Device for Quantifying The Contents of at Least One Gaseous Constituent Contained in A Gaseous Sample from A Fluid, Related Assembly and Process
Abstract
This device comprises a means ( 111 ) for forming a gaseous flow from the sample, and a means ( 121 ) for separation by means of selective retention each gaseous constituent. It comprises a means ( 113 ) for combustion of the gaseous flow in order to form a gaseous residue from each constituent, and a means ( 115 ) for quantifying the content of each constituent to be analysed in the gaseous flow. The quantification means ( 115 ) comprise an optical measurement cell ( 127 ) which is connected to the combustion means ( 113 ), and a means ( 161 ) for introducing a laser incident optical signal into the cell ( 127 ). The quantification means ( 115 ) also comprise means ( 133 ) for measuring a transmitted optical signal resulting from an interaction between the optical signal and each gaseous residue in the cell ( 127 ), and means ( 125 ) for calculating said content on the basis of the transmitted optical signal.
Claims
exact text as granted — not AI-modified1 .- 16 . (canceled)
17 . A quantifying device for quantifying a content of at least one gaseous constituent contained in a gaseous sample from a fluid, said device comprising:
a formation unit for forming a gaseous flow from the gaseous sample, said formation unit including a separation device for separation by selective retention of each gaseous constituent to be analyzed; an oven for combustion of the gaseous flow, said oven being connected to said separation device to successively form a gaseous residue from each constituent; and a quantification unit for quantifying the content of each constituent to be analyzed in the gaseous residue, said quantification unit including:
an optical measurement cell including a confinement chamber for receiving the gaseous residue from said oven, and a transportation unit for transporting the gaseous residue from said oven to said confinement chamber;
a guide mechanism for guiding a laser incident optical signal into said confinement chamber;
a sensor for measuring a transmitted optical signal resulting from an interaction between the laser incident optical signal introduced into said confinement chamber and the gaseous residue received within said confinement chamber; and
a calculation unit for calculating the content of the gaseous residue based on the transmitted optical signal.
18 . The quantifying device according to claim 17 , wherein said quantification unit further includes a laser device for emitting the laser incident optical signal, said laser device including a wavelength adjustment device for adjusting a wavelength of the emitted laser incident optical signal, said wavelength adjustment device being configured to scan a specific wavelength range for a predetermined period of time;
wherein said guide mechanism includes an introduction device for introducing the laser incident signal into said optical measurement cell, and a transmitting device for transmitting the laser incident signal to said introduction device.
19 . The quantifying device according to claim 18 , wherein said introduction device comprises an adjustment mirror for reflecting the laser incident optical signal toward said confinement chamber and adjusting an angle of the laser incident optical signal relative to a longitudinal axis of said confinement chamber, and said transmitting device comprises a deflection mirror for reflecting the laser incident optical signal toward said adjustment mirror.
20 . The quantifying device according to claim 17 , wherein said confinement chamber includes:
at least two mirrors delimiting said confinement chamber; wherein said guide mechanism includes an introduction device for introducing the laser incident signal into said confinement chamber.
21 . The quantifying device according to claim 20 , wherein at least one of said at least two mirrors has a reflectivity of less than 100%, said sensor being arranged at a rear position of said at least one of said at least two mirrors and outside of said optical cavity.
22 . The quantifying device according to claim 20 , wherein said at least two mirrors are arranged opposite to each other along a longitudinal axis of said optical cavity.
23 . The quantifying device according to claim 22 , wherein said at least two mirrors have reflective surfaces arranged along said longitudinal axis of said optical cavity, wherein said introduction device is configured to generate a plurality of reflections of the laser incident optical signal in at least two separate points on each of said at least two mirrors during travel of the laser incident optical signal in said optical cavity so as to create at least two separate optical signal segments in said optical cavity.
24 . The quantifying device according to claim 23 , wherein said introduction device is configured to be adjustably inclined so as to incline the laser incident optical signal to be introduced into said optical cavity relative to said longitudinal axis of said optical cavity.
25 . The quantifying device according to claim 17 , wherein said separation device comprises a gas-phase chromatograph.
26 . An assembly for analyzing at least one gaseous constituent contained in a petroleum fluid, said assembly comprising:
a sampling unit for sampling the petroleum fluid; an extraction device for extracting a gaseous sample from the petroleum fluid, said extraction device being connected to said sampling unit; and a quantifying device for quantifying a content of at least one gaseous constituent contained in a gaseous sample from a fluid, said device comprising:
a formation unit for forming a gaseous flow from the gaseous sample, said formation unit including a separation device for separation by selective retention of each gaseous constituent to be analyzed;
an oven for combustion of the gaseous flow, said oven being connected to said separation device to successively form a gaseous residue from each constituent; and a quantification unit for quantifying the content of each constituent to be analyzed in the gaseous residue, said quantification unit including:
an optical measurement cell including a confinement chamber for receiving the gaseous residue from said oven, and a transportation unit for transporting the gaseous residue from said oven to said confinement chamber;
a guide mechanism for guiding a laser incident optical signal into said confinement chamber;
a sensor for measuring a transmitted optical signal resulting from an interaction between the laser incident optical signal introduced into said confinement chamber and the gaseous residue received within said confinement chamber; and
a calculation unit for calculating the content of the gaseous residue based on the transmitted optical signal, said extraction device being connected to said formation unit of said quantifying device.
27 . A method of quantifying a content of at least one gaseous constituent contained in a gaseous sample from a fluid, said method comprising:
forming a gaseous flow from the sample, said forming comprising a separation phase by selective retention of each gaseous constituent to be analyzed; combustion of the gaseous flow from said separation phase within an oven in order to successively form a gaseous residue from each constituent; and quantification of the content of each constituent to be analyzed in the gaseous flow, said quantification including:
introduction of the gaseous residue formed in said combustion into a confinement chamber of an optical measurement cell by transporting the gaseous residue from the oven to the confinement chamber via a transportation unit;
introduction of a laser incident optical signal into the confinement chamber for each gaseous residue successively introduced into the confinement chamber;
measurement of a transmitted optical signal resulting from an interaction between the laser incident optical signal and each gaseous residue successively introduced into the confinement chamber; and
calculation of the content of each gaseous residue successively introduced into the confinement chamber based on the transmitted optical signal.
28 . The method according to claim 27 , wherein said quantification further includes emitting a substantially monochromatic laser incident optical signal, and optically transmitting the laser incident optical signal to the confinement chamber and introducing the laser incident optical signal into the confinement chamber, said emitting comprising adjustment of a wavelength of the emitted laser incident optical signal and scanning of a specific wavelength range for a predetermined period of time.
29 . The method according to claim 27 , wherein said introduction of the gaseous residue into the confinement chamber comprises transporting the gaseous residue into an optical cavity delimited by at least two mirrors, and said introduction of the laser incident optical signal into the confinement chamber comprises injecting the laser incident optical signal into the optical cavity.
30 . The method according to claim 29 , wherein the at least two mirrors are arranged opposite to each other.
31 . The method according to claim 29 , wherein at least a first one of the at least two mirrors has a reflectivity of less than 100%, said measurement being performed at a location at a rear of the first one of the at least two mirrors and outside of the optical cavity.
32 . The method according to claim 29 , wherein the at least two mirrors have reflective surfaces arranged coaxially on a longitudinal axis of the optical cavity,
said introduction of the laser incident optical signal comprising generating a plurality of reflections of the laser incident optical signal in at least two separate points on each of the at least two mirrors during travel of the laser incident optical signal in the optical cavity so as to create at least two separate optical signal segments in the optical cavity.
33 . The method according to claim 32 , wherein said generating a plurality of reflections comprises inclining a laser incident optical signal introduced into the optical cavity relative to the a longitudinal axis of the optical cavity.Join the waitlist — get patent alerts
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