IP Library Granted Patent US 10,168,255
Granted Patent B1
US 10,168,255 · App. 16/003,250 · Granted Jan 1, 2019

System, method, and apparatus for determining air emissions during pig receiver depressurization

Inventor: David Johnsen (Denver, CO)
Assignee: MARKWEST ENERGY PARTNERS, L.P.
G01N1/2247F16L55/46G01N33/225G01N2001/2238
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Quick Facts
Patent No.
US 10,168,255
App. No.
16/003,250
Granted
Jan 1, 2019
Kind
B1
Abstract

System, method, and apparatus embodiments characterize potential air emissions during the pig receiver depressurization. The mass flow rate, pressure, and temperature of exhaust gas released from the pig receiver are ascertained using a mass flow meter, pressure gauge, and temperature gauge, respectively. A flow meter and control valve regulate flow of exhaust gas through a sampling line and into a grab sample collection train. The grab sample collection train includes grab sample containers (e.g., piston cylinders, double-ended cylinders, and evacuated canisters) that collect exhaust gas samples over a range of pressures. The exhaust gas samples are used to determine the concentrations of gas components in the exhaust gas over the range of pressures. These concentrations are interpolated and/or extrapolated to provide a concentration versus pressure curve for each identified component in the exhaust gas. The ascertained mass flow rate and gas concentration curve are used to characterize potential mass emissions of each gas component during pig receiver depressurization.

Claims (35)

1. A method to characterize emissions during pig receiver depressurization, the method comprising:

isolating pressurized gas flow between a pipeline and a pig receiver, the pig receiver having a receiver barrel and a pig disposed therein;

controlling a valve to release pressurized gas from the pig receiver as exhaust gas into an exhaust gas line that is in fluid communication with the pig receiver;

ascertaining mass flow rate and exhaust pressure of the exhaust gas, the exhaust gas line having a slip stream in fluid communication therewith;

obtaining a plurality of exhaust gas samples from the slip stream over a range of different exhaust pressures;

measuring sampling time periods for each of the plurality of exhaust gas samples;

measuring elapsed times from when pressurized gas is first released from the pig receiver to when each of the plurality of exhaust gas samples is obtained;

analyzing each of the plurality of exhaust gas samples after supplied to and with one or more gas analyzers to identify a plurality of gas components; and

determining a percentage of each gas component identified in each of the plurality of exhaust gas samples.

2. The method of claim 1 , wherein

each of the plurality of exhaust gas samples has associated therewith the mass flow rate and exhaust pressure ascertained during its sampling time period.

3. The method of claim 2 , further comprising:

determining, for each of the plurality of exhaust gas samples, a component mass flow rate for each gas component identified by multiplying the percentage of each gas component in a particular exhaust gas sample by the mass flow rate associated with that particular exhaust gas sample.

4. The method of claim 2 , further comprising:

determining, for a particular gas component, the component mass flow for each of the plurality of exhaust gas samples by multiplying the mass flow rate by the sampling time period associated with each exhaust gas sample;

plotting, for the particular gas component, each of the component mass flows versus the elapsed times for each exhaust gas sample;

fitting a curve to the plotted component mass flows versus the elapsed times; and

determining the area under the curve over a total elapsed time for pig receiver depressurization as the total component mass flow for the particular gas component during pig receiver depressurization.

5. A method to characterize emissions during pig receiver depressurization, the method comprising:

isolating pressurized gas flow between a pipeline and a pig receiver when a pig is disposed within the pig receiver;

releasing pressurized gas from the pig receiver as exhaust gas;

ascertaining mass flow rate and exhaust pressure of the exhaust gas;

obtaining a plurality of exhaust gas samples over a range of different exhaust pressures;

measuring sampling time periods for each of the plurality of exhaust gas samples;

measuring elapsed times from when pressurized gas is first released from the the pig receiver to when each of the plurality of exhaust gas samples is obtained,

analyzing each of the plurality of exhaust gas samples after supplied to and with one or more gas analyzers to identify a plurality of gas components; and

determining a percentage of each gas component identified in each of the plurality of exhaust gas samples.

6. The method of claim 5 , wherein each of the plurality of exhaust gas samples has associated therewith the mass flow rate and exhaust pressure ascertained during its sampling time period.

7. The method of claim 6 , further comprising:

determining, for each of the plurality of exhaust gas samples, a component mass flow rate for each gas component identified by multiplying the percentage of each gas component in a particular exhaust gas sample by the mass flow rate associated with that particular exhaust gas sample.

8. The method of claim 6 , further comprising:

determining, for a particular gas component, the component mass flow for each of the plurality of exhaust gas samples by multiplying the mass flow rate by the sampling time period associated with each exhaust gas sample;

plotting, for the particular gas component, each of the component mass flows versus the elapsed times for each exhaust gas sample;

fitting a curve to the plotted component mass flows versus the elapsed times; and

determining the area under the curve over a total elapsed time for pig receiver depressurization as the total component mass flow for the particular gas component during pig receiver depressurization.

Assignments (2)
CHANGE OF NAME Recorded Jan 8, 2026
From: MARKWEST ENERGY PARTNERS, L.P.
To: MARKWEST ENERGY PARTNERS LLC
Reel/Frame 074289/0388 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 8, 2018
From: JOHNSEN, DAVID
To: MARKWEST ENERGY PARTNERS, L.P.
Reel/Frame 046024/0426 →
Continuity (3)
Division 15626109 · Jun 17, 2017
Provisional Application 62351852 · Jun 17, 2016
Provisional Application 62412575 · Oct 25, 2016
Cited By (12)
US 12,195,158 US 12,195,861 US 12,203,401 US 12,203,598 US 12,297,965 US 12,359,403 US 12,384,508 US 12,485,389 US 12,546,245 US 12,597,151 US 12,709,808 US 12,716,379