
Jul 16, 2019
Kind
B2
Abstract

A real time method and dynamic logic-based system for enhancing the operation of a pipeline network is disclosed. The system and method perform monitoring of the operation of a pipeline network, generate alarms in response to differing levels of destabilized pipeline operations, manage the generation of alarms based upon known operating events and operating conditions, diagnose potential source of the detected destabilized events and manage the operation of the pipeline.

Claims (43)

1. A method of real time monitoring a pipeline network in a transport state to identify possible destabilizing events in the pipeline network, comprising:

establishing a normal fluid driver shutdown pressure loss profile for a normal fluid driver shutdown in the pipeline network;

deenergizing a fluid driver within the pipeline network;

sensing one or more pressure waves within the pipeline network at predetermined locations within the pipeline network;

using high speed chronological monitoring, determining that the deenergizing occurred after the one or more pressure waves was sensed;

establishing a pressure loss profile for the sensed one or more pressure waves and subsequent deenergizing;

integrating an area under the pressure loss profile for the sensed one or more pressure waves and subsequent deenergizing;

comparing the area under the pressure loss profile for the sensed one or more pressure waves and subsequent deenergizing to an area under the normal fluid driver shutdown pressure loss profile for a normal fluid driver shutdown;

generating an alarm when the area under the pressure loss profile for the sensed one or more pressure waves and subsequent deenergizing is less than an acceptable area.

2. The method according to claim 1 , wherein the normal fluid driver shutdown pressure loss profile is an empirically determined pressure loss profile.

3. The method according to claim 1 , wherein the normal fluid driver shutdown pressure loss profile for a normal fluid driver shutdown is automatically adjusted based upon at least one of a current operating mode, current operating conditions and current operating events.

4. The method of monitoring a pipeline network according to claim 1 , further comprising:

determining a location of the possible destabilizing event in the pipeline network in response to the sensed pressure waves.

5. The method according to claim 1 , wherein the high-speed chronological monitoring includes monitoring pressures in pipeline network a frequencies greater than every 500 ms.

6. The method according to claim 5 , wherein the high-speed chronological monitoring includes monitoring pressures in pipeline network a frequencies greater than every 100 ms.

7. A method of real time monitoring an idle pipeline network to identify possible destabilizing events in the idle pipeline network, comprising:

establishing a pressure profile for an idle pipeline segment in the pipeline network;

establishing an examination period for the idle pipeline segment;

establishing an integration floor by subtracting a non-discard offset from a current pressure value within the idle pipeline segment;

integrating an area between the current pressure value and the integration floor to establish a minimum required integration area for a subsequent examination period;

integrating the current pressure value and the integration floor for the subsequent examination period;

comparing the two integrated areas to determine whether the integration area between the current pressure value and the integration floor for the subsequent examination period is greater than the minimum required integration area.

8. The method according to claim 7 , wherein the pressure profile is an empirically determined pressure profile.

9. The method according to claim 7 , wherein establishing the pressure profile includes accounting for at least one of temperature variation, valve sealing effectiveness, and entrapped pressure.

10. The method according to claim 7 , wherein the non-discard offset value is determined based on at least one of signal noise, thermally induced pressure changes, valve sealing effectiveness, and operating mode.

11. The method according to claim 7 , wherein the examination period is 30-60 seconds.

12. A method of real time monitoring a pipeline network to identify possible destabilizing events in the pipeline network, comprising:

(a) monitoring the pipeline network in a transporting mode to identify possible destabilizing events in the transporting mode of the pipeline network comprising

establishing a normal fluid driver shutdown pressure loss profile for a normal fluid driver shutdown in the pipeline network,

deenergizing a fluid driver within the pipeline network,

sensing one or more pressure waves within the pipeline network at predetermined locations within the pipeline network,

using high speed chronological monitoring, determining that the deenergizing occurred after the one or more pressure waves was sensed,

establishing a pressure loss profile for the sensed one or more pressure waves and subsequent deenergizing,

integrating an area under the pressure loss profile for the sensed one or more pressure waves and subsequent deenergizing,

comparing the area under the pressure loss profile for the sensed one or more pressure waves and subsequent deenergizing to an area under the normal fluid driver shutdown pressure loss profile for a normal fluid driver shutdown, and

generating an alarm when the area under the pressure loss profile for the sensed one or more pressure waves and subsequent deenergizing is less than an acceptable area; and

(b) monitoring the pipeline network in an idle state to identify possible destabilizing events in the idle pipeline network, comprising:

establishing a pressure profile for an idle pipeline segment in the pipeline network,

establishing an examination period for the idle pipeline segment,

establishing an integration floor by subtracting a non-discard offset from a current pressure value within the idle pipeline segment,

integrating an area between the between current pressure value and the integration floor to establish a minimum required integration area for a subsequent examination period,

integrating the current pressure value and the integration floor for the subsequent examination period,

comparing the two integrated areas to determine whether the integration area between the current pressure value and the integration floor for the subsequent examination period is greater than the minimum required integration area.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 18, 2017
From: MCDOWELL, KEITH C.; CIBILS, JACQUES A.
To: EXXONMOBIL RESEARCH AND ENGINEERING COMPANY
Reel/Frame 041007/0558 →
Continuity (4)
Continuation In Part 14313267 · Jun 24, 2014
Continuation 12492564 · Jun 26, 2009
Provisional Application 61129466 · Jun 27, 2008
Related Publication 20170003200A1 · Jan 5, 2017
Cited By (1)
US 12,659,330