METHOD FOR MEASURING A CONCENTRATION OF A GAS
20190317014 · 2019-10-17
Assignee
Inventors
Cpc classification
G01N21/0303
PHYSICS
B65B31/00
PERFORMING OPERATIONS; TRANSPORTING
G01N21/1717
PHYSICS
International classification
G01N21/17
PHYSICS
Abstract
A method for measuring a concentration of a gas in a container having a wall with at least one deformable portion, the gas absorbing electromagnetic radiation at least in a specific spectral range, wherein the method includes the steps of biasing deformable portion and a further portion of wall opposite deformable portion between opposite positioning surfaces, thereby forming a biased volume of the container between the opposite positioning surfaces, during a measuring time, transmitting electromagnetic radiation into biased volume and receiving transmitted or reflected radiation of transmitted radiation from biased volume along respective radiation paths, relatively moving, during measuring time, at least one of deformable portion and of further portion and at least one of radiation paths, and determining concentration of said gas from the radiation received.
Claims
1. A method for measuring a concentration of a gas in a container having a wall with at least one deformable portion, the gas absorbing electromagnetic radiation at least in a specific spectral range, wherein the method comprises the steps of: biasing said deformable portion and a further portion of said wall opposite said deformable portion between opposite positioning surfaces, thereby forming a biased volume of said container between said opposite positioning surfaces, during a measuring time, transmitting electromagnetic radiation into said biased volume and receiving transmitted or reflected radiation of said transmitted radiation from said biased volume along respective radiation paths, relatively moving, during said measuring time, at least one of said deformable portion and of said further portion and at least one of said radiation paths, and determining said concentration of said gas from the radiation received.
2. The method according to claim 1, wherein said relatively moving is performed in a cyclic movement having a repetition time corresponding to said measuring time or to a fraction of said measuring time.
3. The method according to claim 1, wherein said relatively moving is induced by acting on said wall of said container by means of a manipulating element.
4. The method according to claim 1, wherein said relatively moving is induced by moving a first positioning surface of said opposite positioning surfaces with respect to a second positioning surface of said opposite positioning surfaces, thereby holding the length of the radiation path substantially constant.
5. The method according to claim 1, wherein the step of determining said concentration is based on radiation received at points in time corresponding to different positions of at least one of said deformable portion and said further portion of the wall reached during said movement.
6. The method according to claim 1, wherein said transmitting is performed by an electromagnetic radiation source, in particular a laser, having a spectral bandwidth narrower than said specific spectral range and with a tunable transmitter frequency and wherein said transmitter frequency is periodically swept over said specific spectral range.
7. The method according to claim 1, wherein said step of biasing is performed by filling the container at least partially with a filling gas and thereby increasing a diameter of the container until said diameter extends between said opposite positioning surfaces.
8. The method according to claim 1, wherein said step of biasing is performed by moving at least one of said opposing positioning surfaces towards at least one of said deformable portion and further portion of said wall.
9. The method of producing a sealed container containing a filling gas volume having a concentration of a monitored gas, in particular oxygen, lying in a predetermined concentration range, in particular a concentration below 100 ppm, in particular below 10 ppm, further in particular below 1 ppm, the method comprising: a) providing a filling gas having a concentration of said monitored gas lying in said predetermined concentration range, b) at least once filling a container with said provided filling gas, c) applying the steps of the method according to claim 1 to determine a concentration of said monitored gas, if said concentration lies outside said predetermined concentration range: d) extracting at least a part of said provided filling gas from said container and repeating steps b) and c), or if said concentration lies in said predetermined concentration range: e) sealing the container.
10. The method for producing a sealed container containing a liquid or solid content and a filling gas volume having a concentration of a monitored gas, in particular oxygen, lying in a predetermined concentration range, in particular a concentration below 100 ppm, in particular below 10 ppm, further in particular below 1 ppm, the method comprising filling the liquid or solid content into the container followed by the method according to claim 9.
11. An apparatus for performing the method according to claim 1, wherein the apparatus comprises: a first positioning surface and a second positioning surface of at least a first positioning element, said first and second positioning surfaces defining a space in between them; a transmitter for electromagnetic radiation in said specific spectral range and a detector for electromagnetic radiation in said specific spectral range, said transmitter and said detector being arranged to define a radiation path traversing said space on the way from said transmitter to said detector; an actuator element being mechanically coupled to a manipulating element configured to manipulate at least a part the wall of a container, once a container is inserted between said first and second positioning surfaces, thereby moving a section of said wall of the container relatively to at least one of said radiation paths and across at least one of said radiation paths, said section being adjacent to at least one of said first and second positioning surfaces; a control unit operably connected to said transmitter, to said detector and to said actuator element; an evaluation unit operably connected to said detector and configured to determine a gas concentration based on the electromagnetic radiation received by the detector.
12. The apparatus according to claim 11, wherein said first positioning surface is arranged on said manipulating element, said manipulating element being movable with respect to said second positioning surface, in particular being translatable and/or rotatable and/or pivotable with respect to said second positioning surface.
13. The apparatus according to claim 11, wherein said first and second positioning faces are flat and are arranged substantially parallel to each other.
14. The apparatus according to claim 13, wherein said first positioning element is translatable parallel to said second positioning face.
15. The apparatus according to claim 11, wherein at least one of said first and second positioning faces is rigidly connected to a reflector for said electromagnetic radiation.
16. The apparatus according to claim 11, further comprising a gas-flow introducing device adapted to be connected to an opening of said container and being operable to inflate and deflate the container.
17. A filling facility for filling containers, said container having wall delimiting an inner volume of said container, said wall having at least one deformable portion, the filling facility comprising an apparatus according to claim 11.
Description
[0064] The invention shall now be further exemplified with the help of figures. The figures show:
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[0076] The final step is the determination 105 of the concentration of the gas from the radiation received.
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[0081] In the arrangement in
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[0086] a) providing 201 a filling gas having a concentration of the monitored gas lying in the predetermined concentration range,
[0087] b) at least once filling 202 a container with the provided filling gas,
[0088] c) applying 203 the steps of the method according to the invention or any one of its embodiments to determine a concentration of the monitored gas.
[0089] Then, depending on the determined concentration the decision 210 is made.
[0090] If the concentration lies outside the predetermined concentration range (arrow no), then the step
[0091] d) extracting 204 at least a part of the provided filling gas from the container is performed and steps b) and c) are repeated to arrive at the decision 210 point again.
[0092] If the concentration lies in the predetermined concentration range (arrow yes), the step
[0093] e) sealing 205 the container is performed.
[0094] As result, the sealed container fulfilling the predetermined requirements regarding the gas concentration of the monitored gas is produced.
LIST OF REFERENCE SIGNS
[0095] 1 first positioning surface
[0096] 1 first positioning element
[0097] 2 second positioning surface
[0098] 2 second positioning element
[0099] 3 space between first and second positioning surface
[0100] 4 transmitter
[0101] 5 detector
[0102] 6 radiation path
[0103] 7 gas-flow introducing device
[0104] 8 control unit
[0105] 9 evaluation unit
[0106] 10 apparatus
[0107] 11 reflector
[0108] 12 actuator element
[0109] 13 optical fiber
[0110] 14 transmitter head
[0111] 15 receiver head
[0112] 16 manipulating element
[0113] 17 movement of manipulating element
[0114] 20 container
[0115] 21 first section of wall
[0116] 22 second section of wall
[0117] 23 opening
[0118] 24 movement of section of wall
[0119] 30 electromagnetic radiation
[0120] D1 distance (between first and second positioning face)
[0121] D2 diameter (of the container)
[0122] 100 method (for measuring a concentration of a gas)
[0123] 101, 102, 103, 104, 105 steps of the method
[0124] 110 measuring time
[0125] 200 method (of producing a sealed container)
[0126] 201, 202, 203, 204, 205 steps of the method
[0127] 210 decision