IL31485A - Probe photometer - Google Patents
Probe photometerInfo
- Publication number
- IL31485A IL31485A IL31485A IL3148569A IL31485A IL 31485 A IL31485 A IL 31485A IL 31485 A IL31485 A IL 31485A IL 3148569 A IL3148569 A IL 3148569A IL 31485 A IL31485 A IL 31485A
- Authority
- IL
- Israel
- Prior art keywords
- probe
- photometer
- radiation
- photometer according
- light
- Prior art date
Links
- 239000000523 sample Substances 0.000 title claims description 38
- 230000005855 radiation Effects 0.000 claims description 18
- 239000012530 fluid Substances 0.000 claims description 17
- 239000011521 glass Substances 0.000 claims description 11
- 230000005540 biological transmission Effects 0.000 claims description 10
- 230000003287 optical effect Effects 0.000 claims description 6
- 230000001360 synchronised effect Effects 0.000 claims description 6
- 239000004033 plastic Substances 0.000 claims description 4
- 239000000463 material Substances 0.000 claims description 3
- 230000000694 effects Effects 0.000 claims description 2
- 239000003795 chemical substances by application Substances 0.000 claims 1
- 229920000136 polysorbate Polymers 0.000 claims 1
- 230000006335 response to radiation Effects 0.000 claims 1
- 239000003990 capacitor Substances 0.000 description 13
- 239000007788 liquid Substances 0.000 description 12
- 238000005259 measurement Methods 0.000 description 9
- 230000008859 change Effects 0.000 description 3
- 230000008878 coupling Effects 0.000 description 2
- 238000010168 coupling process Methods 0.000 description 2
- 238000005859 coupling reaction Methods 0.000 description 2
- 238000010586 diagram Methods 0.000 description 2
- 230000007246 mechanism Effects 0.000 description 2
- 238000012986 modification Methods 0.000 description 2
- 230000004048 modification Effects 0.000 description 2
- 238000002798 spectrophotometry method Methods 0.000 description 2
- 239000004809 Teflon Substances 0.000 description 1
- 229920006362 Teflon® Polymers 0.000 description 1
- 230000009471 action Effects 0.000 description 1
- 238000010276 construction Methods 0.000 description 1
- 230000001419 dependent effect Effects 0.000 description 1
- 230000003028 elevating effect Effects 0.000 description 1
- 238000010438 heat treatment Methods 0.000 description 1
- 238000007654 immersion Methods 0.000 description 1
- 239000013641 positive control Substances 0.000 description 1
- 230000035945 sensitivity Effects 0.000 description 1
- 239000000126 substance Substances 0.000 description 1
Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N21/00—Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
- G01N21/84—Systems specially adapted for particular applications
- G01N21/85—Investigating moving fluids or granular solids
- G01N21/8507—Probe photometers, i.e. with optical measuring part dipped into fluid sample
Landscapes
- Physics & Mathematics (AREA)
- Health & Medical Sciences (AREA)
- Life Sciences & Earth Sciences (AREA)
- Chemical & Material Sciences (AREA)
- Analytical Chemistry (AREA)
- Biochemistry (AREA)
- General Health & Medical Sciences (AREA)
- General Physics & Mathematics (AREA)
- Immunology (AREA)
- Pathology (AREA)
- Investigating Or Analysing Materials By Optical Means (AREA)
Description
PHOTOMETER May 10, 1972 31485/3 ^ This invention is concerned with photometer apparatus' and in particular with a photometer using a probe which may be inserted directly into a liquid or gas, to measure the light transmission through the fluid; and which may be used, for example, for spectrophotometric, turbidity. Colorimetric, densitometer, or other measurements.
This invention relates to a photometer including an elongated, rigid probe-like member having an open recess between its ends thereby to define a pair of spaced-apart transparent surfaces disposed opposite to each other; a radiation sensing device mounted in said rigid member and positioned adjacent to one of said surfaces; and a radiation transmission element extending longitudinally of said rigid member and adapted to carry radiation from a source thereby to radiate from the other of said surfaces and across the recess to actuate said radiation sensing device in a manner responsive to radiation absorbing characteristics of a fluid located between said surface in said recess.
The photometer of the invention finds particular utility in spectrophotometric measurements in which a selected wavelength of light is directed through a fluid sample towards a photocell; the resultant output from the photocell being a measurement of the "optical transmission" of the sample at that wavelength. However, as indicated above, and as will become more evident as the description proceeds, the photometer of the invention has general utility for a wide variety of measurements involving the measurement of light transmission The probe- type of photometer of the invention perm■i'"ts■4" the aforesaid spectrophotometric measurements to be made by immersing the photometer probe down into the fluid sample, the s.anple being contained, for example, in a test tube' or other appropriate receptacle .
The photometer of the invention may conveniently be included in an automatic system, whereby a series of test tubes may be transported to the probe photometer station on a conveyor, and each test tube raised under the probe to enable the, probe to be immersed in the fluid sample contained therein. In this way, measurements may be made of the fluid samples contained in the successive test tubes. The outputs from the photometer for each subsequent measurement may then be recorded as a series of "optical density" or "percent concentration" readings .
As indicated above, the probe photometer of the invention also finds utility for determining turbidity in the fluid sample, for colori etric measurements, for densitometer purposes, and the like. , There will now be described a probe-photometer and a photometer unit using the probe as a component part in reference to the accompanying drawings , wherein; Figure 1 is a schematic representation of the apparatus and system of the present invention, in which the probe photometer is a component; Figure 2 is a perspective representation of a probe photometer constructed in accordance with one embodiment of Figure 4 is a circuit diagram appropriate for in- -s-"-clusion into the system of Figure 1; and Figure 5 is a circuit diagram of a fluid level sensing system.
The apparatus of Figure 1 includes a light source which is contained, for example, in a housing 10. The light source may be an incandescen lamp, or any .aihor appropriat-e source may bo trsed, depending upon the use to which the ap-. paratus of Figure 1 is to be placed. The light from the source emanates through outlets 12 and 14 in the housing 10, any appropriate and known type of optical system being used within the housing to accomplish this purpose.
The housing 10 also includes a drive motor for a light chopper wheel 16. The light chopper wheel may be any known type, and. it is rotatably driven so as to interrupt the light emanating from the outlets 12 and 14 at a rate determined by the number of clear and opaque segments on the wheel 16 and by the speed at which the wheel is rotated.
A probe photometer member 18 which will be discussed in more detail in conjunction with Figures 2 and 3, is supported adjacent the housing 10, as shown in Figure 1. The member 18 includes an elongated probe- like member which is configured to provide a pair Qf spaced-apart surfaces 19 and 20. As best shown in Figure 2, the probe-like member 18 may be formed of a glass tube. The glass tube - has been found to withstand a wide variety of fluids in which it may be immersed. However, it is apparent that other substances may be used.
In the construction of the probe of Figure 2, the glass tube is softened at an intermediate point, for example, by the application of heat; and this intermediate point is deformed, as shown in Figure 2, so as to define the spaced-apart surfaces 19 and 20. However, the original passage through the tube is maintained in an unblocked condition around the deformed section. A photocell 22 of any appropriate type is mounted within the tube adj acent the surface 20. A light pipe 24 is also mounted in the tube, and it extends longitudinally down the tube so that its lower end is positioned adjacent the surface 19. As best shown in Figure 3, a usual electric plug 30 may be mounted at the upper end of the probe 24, the plug having a plurality of prongs 32, as shown. . The light pipe 24 may extend up through a central aperture in the plug 30, as shown i Figure 3.
The lower end of the glass tube may be closed by a plug 34 formed of Teflon, or other appropriate plastic material. The tube may, of course, be self-sealed at the end by heating the glass and drawing the end to a point.
The wires from the photocell 22 extend up the hollow passage in the glass tube and these wires may be . connected to appropriate pins 32 of the plug 30. A thermistor element 36, or other temperature sensitive device, is mounted in the tube adjacent the, photocell 22, and wires from this latter element may also extend up the passage in 38, or other temperature sensitive device, is mounted in the glass tube, adjacent the surface 19, but displaced up from the surface.
Wires from this latter thermistor also extend up the passage and may be connected to the other pins 32 of the plug 30. The thermistor 38 responds to the corresponding change in temperature when the probe is dipped into a liquid, and when the fluid covers the level of the thermistor. 38 so that it serves as a liquid level indicator.
The aforesaid liquid, for example, may be contained in a test tube 40, as shown in Figure 1. In an automatic system, a series of test tubes, such as the test tube 40, are transported on a conveyor rack successively to a position under the probe 18. Then, as each test tube arrives directly under the probe, automatic means raises the test tube up, so that the probe is immersed in the fluid contained in the test tube. The upward motion of the test tube continues until the liquid sensing thermistor 38 indicates that the probe is immersed in the liquid in the test tube, at which time the upward motion can be terminated and the corresponding reading taken. The temperature sensing device 36, on the other hand, senses the ambient temperature at the location of the photocell 22, and serves to compensate for the effect ambient temperature changes have on the photocell.
A rotatable wheel 42 is also provided, the wheel being positioned between the. outlet 12 and the upper end of the light pipe 24. The wheel 42 may have different filters disposed at different angular positions about its center, and it may be turned by hand to interpose the various filters between the outlet 12 and the light pipe 24 for different spectrophotometric m easurements. One of the filter areas mounted coaxially with the wheel 42 and over the wheel 42, to interpose a second series of light filters in the optical path of the light pipe 24. In this manner, any desired number of optical filter wheels . 2 may be stacked between the outlet 12 and the top of the light pipe, so that a large number of different light filters may be used.
. A second photocell 44 is positioned adjacent the outlet 14.
The photocells 22 and 44 are connected to respective amplifiers 46 and 48 which, in turn, are connected to a synchronous detector 50.
In the operation of the apparatus and- system of Figure 1, the light chopper wheel 16 is rotated at a predetermined rate. This means that the photocells 44 and 22 generate electric signals at a predetermined frequency. The amplitude of the output from the photocell 44 remains constant, , whereas, the amplitude of the output from the photocell 22 is dependent upon the fluid in the test tube 40. The synchronous detector 50 provides an output which is representative of the output from the photocell 22, and which is independent of the ambient light level. This, is because the system responds only to signals whose frequency is established by the light chopper 16, and is unresponsive to other signals.
The liquid level sensing thermistor 38 is used to provide a control signal, which is used in a suitable control system (Figure 5) to cause the test tube 40 to be lifted when it is under the probe to a level such that the probe 18 will be immersed just below the level of the liquid in the test tube. This assures that all measurements will be made at a predetermined reference level with respect to the surface of the liquid as test tubes are successively moved under the probe sensing device 36, on the other hand, produces a control signal which is used, as will be described, to assure that the output from the photocell 22 will be independent of changes in ambient temperature which result from different temperatures of the liquids in the various test tubes in which the probe is immersed.
As mentioned above, the probe 18 is preferably composed of glass, since most plastic materials will dissolve in various fluids, and a glass probe tends to a more universal utility. However, obviously plastic or other types of probes may be used if so desired.
Appropriate circuitry for the amplifiers 46 and 48, and for the synchronous detector 50 of Figure 1 , is shown, for example, in. Figure 4. A s shown in Figure 4, the probe temperature compensation thermistor 3 and the probe photocell 22 are connected across terminals 100, 102 and 104 of the amplifier 46. The amplifier 46 includes an integrated circuit operational amplifier 106 of the type designated 809CE.
The terminal 100 is connected to one of the input terminals of the amplifier, and the output terminal is connected through a potentiometer 108 and resistor 110 to the second input terminal of the amplifier. The second input terminal is also connected to a resistor 1 12 which, in turn, is connected to a grounded capacitor 103. The potentiometer 108 may have a resistance, for example, of 500 kilo-ohms, the resistor 110 may have a resistance of 10 kilo-ohms, the resistor 112 may have a resistance of 100 ohms, and the capacitor 103 may have a capacity of 500 microfarads .
The terminal 104 is grounded. The terminal 102 is connected to r unded - The potentiometer 118 has a resistance, for example, of 750 ohms, and it is connected through a 470 ohm resistor 120 to the first input terminal of the integrated circuit amplifier 106 and to a 4.7 kilo- ohm grounded, resistor 122. The potentiometer 118 permits a manual adjustment to be made as to the extent of temperature compensation provided for the photocell 22 by the thermistor 3j$, The integrated circuit amplifier is connected to a positive 15 volt source and to a negative 15 volt source, as shown. The positive 15 volt source and the negative 15 volt source are connected to respective , 1 microfarad grounded capacitors 124 and 126. . The integrated circuit amplifier 106 also has a terminal connected to a grounded capacitor 128, the latter capacitor having a capacity, for example, of 47 micromicrofarads .
The amplifier 46 is, as will be appreciated, an integrated circuit operational amplifier. Its output is coupled through a 1 microfarad capacitor 130 and a microammeter 133 to an output terminal 132. The other output terminal 134 is grounded. A filter comprising a series resistor 136 and a shunt capacitor 138 is interposed between the capacitor 1-30 and the microammeter and output terminal 132. The resistor 136 may, for example, have a resistance of 8.06 kilo-ohms, and the capacitor 138 may have a capacity of 300 microfarads. The microammeter may have a sensitivity of 50 microamperes for full scale deflection.
The output terminals 132 and 134 are connected to an appropriate printer, such as the instrument described in the aforesaid copending application. Calibration for the printer may be provided ■ " the output terminals . A potentiometer 142 has a resistance of 500 ohms, and the resistor 1 0 may have a resistance of 1. 91 kilo- ohms .
The reference, photocell 44 is connected to the amplifier 48 which may comprise, for example, an NPN transistor 150 of the type presently designated 2N3053. The reference diode is connected, for example, to a grounded input terminal 152 of the amplifier 48 and to a second input terminal 1 54. The input terminal 154 is coupled through a 10 microfarad coupling capacitor 156 to the base of the transistor 150. The base is also connected to the common junction 0 of a 100 kilo- ohm resistor 1 58 and 47 kilo-ohm grounded resistor 160.
S The resistor 1>£8 is connected to the positive 15 volt source. A 6. 8 kilo-ohm resistor 162 connects the collector of the transistor 150 to the positive 1 5 volt source. A 4. 7 kilo-ohm resistor 164 shunted by a 300 microfarad capacitor 166 connect the emitter of the transistor 150 to ground.
The amplifier output from the transistor 150 is passed through a 10 microfarad coupling capacitor 168 to the base of an NPN transistor 170. The latter transistor, likewise, may be of the type designated 2N3053. A diode 172 is connected between the 0 base and collector of the transistor 170, these elements being grounded, as shown. The emitter of the transistor 170 is connected to the junction of the capacitor 130 and resistor 136.
The transistor 170 and its associated circuitry functions as a synchronous detector for the outputs from the operational amplifier 106. That is, the amplifier 48 introduced a constant amplitude signal to the circuit of the transistor 170, the signal having a frequency determined b h l manner, so that the only output appearing on the microammeter 133 and across the output terminals 132 and 134 is the amplifier output from the amplifier 46 which has the same frequency as the signal derived from the amplifier- 48. The signal from the amplifier 106 of the synchronous frequency is that due to the light source in the housing 10, as interrupted by the light chopper .16, and has an amplitude which is a measure of the characteristic of the fluid in the test tube 40. In this way, the signal appearing on the microammeter 133 and across the output terminals 132 and 134 is independent of ambient light changes . Also, due to the action of the thermistor 46-, the output is also independent of any changed temperature might have on the probe photocell 22.
The probe immersion sensing thermistor 38 of Figure 1 may be connected to the terminals 200 and 202 of the circuit shown in : Figure 5. The terminal 202 is grounded, whereas the terminal 200 is connected to the base of a PNP transistor 204 and to the collector of a PNP transistor 206. Both these transistors may be of the type designated 2N2628. The emitter of the transistor 206 is connected through a 270 ohm resistor 208 to the positive 15 volt source. The base of the transistor 206, on the other hand, is connected to that source though a Zener diode 210, and also is connected to a grounded 1 . 8 kilo-ohm resistor 212.
The emitter of the transistor 204 is connected to the emitter of. a similar PNP transistor 216, and the common emitters are connected to the positive 15 volt source through a 1 . 2 kilo-ohm resistor 218. The collector of the transistor 216 is connected to a 4. 7 kilo-ohm base of an NPN. power transistor 224. The latter transistor may be of the type designated 2N 3053.
The base of the transistor 21 6 is connected to the movable contact of a 5 kilo- ohm potentiometer 226. The potentiometer 226 is connected to a grounded 4. 7 kilo- ohm resistor 228 and to a 4. 7 kilo-ohm resistor 230. The latter resistor is connected to the positive 15 volt source, as shown.
The emitter of the transistor 224 is grounded, and its collector is connected through a relay energizing coil 250 and through a 470 ohm resistor 252 to a positive 35 volt source. The circuit is such that when the thermistor 38 indicates a particular temperature change, the relay coil 250 causes the associated relay to be energized. The associated relay, for example, may control the aforesaid elevating mechanism, so that the mechanism will position each test tube 40 of Figure 1 at a point where the thermistor 38 falls below the level of the liquid in the test tube . The potentiometer 226 may be adjusted, so that a positive control of the relay 250 is effectuated, by the change in temperature sensed by the thermistor 38 when it becomes immersed in the liquid in the test tube 40.
The invention provides, therefore, improved probe photometer apparatus which is capable of making appropriate measurements of fluid samples , and which is independent of ambient light or temperature changes. . The invention also includes an improved probe as a component of such apparatus, the probe being made in a commercially feasible manner, and being capable of easily being unplugged and plugged, when replacement is necessary. embodiments of the invention have been illustrated and described, modifications may be made. It is intended to cover such modifications in. the claims .
Claims (15)
1. A photometer including an elongated, rigid probe-like member having an open recess between its ends thereby to define a pair of spaced-apart transparent surfaces disposed opposite to each other; a radiation sensing device mounted in said rigid member and positioned adjacent tq one of said surfaces; and a radiation transmission element ex¬ tending longitudinally of said rigid member and adapted to carry radiation from a source thereby to radiate from the other of said surfaces and across the recess to actuate said radiation sensing device in a manner responsive to radiation absorbing characteristics of a fluid located between said surface in said recess.
2. The photometer according to claim 1, including a temperature sensitive device mounted in said probe-like member and positioned adjacent said radiation sensing device.
3. The photometer according to claim 1 or 2, including a fluid-level sensing device mounted in said probe¬ like member.
4. The photometer according to anyone of the claims 1-3, wherein said probe-like member is an elongated glass tube sealed at one end.
5. The photometer according to anyone of the claims 1-3, wherein said probe-like member is formed of an elongated glass tube, and which includes a plug of a selected plastic material at one end of said rod.
6. The photometer according to anyone of the claims -5 includin a lu member mounted on the o en end
7. The photometer according to anyone of the claims 1-6, including a light transmission element in the form of an elongated light pipe.
8. A photometer according to any of the claims 1-7, including first means causing said radiation source to emit radiation at a predetermined interrupted rate so as to cause said radiation sensing device to produce an output having a predetermined repetition frequency; second means producing a reference output at said predetermined repetition frequency; and synchronous detector means coupled to said radiation sensing device and to said second means for producing an output representative of the output of said radiation sensing, means in response to radiations from said radiation source.
9. The photometer according to claim 8, wherein said radiation sensing device comprises a first photoelectric transducer, and said second means includes a second photoelectric transducer.
10. The photometer according to claim 8 or 9, wherein said first means and said second means include a light chopper.
11. The photometer according to anyone of the claims 8-10, including means for selectively placing different light filters in the optical path through said light transmission element.
12. A photometer according to claims 8 and 9, including a light source directing light at one end of said light transmission element and at said second photoelectric 31485/3 end and on said second photoelectric transducer at a predetermined rate .
13. The photometer according to any of the claims 1-12, including at least one rotatable wheel interposed between said light source and said end of said. light transmission element , for selectively placing different, light filters ber-tween said light source, and .said light transmission element.
14. ; The photometer according to any. of the claims 1-13, including circuitry coupled to said temperature sensitive device for compensating for the effects of ambient temperature changes on said first photoelectric transducer.
15. A photometer substantially as described herein with reference to the accompanying drawing. AGENTS FOR APPLICANTS
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US70611268A | 1968-02-16 | 1968-02-16 |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| IL31485A0 IL31485A0 (en) | 1969-03-27 |
| IL31485A true IL31485A (en) | 1972-08-30 |
Family
ID=24836264
Family Applications (3)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| IL31485A IL31485A (en) | 1968-02-16 | 1969-01-24 | Probe photometer |
| IL39142A IL39142A (en) | 1968-02-16 | 1969-01-24 | Probe photometer |
| IL39142A IL39142A0 (en) | 1968-02-16 | 1972-04-04 | Photometer probe |
Family Applications After (2)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| IL39142A IL39142A (en) | 1968-02-16 | 1969-01-24 | Probe photometer |
| IL39142A IL39142A0 (en) | 1968-02-16 | 1972-04-04 | Photometer probe |
Country Status (5)
| Country | Link |
|---|---|
| BE (1) | BE725253A (en) |
| FR (1) | FR1596252A (en) |
| GB (1) | GB1242009A (en) |
| IL (3) | IL31485A (en) |
| NL (1) | NL6902448A (en) |
Families Citing this family (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE3409003A1 (en) * | 1983-06-16 | 1984-12-20 | Shipley Co., Inc., Newton, Mass. | MEASURING PROBE FOR MEASURING THE METALION CONCENTRATION |
| SI23046A (en) * | 2009-08-28 | 2010-11-30 | Gozdarski@Inštitut@Slovenije | Procedure for measuring root development dynamics and device for carrying out the procedure |
-
1968
- 1968-12-10 GB GB58608/68A patent/GB1242009A/en not_active Expired
- 1968-12-11 BE BE725253A patent/BE725253A/xx unknown
- 1968-12-20 FR FR17959268A patent/FR1596252A/fr not_active Expired
-
1969
- 1969-01-24 IL IL31485A patent/IL31485A/en unknown
- 1969-01-24 IL IL39142A patent/IL39142A/en unknown
- 1969-02-15 NL NL6902448A patent/NL6902448A/xx unknown
-
1972
- 1972-04-04 IL IL39142A patent/IL39142A0/en unknown
Also Published As
| Publication number | Publication date |
|---|---|
| FR1596252A (en) | 1970-06-15 |
| NL6902448A (en) | 1969-08-19 |
| GB1242009A (en) | 1971-08-11 |
| DE1906680A1 (en) | 1969-09-18 |
| BE725253A (en) | 1969-05-16 |
| IL31485A0 (en) | 1969-03-27 |
| DE1906680B2 (en) | 1973-02-08 |
| IL39142A0 (en) | 1972-06-28 |
| IL39142A (en) | 1972-10-29 |
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