Title of Invention

ON-LINE OPTICAL ANALYSIS OF A SUBSTANCE THROUGH A CONDUIT SECTION OF A PROCESS LINE .

Abstract A conduit-mounted light-transmitting device (10) for allowing optical analysis of a substance through a process line conduit (14) made of a light-transmitting material. The device(10) comprises a clip (24) adapted to be detachably secured about the conduit section. The clip (24) defines an optical path intersecting the conduit section when the clip (24) is mounted thereon.
Full Text A NON-INTERUSIVE DEVICE FOR ALLOWING SPECTRUM ANALYSIS
OF A CONFINED PROCESS STREAM THROUGH A LIGHT-
TRANSMITTING CONDUTT SECTION OF A PROCESS LINE
BACKGROUND OF THE INVENTION
Field of the Invention
The present invention generally relates to spectroscopy and, more particularly,
to a non-intrusive device for allowing spectrum analysis of a substance through a
conduit section of a process line of a given processing plant.
Description of the Prior Art
It is known to carry out spectroscopy for monitoring the chemical composition
and physical properties of various solutions used in processing plants, such as
chemical, pharmaceutical, petroleum, semiconductors and food product processing
industries. Typically, such a spectrum analysis is performed by extracting a sample of
the substance to be analyzed from the process line of the processing plant and
carrying out a spectrometric analysis of the collected sample by passing near to far
infrared radiation therethrough.
Instead of the above-mentioned method, it would be preferable to perform the
test on-line directly through a conduit section of the process line, and if the process
line includes a conduit section made of a light-transmitting material directly through
this existing conduit section, to avoid process line modifications.
Summary of the invention
It is therefore an aim of the present invention to provide a light-transmitting
device adapted to be mounted on a processing line externally of a conduit section
thereof for allowing spectrum analysis of a substance circulated through the conduit
section.

It is also an aim of the present invention to provide for on-line analysis of a
substance without having to extract a sample of the substance from the process line
through which the substance is circulated.
It is a further aim of the present invention to provide a light-transmitting device
for allowing spectrum analysis of a substance circulated through a process line without
having to modify the process line when the latter includes a conduit section made of a
light-transmitting material.
Therefore, in accordance with the present invention, there is provided a non-
intrusive device for allowing spectrum analysis of a confined process stream through a
light-transmitting conduit section of a process line, comprising a clip adapted to be
externally mounted on the light-transmitting conduit section, said clip being at least
partly made of a light-transmitting material and connectable to a source of light to
direct a beam of light transversally through the conduit section.
The expression spectrum analysis is herein intended to mean the investigation
of substances or bodies by means of their electromagnetic spectra, specifically
chemical composition and physical properties analysis thereof.
The expression light is herein intended to mean all wavelengths included in the
electromagnetic spectrum, including the ultraviolet, visible and infrared portions of the
electromagnetic spectrum.
In accordance with a further general aspect of the present invention, there is
provided a conduit-mounted light-transmitting device for allowing optical analysis of a
substance through a conduit section of a process line, wherein said conduit section is
made of a light-transmitting material, the conduit-mounted light-transmitting device
comprising a clip adapted to be detachably secured about the conduit section, said
clip defining an optical path intersecting the conduit section when said clip is secured
thereabout.

BRIEF DESCRIPTION OF THE ACCOMPANYING DRAWINGS
Having thus generally described the nature of the invention, reference will now
be made to the accompanying drawings, showing by way of illustration a preferred
embodiment thereof, and in which:
Fig. 1 is a schematic perspective view of a process line upon which a light-
transmitting device in accordance with the present invention is externally mounted for
allowing spectrum analysis of a process stream through the process line tubing;
Fig. 2 is an enlarged view of the light-transmitting device mounted on a section
of the process line;
Fig. 3 is an enlarged partly exploded view of the light-transmitting device
illustrating how the device is removably secured about a section of the process line;
and
Fig. 4 is a cross-sectional view of the light-transmitting device mounted on the
process line.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
The present invention, as will be explained hereinafter, is generally directed to a
light-transmitting device 10 adapted to be removably secured about a process line of a
given processing plant to permit optical analysis of the composition and/or physical
properties of a substance circulated through the process line. More specifically, the
light-transmitting device 10 is adapted to be externally mounted on a conduit section of
an existing process line to direct a light beam (visible, near infrared or infrared) from a
remote light source (not shown), through the conduit section and then carry the light
emerging from the illuminated substance through the conduit section to a light
receiving sensor (not shown), such as a spectrophotometer. It is understood that the

conduit section of the process line has to be made of optically transparent or
translucent material such as polytetrafluoroethylene (PTFE), other fluorinated
hydrocarbon polymers, and any other light/infrared transmitting material for allowing
the light to pass transversally therethrough. For instance, the conduit section could be
made of Teflon™, glass, polypropylene, polystyrene or other polymers.
As will be seen hereinafter the present invention advantageously allows on-line
control and monitoring of a process stream without having to extract a product sample
from the process line. There is thus no risk of contamination of the process stream.
The present invention is even more advantageous in industrial applications comprising
a process line including light-transmitting conduit sections in that control and
monitoring of the process stream can be performed by simply installing the light-
transmitting device 10 on the process line externally of a light-transmitting conduit
section thereof, that is without having to replace a segment of the process line by a
light-transmitting conduit section, thereby obviating any process interruption. That is to
say that in those applications, the process line does not have to be modified in any
way. One has only to mount the light-transmitting device 10 externally on a light-
transmitting conduit section of the process line.
Fig. 1 exemplifies one possible application of the present invention. More
specifically, Fig. 1 depicts a wet station 12, such as those found in semiconductor
industries. The wet station 12 essentially comprises a re-circulation line 14 composed
of a bath 16, a filter 18, and a pump 20 connected together in a closed circuit via
Teflon™ tubing 22. The bath 16 can contained various solutions, such as cleaning,
stripping or etching solutions.
As seen in Fig. 1, the light-transmitting device 10 is directly installed on a
selected conduit section of the existing process line 14 externally of the Teflon™
tubing 22. The light-transmitting device 10 generally comprises a clip 24 adapted to be
detachably secured on a variety of conduits or tubes having different external
diameters.

The clip 24 has a hollow body 26 defining a peripheral open-ended elongated
slot 28 adapted to receive one of a plurality of interchangeable conduit adapters, one
of which is illustrated at 30 in Fig. 3. A different conduit adapter is used for each
diameter of conduit, thereby allowing the body 26 to be mounted on a wide variety of
conduits. The conduit adapter 30 includes a pair of spaced-apart conduit gripping
arms 32 extending perpendicularly from a base wall 33 for tightly grasping a conduit or
tube having an external diameter slightly greater than the spacing between the
gripping arms 32. At least the base wall 33 of the adapter 30 is made of a light-
transmitting material, such as but not limited to PTFE or other fluorinated hydrocarbon
polymers. Once the right adapter has been chosen and fitted over the selected conduit
section of the process line 14, the body 26 is brought over the adapter 30 to locate the
same within the slot 28 in the body 26. The adapter 30 is retained captive in the slot
28 by a cover plate 34. The cover plate 34 is removably secured to the body 26 by
means of screws 36. The cover plate 34 is provided on an undersurface thereof with
an elongated locking rib 38 for engagement between a pair of axially spaced-apart
locking fingers 40 extending laterally outwardly from one of the gripping arms 32 of the
conduit adapter 30 to lock the latter against axial sliding movement in the slot 28.
As shown in Fig. 4, the body 26 is provided on one side of the slot 28 thereof
with a first connector 41 for receiving the distal end portion of a first fiber optic cable
42. The first fiber optic cable 42 is connected at an opposed proximal end thereof to a
light source (not shown) for directing a light beam, such as but not limited to an
infrared beam (IR beam) or a near infrared beam (NIR beam), transversally through
the conduit section of the Teflon™ tubing 22 of the process line 14. The sidewalls of
the slot 28 can be made of a light-transmitting material for allowing the light beam to
pass therethrough or, alternatively a pair of opposed aligned light-transmitting windows
44 could be formed therein. The windows 44 could be provided in the form of holes.
The light beam is directed so as to perpendicularly intersect the central axis of the
conduit section on which the clip 24 is mounted.

According to the illustrated embodiment of the present invention, the light that
emerges from the illuminated process solution through the conduit section of the
Teflon™ tubing 22, the base wall 33 of the conduit adapter 30 and one of the
sidewalls of the slot 28 is diverted 180 degrees by a pair of flat mirrors 46 (see Fig. 4)
before being transmitted to a light receiving sensor via a second fiber optic cable 48
connected at a distal end portion thereof to the body 26 of the clip 24 by a second
connector 50. According to one embodiment of the present invention, the flat mirrors
46 are mounted within the hollow body 26 of the clip 24 by means of an aluminum
frame (not shown). It is noted that a lens could also be provided to focus the
transmitted light into the second fiber optic cable 48 or, alternatively, directly into the
light receiving sensor. Furthermore, it is noted that the second connector 50 could be
disposed on a side of the slot 28 opposite the
first connector and in alignment therewith. In fact, a variety of optical elements could
be integrated within the hollow body 26 of the clip 24 to cause the light to follow
various optical paths between the light source and the light-receiving sensor.
According to an embodiment of the present invention, the hollow body 26 of the
clip 24 is made of Teflon™ to protect the optical elements housed therein from a
corrosive surrounding environment. However, it is understood that the clip 24 could be
made out of a wide variety of materials.
In the case of a tubing 22 made of non optically transparent or translucent
material, a section of such tubing could be replaced once by an appropriate conduit
section, and then the light-transmitting device 10 could be used, when required,
thereon, i.e. without further changes to the tubing of the process line.
As can be appreciated from the foregoing, the present invention allows for on-
line spectrum measurement for determining the chemical composition and/or
properties of a substance through an existing conduit section in which the substance is
circulated.

It is easily seen that the present invention as described above has many
advantages that can be summarized as follows: no sample preparation, rapid
installation with no process interruption, totally non-contact, non-intrusive for no
possibility of contamination, etc.

WE CLAIM :
1. A non-intrusive device (10) for allowing spectrum analysis of a confined process
stream through a light-transmitting conduit section of a process line (14), comprising a
clip (24) adapted to be externally mounted on the light-transmitting conduit section of
the process line (14), said clip (24) being at least partly made of a light-transmitting
material, said clip comprising a hollow body (26) having a conduit engaging section
(28) and provided, with a first connector (41) for receiving an input fiber optic cable (42)
for directing a beam of light form a source of light transversally through the conduit
section, and a second connector (50) for connecting an output fiber optic cable (48),
the hollow body (26) housing at least one optical element (46), the optical element
collecting the light transmitted across the conduit section into the output fiber optic
cable (48).
2. A non-intrusive device (10) as claimed in claim 1, wherein said clip (24) is
adapted to be releasably secured about the light-transmitting conduit section.
3. A non-intrusive device (10) as claimed in claim 1, wherein said clip (24) is
adjustable so as to be securable on light-transmitting conduits having different cross-
sectional dimensions.
4. A non-intrusive device (10) as claimed in claim 1, wherein said body (26)
defines a peripheral slot (28) for receiving interchangeable conduit adapters (30)
adapted to grip conduits of different external diameters.
5. A non-intrusive device (10) as claimed in claim 4, wherein said clip (24)
comprises a removable cover (34) for maintaining a selected one of said
interchangeable conduit adapters (30) captive in said peripheral slot (28).
6. A non-intrusive device (10) as claimed in claim 1, wherein said body (26)
defines a peripheral slot (28) having walls made of a light-transmitting material.

7. A non-intrusive device (10) as claimed in claim 6, wherein said body (26) has a
first connector (41) adapted to be connected to a fiber optic cable (42) to direct the
beam of light through said peripheral slot (28) and through the light-transmitting
conduit section, and wherein said at least one optical element comprises a lens.
8. A non-intrusive device (10) as claimed in claim 7, wherein said body (26) has a
second connector (50) adapted to be connected to the output fiber optic cable (48) for
receiving the light emanating from the process stream through the light-transmitting
conduit and the peripheral slot (28) of the clip (24).
9. A non-intrusive device (10) as claimed in claim 8, wherein said second
connector (50) is connectable to a light-receiving sensor via the output fiber optic
cable (48).
10. A non-intrusive device (10) as claimed in claim 1, wherein said body (26) has a
peripheral slot (28) defining an optical path therethrough for receiving and conducting
the beam of light through the light-transmitting conduit section of the process line (14),
said at least one optical element (46) collecting the light transmitted through the
conduit section.
11. A non-intrusive device (10) as claimed in claim 10, wherein a conduit adapter
(30) is removably installed in said open ended slot (28), said conduit adapter (30)
having a base wall (33) from which extends a pair of spaced-apart conduit gripping
arms (32) adapted to receive therebetween the light-transmitting conduit section,
wherein said conduit adapter (30) is at least partly made of a light-transmitting
material.

A conduit-mounted light-transmitting device (10) for allowing optical analysis of
a substance through a process line conduit (14) made of a light-transmitting material.
The device(10) comprises a clip (24) adapted to be detachably secured about the
conduit section. The clip (24) defines an optical path intersecting the conduit section
when the clip (24) is mounted thereon.

Documents:

500-KOLNP-2004-CORRESPONDENCE.pdf

500-KOLNP-2004-FORM 27.pdf

500-KOLNP-2004-FORM-27.pdf

500-kolnp-2004-granted-abstract.pdf

500-kolnp-2004-granted-assignment.pdf

500-kolnp-2004-granted-claims.pdf

500-kolnp-2004-granted-correspondence.pdf

500-kolnp-2004-granted-description (complete).pdf

500-kolnp-2004-granted-drawings.pdf

500-kolnp-2004-granted-examination report.pdf

500-kolnp-2004-granted-form 1.pdf

500-kolnp-2004-granted-form 18.pdf

500-kolnp-2004-granted-form 3.pdf

500-kolnp-2004-granted-form 5.pdf

500-kolnp-2004-granted-gpa.pdf

500-kolnp-2004-granted-reply to examination report.pdf

500-kolnp-2004-granted-specification.pdf


Patent Number 227313
Indian Patent Application Number 500/KOLNP/2004
PG Journal Number 02/2009
Publication Date 09-Jan-2009
Grant Date 06-Jan-2009
Date of Filing 16-Apr-2004
Name of Patentee ABB BOMEM INC.
Applicant Address BUREAU 300, 585 BOUL, CHAREST EST, QUEBEC, QUEBEC G1K 9H4
Inventors:
# Inventor's Name Inventor's Address
1 BUIJS HENRY 2051 RUE DICKSON, SILLERY, QUEBEC G1T 1C6
2 CHABOT PAUL 1031 RUE DE DIJON, SAINTE-FOY, QUEBEC G1W 4M3
3 DION SYLVAIN 95 DU CALVAIRE, SAINTE-BRIGITTE DE LAVAL, QUEBEC G0A 3K0
4 TURCOTTE BENOIT 12140 RAYMOND DAVELUY, NEUFCHATEL, QUEBEC G2B 5A4
PCT International Classification Number G01N 21/05
PCT International Application Number PCT/CA2002/01562
PCT International Filing date 2002-10-16
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 2,359,178 2001-10-16 Canada