USRE27458E - Solid state temperature measuring device - Google Patents

Solid state temperature measuring device Download PDF

Info

Publication number
USRE27458E
USRE27458E US27458DE USRE27458E US RE27458 E USRE27458 E US RE27458E US 27458D E US27458D E US 27458DE US RE27458 E USRE27458 E US RE27458E
Authority
US
United States
Prior art keywords
temperature
bridge
measuring device
diode
solid state
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired
Application number
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed filed Critical
Application granted granted Critical
Publication of USRE27458E publication Critical patent/USRE27458E/en
Expired legal-status Critical Current

Links

Images

Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01KMEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
    • G01K3/00Thermometers giving results other than momentary value of temperature
    • G01K3/08Thermometers giving results other than momentary value of temperature giving differences of values; giving differentiated values
    • G01K3/14Thermometers giving results other than momentary value of temperature giving differences of values; giving differentiated values in respect of space

Definitions

  • a temperature-measuring detector having a plurality of like, similarly oriented, series-connected semiconductor junctions, arranged in direct electrical and mechanical contact to form a two-terminal element.
  • the two-terminal element provides linear forward voltage versus environmental temperature characteristics. This element is particularly useful in bridge-type temperature-measuring circuits such as for the measurement of absolute temperatures.
  • This invention relates to a solid state temperature measuring device.
  • Silicon diode elements have a negative-voltage temperature characteristic when positively biased. It is generally accepted that this is a problem the circuit designer must live with and compensate for. As will be disclosed hereinafter, this temperature-voltage characteristic can be utilized in a temperature measuring device which is substantially linear over a broad range. For example, devices made in accordance with the invention, when tested in the range of 65 to 200 C. have proven to have a linear characteristic. Aside from the desirable linearity characteristic, another advantage of the apparatus of this invention is that it may be made extremely small; for example, not much larger than the head of a pin. Thus it would have low mass and may be used to sense the temperature of environments without disturbing the equilibrium. Further, the sensor can be located remotely from the temperature indicator.
  • Another object of this invention is to provide a simple temperature measuring apparatus which is linear over a broad temperature range.
  • a particular object of this invention is to provide a simple temperature sensing element and apparatus which is linear over the range 65 C. to 200 C.
  • a further object is to provide an improved temperature measuring device having low current requirements.
  • Still another object is to provide an improved solid state "ice temperature measuring device which is independent of nominal power supply variations.
  • FIG. 1 is a graphical representation of a family of current-versus-voltage curves for a given silicon diode at various temperatures
  • FIG. 2 is a schematic showing of a simple prior art temperature measuring circuit
  • FIG. 3 is a schematic showing of the apparatus of this invention arranged for measuring absolute temperatures
  • FIG. 4 is a schematic diagram of an apparatus for operation from an A.C. source
  • FIG. 5 is a schematic showing of the apparatus with the components arranged for the remote indication of a sensed temperature
  • FIG. 6 is a greatly enlarged view in elevation of a diode pack
  • FIG. 7 is a pictorial view of the temperature sensing element of this invention.
  • FIG. 8 is an enlarged pictorial view of a magnetically secured temperature sensing element
  • FIG. 9 is a pictorial View of a temperature measuring device.
  • FIG. 1 there is shown a pair of voltage-current curves for a silicon diode.
  • the change in voltage, per degree C. change in temperature at a given current is approximately -2 mv.
  • a change of approximately 0.2 v. is obtained.
  • the diode packs may be made by assembling a number of diodes in anode-to-cathode series connection, as shown in FIG. 6.
  • the diode packs may be manufactured so as to be closely matched in temperature-voltage characteristics.
  • the circuit of FIG. 3 is employed. Diode packs D D D and D are set up as arms of a bridge and packs D and D are maintained at a known temperature. It will be noted that since the series impedance is the same in branches of D and D and branches of D and D the currents are the same, and the functioning of the circuit is therefore independent of variation in current.
  • the device may operate with a current drain of about 1a. making battery operation feasible.
  • the voltage measured by voltmeter 7 will therefore be he voltage drop across the diodes or diode packs in ac- :ordance with the following equation:
  • the roltmeter scale may be calibrated directly in degrees.
  • FIG. 4 there is disclosed an AC. operated version )f the device.
  • the bridge circuit is connected to A.C.
  • banks of liodes D and D are located in the environment whose emperature is to be sensed.
  • the refer- :nce banks namely, D and D are located in an en- Iironment of known temperature. This, for example, nay be an oven or an ice bath.
  • the two reference banks nay be in a single bead. If desired, the temperature of :he reference junction may be measured by a thermom- :ter and the reading on voltmeter 7 converted to a measlred temperature reading by means of a conventional :alibation chart.
  • the device As one example of the utility of the devices, its applization to the taking of human temperatures may be con- :idered. It is contemplated that the device be slipped vnto a disposable plastic or metal sleeve 12 made out of aluminum foil or polyethylene film, say, but a mil thick. Using this device, a nurse could go through a ward in a natter of minutes taking temperatures of patients almost vnstantaneously and merely discarding the protective film rheath without the need for sterlization of thermometers ind avoiding the dangers of cross infection involved in he present system.
  • FIG. 7 a typical bead 15 containing two diode packs electrically insulated from each other is shown in full size.
  • the apparatus is sufficiently small to be passed into iuman body orifices by means of a catheter for monitoring purposes.
  • the sensing portion of the apparatus is sufliciently small as to be contained within a small head of material.
  • A. presently preferred material for the head is an epoxy resin filled with a metal powder to render it thermally conductive but electrically insulated.
  • a temperature sensing device suited for ;ensing temperature of a magnetic material 17 is dis- :losed.
  • the sensing device 15, forming the two :vridge arms are D and D shown embedded in the bore [9 of a small disc magnet 20 and retained therein by metal filled epoxy resin potting compound 22.
  • :he device is but A" in diameter and Ma" thick.
  • a simple movable dial may be provided to set :he scale to read correctly for a range of reference temperatures.
  • An arrangement of this type is shown in FIG. 9.
  • Reference diode packs D and D are located in a ventilated chamber provided with louvers 28 of housing 29. Within the housing is located a battery I and resistor R. Plug 23 of cable 23 mates with jack 25 in handle 26 to connect sensing diode packs D and D to the other components in accordance with the circuit shown in FIG. 5.
  • Dial plate 30 is rotated by thumb wheel 31 to permit the user to set the room temperature against indicia 32 as shown by mercury or other expansible fluid thermom- :ter 32 and simultaneously move the voltmeter scale 33 of voltmeter 34 to the proper position.
  • Disposable sheath [2 is shown positioned over encapsulated diode package D1 and D4.
  • the low current requirement permits the use of small diameter wire leads and also minimizes heating of the semiconductors so that the measured temperature is that of the environment. It should be noted that the internal heating is the same in all four arms and therefore is selfcanceling assuring accuracy.
  • a linear solid state temperature detector comprising a temperature responsive bridge having:
  • each of said bridge arms is composed of a like plurality of like semiconductor junctions, similarly oriented relative to said first pair of output terminals, and each of said arms being characterized by substantially identical temperature vs. voltage characteristics, at least one of said bridge arms being positioned in the environment the temperature of which is to be measured.
  • the detector of claim 1 including a second set of bridge arms connected in parallel with each of said first, second, third and fourth bridge arms, which define a first set of bridge arms, and second set being similar to said first set but each of said junctions being oriented opposite to those of said first set.
  • the detector of claim 1 wherein the semiconductors of one bridge arm! and the semiconductors of the bridge arm between the input and output terminals not common to said one arm are both in a common environment for sensing a temperature condition and the other bridge arms are maintained in an environment subjected to the same reference temperature, whereby said current measured by said current measuring means is indicative of the difference in temperature between the reference temperature and a sensed temperature condition.
  • (b) means to indicate the sum of the reference temperature and the temperature difference indicated by said current measuring means, said sum being the sensed temperature.
  • each of said arms is composed of a multiple series stack of semiconductor junctions wherein each intermediate anode member is in direct mechanical and electrical contact with a pair of cathode members.
  • a temperature detector of the type having a bridge circuit arrangement wherein the voltage developed across an arm of the bridge varies linearly with environmental temperature to provide a measure of said environmental temperature jromthe bridge output
  • the improvement which comprises a two-terminal element in each bridge arm, said element having a plurality of like, similarly-oriented semiconductor junctions arranged to form a set of serially connected junctions, each junction having a cathode and an anode, each cathode of a junction being in direct electrical and mechanical contact with a respective adjacent anode, said element being characterized by environmental temperature versus forward voltage characteristics, said voltage characteristics being dependent on the number of junctions in the set.

Landscapes

  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Measuring Temperature Or Quantity Of Heat (AREA)

Abstract

A TEMPERATURE-MEASURING DETECTOR HAVING A PLURALITY OF LIKE, SIMILARLY ORIENTED, SERIES-CONNECTED SEMICONDUCTOR JUNCTIONS, ARRANGED IN DIRECT ELECTRICAL AND MECHANICAL CONTQACT TO FORM A TWO-TERMINAL ELEMENT. THE TWO-TERMINAL ELEMENT PROVIDES LINEAR FORWARD VOLTAGE VERSUS ENVIRONMENTAL TEMPERATURE CHARACTERISTICS. THIS ELEMENT IS PARTICULARLY USEFUL IN BRIDGE-TYPE TEMPERATURE-MEASURING CIRCUITS SUCH AS FOR THE MEASUREMENT OF ABSOLUTE TEMPERATURES.

Description

V Aug. 15, K $|MQNYAN ETAL Re.
SOLID STATE TEMPERATURE MEASURING DEVICE Original Filed July 12, 1965 2 Sheets-Sheet 1 FIG; 2
I I I I I0 I I I5 I I/ g I F 16.5 I l INVENTORS I II I M42486? smoumu x I BY .asoaesecuu TON 6 m Ad A T TORI/E I.
Aug. 15, 1972 sl ETAL Re. l
SOLID STATE TEMPERATURE MEASURING DEVICE Original Filed Jul 12, 1965 2 Sheets-Sheet 2 p 15 i ii CA mooss INVENTOR$ KARABET SIMONYAN GEORGE c. CHIL TON 4mm #1 m A T TORNE Y.
United States Patent 27,458 SOLID STATE TEMPERATURE MEASURING DEVICE Karabet Sim'onyan, Saddle Brook, and George E. Chilton,
Haworth, N..l., assignors to Computer Diode Corporation, Fair Lawn, NJ.
Original No. 3,330,158, dated July 11, 1967, Ser. No. 471,298, July 12, 1965, which is a continuation of Ser. No. 817,260, Apr. 10, 1969. Application for reissue Mar. 4, 1970, Ser. No. 19,619
Int. Cl. G01k 7/22 US. Cl. 73362 SC 10 Claims Matter enclosed in heavy brackets II] appears in the original patent but forms no part of this reissue specification; matter printed in italics indicates the additions made by reissue.
ABSTRACT OF THE DISCLOSURE A temperature-measuring detector having a plurality of like, similarly oriented, series-connected semiconductor junctions, arranged in direct electrical and mechanical contact to form a two-terminal element. The two-terminal element provides linear forward voltage versus environmental temperature characteristics. This element is particularly useful in bridge-type temperature-measuring circuits such as for the measurement of absolute temperatures.
This is a streamline continuation of reissue application Ser. No. 817,260, filed Apr. 10, 1969, and now abandoned.
This invention relates to a solid state temperature measuring device.
Silicon diode elements have a negative-voltage temperature characteristic when positively biased. It is generally accepted that this is a problem the circuit designer must live with and compensate for. As will be disclosed hereinafter, this temperature-voltage characteristic can be utilized in a temperature measuring device which is substantially linear over a broad range. For example, devices made in accordance with the invention, when tested in the range of 65 to 200 C. have proven to have a linear characteristic. Aside from the desirable linearity characteristic, another advantage of the apparatus of this invention is that it may be made extremely small; for example, not much larger than the head of a pin. Thus it would have low mass and may be used to sense the temperature of environments without disturbing the equilibrium. Further, the sensor can be located remotely from the temperature indicator.
Accordingly, it is an object of this invention to provide a subminiature temperature sensing element.
Another object of this invention is to provide a simple temperature measuring apparatus which is linear over a broad temperature range.
A particular object of this invention is to provide a simple temperature sensing element and apparatus which is linear over the range 65 C. to 200 C.
A further object is to provide an improved temperature measuring device having low current requirements.
Still another object is to provide an improved solid state "ice temperature measuring device which is independent of nominal power supply variations.
These and other features, objects and advantages of the invention will, in part, be pointed out with particularity and will, in part, become obvious from the following more detailed description of the invention taken in' conjunction with the accompanying drawing which forms an integral part thereof.
In the various figures of the drawing, like reference characters designate like parts.
In the drawing:
FIG. 1 is a graphical representation of a family of current-versus-voltage curves for a given silicon diode at various temperatures;
FIG. 2 is a schematic showing of a simple prior art temperature measuring circuit;
FIG. 3 is a schematic showing of the apparatus of this invention arranged for measuring absolute temperatures;
FIG. 4 is a schematic diagram of an apparatus for operation from an A.C. source;
FIG. 5 is a schematic showing of the apparatus with the components arranged for the remote indication of a sensed temperature;
FIG. 6 is a greatly enlarged view in elevation of a diode pack;
FIG. 7 is a pictorial view of the temperature sensing element of this invention;
FIG. 8 is an enlarged pictorial view of a magnetically secured temperature sensing element; and
FIG. 9 is a pictorial View of a temperature measuring device.
Referring now to FIG. 1, there is shown a pair of voltage-current curves for a silicon diode. For a typical silicon diode the change in voltage, per degree C. change in temperature at a given current, is approximately -2 mv. Thus for a hundred degree difference in temperature, a change of approximately 0.2 v. is obtained.
By placing an 11 number of diodes in series, the voltage change is multiplied n times. Thus for ten diodes in series in the circuit, a 10-degree change in temperature of the sensing diodes would produce an 0.2 v. change in the reading of the voltmeter 7. Thus if, as shown in FIG. 2, a diode 6 were connected to a constant current source 1;, through a dropping resistor R, then as the temperature of the diode pack 6 was varied, the reading on microvoltmeter 7 would vary proportionately to provide an indication of the,relative change in the sensed temperature. However, this simple circuit is not suited for practical applications.
The diode packs may be made by assembling a number of diodes in anode-to-cathode series connection, as shown in FIG. 6. The diode packs may be manufactured so as to be closely matched in temperature-voltage characteristics.
Where it is desired to measure absolute temperature, the circuit of FIG. 3 is employed. Diode packs D D D and D are set up as arms of a bridge and packs D and D are maintained at a known temperature. It will be noted that since the series impedance is the same in branches of D and D and branches of D and D the currents are the same, and the functioning of the circuit is therefore independent of variation in current. The device may operate with a current drain of about 1a. making battery operation feasible.
The voltage measured by voltmeter 7 will therefore be he voltage drop across the diodes or diode packs in ac- :ordance with the following equation:
vhere the respective voltages correspond to the voltage lCl'OSS the corresponding diode packs. Since the voltage s directly proportional to the temperature difference, the roltmeter scale may be calibrated directly in degrees.
In FIG. 4, there is disclosed an AC. operated version )f the device. The bridge circuit is connected to A.C.
:ource I Each of the diodes or diode packs D D ias parallel to it, a like diode pack D D respectivey, arranged in the opposite direction. Thus, either the -D or the D D diode packs will be operating de- Jending on the polarity of the applied potential.
In the practical circuit shown in FIG. 5, banks of liodes D and D are located in the environment whose emperature is to be sensed. On the other hand, the refer- :nce banks, namely, D and D are located in an en- Iironment of known temperature. This, for example, nay be an oven or an ice bath. The two reference banks nay be in a single bead. If desired, the temperature of :he reference junction may be measured by a thermom- :ter and the reading on voltmeter 7 converted to a measlred temperature reading by means of a conventional :alibation chart.
As one example of the utility of the devices, its applization to the taking of human temperatures may be con- :idered. It is contemplated that the device be slipped vnto a disposable plastic or metal sleeve 12 made out of aluminum foil or polyethylene film, say, but a mil thick. Using this device, a nurse could go through a ward in a natter of minutes taking temperatures of patients almost vnstantaneously and merely discarding the protective film rheath without the need for sterlization of thermometers ind avoiding the dangers of cross infection involved in he present system.
In FIG. 7, a typical bead 15 containing two diode packs electrically insulated from each other is shown in full size. The aparatus is sufficiently small to be passed into iuman body orifices by means of a catheter for monitoring purposes.
The sensing portion of the apparatus is sufliciently small as to be contained within a small head of material. A. presently preferred material for the head is an epoxy resin filled with a metal powder to render it thermally conductive but electrically insulated.
In FIG. 8, a temperature sensing device suited for ;ensing temperature of a magnetic material 17 is dis- :losed. Here, the sensing device 15, forming the two :vridge arms are D and D shown embedded in the bore [9 of a small disc magnet 20 and retained therein by metal filled epoxy resin potting compound 22. Typically, :he device is but A" in diameter and Ma" thick.
Since the meter 7 will indicate the difference in temperature between the sensing diodes and the reference diodes, a simple movable dial may be provided to set :he scale to read correctly for a range of reference temperatures. An arrangement of this type is shown in FIG. 9. Reference diode packs D and D are located in a ventilated chamber provided with louvers 28 of housing 29. Within the housing is located a battery I and resistor R. Plug 23 of cable 23 mates with jack 25 in handle 26 to connect sensing diode packs D and D to the other components in accordance with the circuit shown in FIG. 5.
Dial plate 30 is rotated by thumb wheel 31 to permit the user to set the room temperature against indicia 32 as shown by mercury or other expansible fluid thermom- :ter 32 and simultaneously move the voltmeter scale 33 of voltmeter 34 to the proper position. Disposable sheath [2 is shown positioned over encapsulated diode package D1 and D4.
The low current requirement permits the use of small diameter wire leads and also minimizes heating of the semiconductors so that the measured temperature is that of the environment. It should be noted that the internal heating is the same in all four arms and therefore is selfcanceling assuring accuracy.
There has been disclosed heretofore the best embodiments of the invention presently contemplated and it is to be understood that various changes and modifications may be made by those skilled in the art without departing from the spirit of the invention.
What is claimed is:
1. A linear solid state temperature detector comprising a temperature responsive bridge having:
(a) a first pair of diagonally opposed input terminals for connection to a source of potential;
(b) a second pair of diagonally opposed output terminals providing means for deriving an output current indicative of bridge unbalance;
-(c) current measuring means connected to said output terminals;
(d) a first bridge arm connected between one of said pair of input terminals and one of said output terminals;
(e) a second bridge arm connected between the other of said input terminal and said one of said output terminals;
(f) a third bridge arm connected between the other said output terminal and said one of said input terminals;
(g) a fourth bridge arm connected between the said other output terminal and the said other input terminal;
wherein each of said bridge arms is composed of a like plurality of like semiconductor junctions, similarly oriented relative to said first pair of output terminals, and each of said arms being characterized by substantially identical temperature vs. voltage characteristics, at least one of said bridge arms being positioned in the environment the temperature of which is to be measured.
2. The detector of claim 1 including a second set of bridge arms connected in parallel with each of said first, second, third and fourth bridge arms, which define a first set of bridge arms, and second set being similar to said first set but each of said junctions being oriented opposite to those of said first set.
=3. The detector of claim 1 wherein the semiconductors of one bridge arm! and the semiconductors of the bridge arm between the input and output terminals not common to said one arm are both in a common environment for sensing a temperature condition and the other bridge arms are maintained in an environment subjected to the same reference temperature, whereby said current measured by said current measuring means is indicative of the difference in temperature between the reference temperature and a sensed temperature condition.
4. In combination with the temperature detector of claim 3,
(a) independent means to determine the reference temperature; and
(b) means to indicate the sum of the reference temperature and the temperature difference indicated by said current measuring means, said sum being the sensed temperature.
5. The apparatus of claim 3 wherein said bridge arms for sensing said temperature condition are in a thermally conductive common package connected by conductive leads to the balance of the bridge circuit.
6. The apparatus of claim 5 wherein said common thermally conductive package is covered by a thermally conductive disposable sheath.
7. The apparatus of claim 5 wherein said common package is secured to a magnet.
8. The apparatus of claim 5 including an annular magnet and an electrically nonconductive, thermally conductive plastic core surrounded by said magnet, said common package being embedded in said plastic core.
9. The apparatus of claim 1 wherein each of said arms is composed of a multiple series stack of semiconductor junctions wherein each intermediate anode member is in direct mechanical and electrical contact with a pair of cathode members.
10. In a temperature detector of the type having a bridge circuit arrangement wherein the voltage developed across an arm of the bridge varies linearly with environmental temperature to provide a measure of said environmental temperature jromthe bridge output, the improvement which comprises a two-terminal element in each bridge arm, said element having a plurality of like, similarly-oriented semiconductor junctions arranged to form a set of serially connected junctions, each junction having a cathode and an anode, each cathode of a junction being in direct electrical and mechanical contact with a respective adjacent anode, said element being characterized by environmental temperature versus forward voltage characteristics, said voltage characteristics being dependent on the number of junctions in the set.
References Cited The following references, cited by the Examiner, are of record in the patented file of this patent or the original patent.
UNITED STATES PATENTS OTHER REFERENCES Transitron Corp. Bulletin: TE1332, June 1964.
LOUIS R. PRINCE, Primary Examiner F. SHOON, Assistant Examiner US. Cl. X.R.
US27458D 1970-03-04 1970-03-04 Solid state temperature measuring device Expired USRE27458E (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US1961970A 1970-03-04 1970-03-04

Publications (1)

Publication Number Publication Date
USRE27458E true USRE27458E (en) 1972-08-15

Family

ID=21794146

Family Applications (1)

Application Number Title Priority Date Filing Date
US27458D Expired USRE27458E (en) 1970-03-04 1970-03-04 Solid state temperature measuring device

Country Status (1)

Country Link
US (1) USRE27458E (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050094708A1 (en) * 2003-11-04 2005-05-05 Adlerstein Michael G. Integrated thermal sensor for microwave transistors

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050094708A1 (en) * 2003-11-04 2005-05-05 Adlerstein Michael G. Integrated thermal sensor for microwave transistors
US6991367B2 (en) * 2003-11-04 2006-01-31 Raytheon Company Integrated thermal sensor for microwave transistors

Similar Documents

Publication Publication Date Title
US3330158A (en) Solid state temperature measuring device
US3440883A (en) Electronic semiconductor thermometer
US2753714A (en) Electric thermometer
US3092998A (en) Thermometers
Yeager et al. A review of cryogenic thermometry and common temperature sensors
CA1043124A (en) Fluid flow measuring system
US3517556A (en) Resistive-type temperature-to-current transducer
US3377862A (en) Electronic clinical thermometer
US3211001A (en) Temperature sensing device
Sample et al. Instrumentation and methods for low temperature measurements in high magnetic fields
US3420104A (en) Temperature measuring apparatus using semiconductor junction
US3916691A (en) Electrically actuated cold junction compensating device
US3036464A (en) Electronic thermometer
US3052124A (en) Linearizing circuit for resistance thermometer
US4448078A (en) Three-wire static strain gage apparatus
US3934476A (en) Linear telethermometer
USRE27458E (en) Solid state temperature measuring device
US3413853A (en) Zener diode temperature meter
US3076339A (en) Thermometer
US3531990A (en) Wheatstone bridge for making precise temperature measurements
US2974279A (en) Voltage compensated resistance bridge
US3534809A (en) Temperature measuring devices
US3831042A (en) Temperature compensation circuit for sensor of physical variables such as temperature and pressure
US3230772A (en) Electrical measurement of a physical quantity
US3440536A (en) Passive circuit including a thermistor for providing high level voltage variations in response to low level current variations