IP Library Granted Patent US 10,895,544
Granted Patent B2
US 10,895,544 · App. 15/503,569 · Granted Jan 19, 2021

Measurement of liquid parameters using a microfluidic device

Inventors: Shahnawaz Hossain Molla (Watertown, MA); Farshid Mostowfi (Lexington, MA); John Ratulowski (Cambridge, MA)
Assignee: SCHLUMBERGER TECHNOLOGY CORPORATION
G01N25/02B81B1/00G01N21/03G01N21/05G01N21/25G01N21/253G01N25/66G01N33/2823B81B2201/058B81B2203/0338G01N2021/0346G01N2021/0378G01N2021/0382
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Quick Facts
Patent No.
US 10,895,544
App. No.
15/503,569
Granted
Jan 19, 2021
Kind
B2
Abstract

A microfluidic apparatus has a microchannel that includes at least one vertically oriented segment with a top section having a relatively wide opening and a bottom section having a relatively narrow opening. The top section is larger in volume relative to the bottom sections, and the middle sections taper down in at least one dimension from the top section to the bottom section. One or tens or hundreds of vertically-oriented segments may be provided, and they are fluidly coupled to each other. Each segment acts as a pressure-volume-temperature (PVT) cell, and the microchannel apparatus may be used to determine a parameter of a fluid containing hydrocarbons such as the dew point of the fluid or the liquid drop-out as a function of pressure.

Claims (39)

1. A microfluidic apparatus for measuring a parameter of a fluid containing hydrocarbons, comprising:

a microchannel including at least one vertically-oriented segment, each segment having:

a wide section having a first opening;

a non-tapered narrow section having a second opening; and

a tapered section between the wide and non-tapered narrow sections, the tapered section tapering down in at least one dimension from the wide section to the non-tapered narrow section, wherein the first opening is wider than the second opening, and the wide section is larger in volume relative to the non-tapered narrow section,

wherein the at least one segment comprises at least two segments arranged in series or wherein the at least one segment comprises at least two segments arranged in parallel with the wide sections of all of the segments coupled by a first fluid line, and the non-tapered narrow sections of all of the segments coupled by a second fluid line.

2. A microfluidic apparatus according to claim 1 , wherein the microchannel is etched in silicon, glass, metal, sapphire, or ceramic and sealed closed by a cover, leaving an inlet and an outlet.

3. A microfluidic apparatus according to claim 1 , wherein the at least one segment comprises at least ten segments.

4. A microfluidic apparatus according to claim 3 , wherein the at least one segment comprises at least one hundred segments.

5. A microfluidic apparatus according to claim 1 , wherein each non-tapered narrow section has at least one dimension of 10 microns.

6. A microfluidic apparatus according to claim 1 , wherein each non-tapered narrow section is sized to draw fluid from a respective tapered section by capillary action.

7. A microfluidic apparatus according to claim 1 , further comprising a temperature-controlled enclosure in which the microchannel is located.

8. A microfluidic apparatus according to claim 1 , further comprising:

a light source arranged to illuminate at least the non-tapered narrow section of the at least one microchannel segment;

a light sensor arranged to sense light which is at least one of reflected from and transmitted through the non-tapered narrow section of the at least one microchannel segment; and

a computer coupled to the light sensor for identifying a parameter of fluid in the microchannel based on information received from the light sensor.

9. A microfluidic apparatus according to claim 8 , further comprising a first pressure sensor coupled to an inlet of the microchannel.

10. A microfluidic apparatus according to claim 9 , further comprising a second pressure sensor coupled to an outlet of the microchannel.

11. A microfluidic apparatus according to claim 1 , further comprising:

a sensor arranged to sense fluid in the non-tapered narrow section of the least one microchannel segment; and

a computer coupled to the sensor for identifying a parameter of the fluid in the microchannel based on information received from the sensor.

12. A microfluidic apparatus according to claim 11 , wherein the sensor comprises at least one of a capacitive/impedance sensor, an acoustic sensor, and a piezoelectric sensor.

13. A method of a measuring a parameter of a fluid containing hydrocarbons, comprising:

introducing the fluid into a microchannel including at least one vertically-oriented segment, each segment having:

a wide section having a first opening,

a non-tapered narrow section having a second opening, and

a tapered section between the wide and non-tapered narrow sections, the tapered section tapering down from the wide section to the non-tapered narrow section, wherein the first opening is wider than the second opening, and the wide section is larger in volume relative to the non-tapered narrow section, wherein the at least one segment comprises at least two segments arranged in series or wherein the at least one segment comprises at least two segments arranged in parallel with the wide sections of all of the segments coupled by a first fluid line, and the non-tapered narrow sections of all of the segments coupled by a second fluid line;

modifying at least one of a pressure and a temperature of the fluid in the microchannel;

monitoring the microchannel to identify a change of state of fluid in the microchannel; and

measuring a parameter of the fluid based on the change of state.

14. A method according to claim 13 , wherein the parameter is a dew point of the fluid.

15. A method according to claim 13 , wherein the parameter is a liquid drop-out as a function of pressure.

16. A method according to claim 13 , wherein the monitoring comprises:

illuminating at least the non-tapered narrow section of the at least one microchannel segment;

sensing light which is at least one of reflected from and transmitted through the non-tapered narrow section of the microchannel segment; and

identifying a parameter of the fluid in the microchannel based on information received from the light sensor.

17. A method according to claim 16 , wherein the parameter is a liquid drop-out as a function of pressure, and the method further comprises plotting the liquid drop-out as a function of pressure.

18. A method according to claim 16 , wherein the parameter is a dew point of the fluid, and the modifying comprises reducing the pressure on the fluid in the microchannel at least until liquid is identified.

19. A method according to claim 18 , further comprising increasing the pressure in the microchannel to find a pressure at which the liquid disappears.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 21, 2017
From: MOLLA, SHAHNAWAZ HOSSAIN; MOSTOWFI, FARSHID; RATULOWSKI, JOHN
To: SCHLUMBERGER TECHNOLOGY CORPORATION
Reel/Frame 041651/0826 →
Continuity (2)
Provisional Application 62040130 · Aug 21, 2014
Related Publication 20170227479A1 · Aug 10, 2017
Cited By (2)
US 12,355,123 US 12,722,155