Claims
- 1. A method for determining physical characteristics of a medium comprising the steps of
- predetermining the thermal conductivity of a heating means as a function of temperature, said heating means having a predetermined resistance versus temperature relationship;
- immersing said heating means in said medium;
- determining the reference temperature of said medium when said medium is unheated;
- applying power to said heating means sufficiently rapidly to heat said means to a volume mean temperature above said reference temperature so that the power necessary to maintain said volume mean temperature varies as a function of time;
- determining the time varying relationship between the power required to maintain said heating means at said volume mean temperature after said temperature has been reached and the time during which said power is being applied thereto;
- determining the temperature difference between said volume mean temperature and said reference temperature and determining the resistance of said heating means at said volume mean temperature;
- determining the thermal conductivity of said medium as a function of said temperature difference, of the resistance of said heating means at said volume mean temperature, of said applied power in accordance with said time varying power and time relationship, of said predetermined thermal conductivity of said heating means, and of at least one characteristic dimension of said heating means in accordance with a thermal model of said heating means and said medium in which it is immersed wherein said heating means is treated as a distributed thermal mass and wherein heat conduction occurs in a coupled thermal system which comprises both the heating means and the adjacent region of said medium which surrounds said heating means.
- 2. A method in accordance with claim 1 wherein said reference temperature is determined over a relatively short time period over which it remains substantially constant and further including the steps of
- maintaining said volume mean temperature at a fixed, predetermined value above said reference temperature, said time varying power and time relationship being determined in terms of the relationship between the square of the voltage applied to said heating means and the inverse square root of the time during which said voltage is being applied;
- determining a first characteristic .GAMMA. of said relationship representing the value of the power per unit volume generated by the heating means at a time t effectively equivalent to an infinite time period following the application of said power to said heating means;
- and further wherein said thermal conductivity of said medium is determined in accordance with the expression: ##EQU15## where k is the thermal conductivity of said medium, .DELTA.T is the said fixed volume mean temperature difference, a is the radius of a spherical heating means having a volume equivalent to the actual volume of said heating means, and k.sub.b is said predetermined thermal conductivity of said heating means.
- 3. A method in accordance with claim 2 wherein the step of determining said reference temperature includes the steps of
- measuring the voltage at said heating means in its unheated state;
- determining the current through said heating means in its unheated state;
- determining the resistance of said heating means in its unheated state; and
- determining said reference temperature in accordance with the said predetermined resistance versus temperature relationship of said heating means.
- 4. A method in accordance with claim 3 wherein the step of maintaining said volume mean temperature at said fixed value further includes the steps of
- preselecting a fixed value for said temperature difference;
- determining said volume mean temperature from said reference temperature and said preselected fixed temperature difference;
- determining the resistance of said heating means at said volume mean temperature in accordance with said predetermined resistance versus temperature relationship; and
- maintaining the resistance of said heating means at a substantially constant value equal to said determined resistance whereby said volume mean temperature remains at a substantially constant value.
- 5. A method in accordance with claim 2 wherein said time varying relationship between the square of the voltage V.sub.h.sup.2 and the inverse square root of the time t.sup.-1/2 is a substantially linear relationship of the form V.sub.h.sup.2 (t) = m.sub.1 + m.sub.2 t.sup.-1/2 ;
- and further wherein said first characteristic .GAMMA. is determined in accordance with the expression: ##EQU16##
- 6. A method in accordance with claim 2 and further including the steps of
- predetermining the thermal diffusivity of said heating means;
- determining a second characteristic .beta. representing the slope of the time varying relationship between the square of the voltage v.sub.h.sup.2 and the inverse square root of the time t.sup.-1/2 at a time relatively shortly after the time at which said power is applied;
- predetermining the non-dimensional relationship between the expression .beta..sqroot..alpha..sub.b /.GAMMA.a wherein .alpha..sub.b is the predetermined thermal diffusivity of said heating means; the expression k.sub.m /k.sub.b, wherein k.sub.m is the thermal conductivity of said medium with no fluid flowing therein; and the expression .alpha..sub.b /.alpha..sub.m where .alpha..sub.m is thermal diffusivity of any medium which is to be determined;
- determining the actual value of .beta..sqroot..alpha..sub.b /.GAMMA.a and k.sub.m /k.sub.b at said volume mean temperature and further determining the value of .alpha..sub.b /.alpha..sub.m in accordance with said predetermined non-dimensional relationship; and
- determining the thermal diffusivity .alpha..sub.m of said medium in accordance with the determined value of .alpha..sub.b /.alpha..sub.m.
- 7. A method in accordance with claim 6 wherein said time varying relationship between the square of the voltage V.sub.h.sup.2 and the inverse square root of time t.sup.-1/2 is a substantially linear relationship of the form V.sub.h.sup.2 (t) = m.sub.1 + m.sub.2 t.sup.-1/2 ;
- and further wherein said first characteristic .GAMMA. is determined in accordance with the expression: ##EQU17## said second characteristic .beta. is determined in accordance with the expression: ##EQU18##
- 8. A method in accordance with claim 1 wherein said reference temperature varies with time over a relatively long time period and further including the steps of
- determining said reference temperature value over said time period;
- maintaining said volume mean temperature at a fixed, predetermined value, said fixed value being greater than said reference temperature over said time period;
- determining the time-varying temperature difference between said fixed volume mean temperature and said time-varying reference temperature;
- determining the fixed value of the resistance of said heating means at said volume mean temperature; and
- determining the thermal conductivity of said medium over said time period in accordance with the expression ##EQU19## where k(t) is the thermal conductivity of said medium, .DELTA.T is said temperature difference, R.sub.h is the said fixed resistance of said heating means at said volume mean temperature, a is the radius of a spherical heating means having a volume equivalent to the actual volume of said heating means, V.sub.h (t) is the voltage at said heating means where said power is applied, and k.sub.b is said predetermined thermal conductivity of said heating means.
- 9. A method in accordance with claim 8 wherein the step of determining said reference temperature includes the steps of
- immersing a temperature sensing means in said medium at a region sufficiently remote from the immersed heating means so that the temperature sensed by said sensing element is not affected by the raised temperature of said heating means, said sensing means having a predetermined resistance versus temperature relationship;
- determining over said time period the voltage at said sensing means and the current through said sensing means;
- determining the reference temperature sensed by said sensing means over said time period in accordance with the said predetermined resistance versus temperature relationship thereof.
- 10. A method in accordance with claim 9 wherein the steps thereof are first performed when no fluid is flowing in said medium to determine the intrinsic thermal conductivity k.sub.m of said medium and said steps are further performed over said time period when a fluid having a predetermined heat capacity is flowing in said medium to determine the effective thermal conductivity k.sub.eff (t) of said medium;
- and further including the steps of
- predetermining the heat capacity C.sub.b of said fluid;
- determining the ratio of k.sub.eff (t)k.sub.m over said time period; and
- determining the rate of flow .omega.(t) of said fluid in said medium in accordance with the expression: ##EQU20## where .omega.(t) is measured in terms of the mass of fluid per unit volume of the medium per unit time.
- 11. A method in accordance with claim 1 wherein said reference temperature varies with time over a relatively long time period and further including the steps of
- determining said reference temperature over said time period;
- determining the said volume mean temperature over said time period as a function of said reference temperature and a preselected fixed value of said temperature difference;
- maintaining the resistance of said heating means over said time period at a value such as to maintain the temperature difference between said volume mean temperature and said reference temperature at said preselected fixed value, said resistance varying as a function of time;
- determining the thermal conductivity k(t) of said medium over said time period in accordance with the expression: ##EQU21## where .DELTA.T is said temperature difference, R.sub.h (t) is said resistance of said heating means at said volume mean temperature, a is the radius of a spherical heating means having a volume equivalent to the actual volume of said heating means, V.sub.h (t) is the voltage at said heating means when said power is applied and k.sub.b is the predetermined thermal conductivity of said heating means.
- 12. A method in accordance with claim 11 wherein the step of determining said reference temperature includes the steps of
- immersing a temperature sensing means in said medium at a region sufficiently remote from the immersed heating means so that the temperature sensed by said sensing element is not affected by the raised temperature of said heating means, said sensing means having a predetermined resistance versus temperature relationship;
- determining over said time period the voltage at said sensing means and the current through said sensing means;
- determining the reference temperature sensed by said sensing means over said time period in accordance with the said predetermined resistance versus temperature relationship thereof.
- 13. A method in accordance with claim 12 wherein the steps thereof are first performed when no fluid is flowing in said medium to determine the intrinsic thermal conductivity k.sub.m of said medium and said steps are further performed over said time period when a fluid having a predetermined heat capacity is flowing in said medium to determine the effective thermal conductivity k.sub.eff (t) of said medium;
- and further including the steps of
- predetermining the heat capacity C.sub.b of said fluid;
- determining the ratio of k.sub.eff (t)/k.sub.m over said time period; and
- determining the rate of flow .omega.(t) of said fluid in said medium in accordance with the expression: ##EQU22## where .omega.(t) is measured in terms of the mass of the fluid per unit volume of the medium per unit time.
- 14. A method in accordance with claim 1 wherein said reference temperature varies with time over a relatively long time period and further including the steps of
- immersing a temperature sensing means in said medium at a region sufficiently remote from the immersed heating means so that the temperature sensed by said sensing element is not affected by the raised temperature of said heating means, said sensing means having a predetermined resistance versus temperature relationship;
- determining the resistance of said sensing means over said time period;
- determining the reference temperature of said sensing means over said time period;
- determining the desired resistance of said heating means over said time period as a function of the resistance of said sensing means and of a preselected fixed value of the resistance difference between the resistances of said sensing means and said heating means;
- maintaining the resistance of said heating means at said desired resistance value over said time period so that said resistance difference remains at said preselected fixed value, the resistance of said heating means varying as a function of time;
- determining the mean temperature of said heating means over said time period at the said desired resistance value of said heating means, said mean temperature varying as a function of time;
- determining the temperature difference between said mean temperature and said reference temperature over said time period, said temperature difference varying as a function of time;
- determining the thermal conductivity k(t) of said medium over said time period in accordance with the expression; ##EQU23## where .DELTA.T(t) is said temperature difference, R.sub.h (t) is said resistance of said heating means at said mean temperature, a is the radius of a spherical heating means having a volume equivalent to the actual volume of said heating means, V.sub.h (t) is the voltage at said heating means when said power is applied and k.sub.b is the predetermined thermal conductivity of said heating means.
- 15. A method in accordance with claim 14 wherein the step of determining said reference temperature includes the steps of
- immersing a temperature sensing means in said medium at a region sufficiently remote from the immersed heating means to that the temperature sensed by said sensing element is not affected by the raised temperature of said heating means, said sensing means having a predetermined resistance versus temperature relationship;
- determining over said time period the voltage at said sensing means and the current through said sensing means;
- determining the reference temperature sensed by said sensing means over said time period in accordance with the said predetermined resistance versus temperature relationship thereof.
- 16. A method in accordance with claim 15 wherein the steps thereof are first performed when no fluid is flowing in said medium to determine the intrinsic thermal conductivity k.sub.m of said medium and said steps are further performed over said time period when a fluid having a predetermined heat capacity is flowing in said medium to determine the effective thermal conductivity k.sub.eff (t) of said medium;
- and further including the steps of
- predetermining the heat capacity C.sub.b of said fluid;
- determining the ratio of k.sub.eff (t)/k.sub.m over said time period; and
- determining the rate of flow of said fluid in said medium in accordance with the expression: ##EQU24## where .omega.(t) is measured in terms of the mass of the fluid per unit volume of medium per unit time.
- 17. Apparatus for determining physical characteristics of a medium comprising
- means immersed in said medium for sensing the reference temperature of said medium when said medium is unheated;
- means immersed in said medium for heating said medium, said heating means having a predetermined thermal conductivity, a predetermined thermal diffusivity and a predetermined characteristic dimension;
- means for applying power to said heating means sufficiently rapidly to raise the temperature of said heating means to a volume mean temperature above said reference temperature so that the power necessary to maintain said volume mean temperature varies as a function of time;
- data processing means for determining the temperature difference between said volume mean temperature and said reference temperature, for determining the resistance of said heating means at said volume mean temperature and for determining the time varying relationship between the power required to maintain said heating means at said volume mean temperature after said temperature has been reached and the time during which said power is being applied thereto;
- said data processing means further being responsive to said temperature difference, said heating means resistance, said applied power in accordance with said time varying power and time relationship, said predetermined thermal conductivity of said heating means, and said predetermined characteristic dimension of said heating means for determining the thermal conductivity of said medium in accordance with a thermal model of said heating means and said medium wherein said heating means is treated as a distributed thermal mass and wherein heat conduction occurs in a coupled thermal system which comprises both the heating means and the adjacent region of said medium which surrounds said heating means.
- 18. Apparatus in accordance with claim 17 wherein said sensing means and said heating means comprises a single element capable of sensing the temperature of said medium and of heating said medium.
- 19. Apparatus in accordance with claim 18 wherein said single element is a thermistor bead element.
- 20. Apparatus in accordance with claim 18 and further including
- volume means for maintaining said mean temperature at a fixed, predetermined value above said reference temperature, said reference temperature being determined and said volume mean temperature being maintained over a relatively short time interval during which said reference temperature remains substantially constant whereby said temperature difference and the resistance of said heating means also remain substantially constant.
- 21. Apparatus in accordance with claim 20 and said data processing means further includes
- means for determining said time varying power and time relationship in terms of the relationship between the square of the voltage applied to said heating means and the inverse square root of the time during which said voltage is being applied;
- means for determining a first characteristic .GAMMA. of said relationship representing the value of the power per unit volume generated by the heating means at a time t effectively equivalent to an infinite time period following the application of said power to said heating means; and
- means for determining the thermal conductivity of said medium in accordance with the expression: ##EQU25## where k is said thermal conductivity of said medium, .DELTA.T is said mean temperature difference, a is the radius of a spherical heating means having a volume equivalent to the actual volume of said heating means and k.sub.b is said predetermined thermal conductivity of said heating means.
- 22. Apparatus in accordance with claim 21 wherein said time varying relationship
- between the square of the voltage V.sub.h.sup.2 and the inverse square root of the time t.sup.-1/2 is a substantially linear relationship of the form V.sub.h.sup.2 (t) = m.sub.1 + m.sub.2 t.sup.-1/2 ; and
- said first characteristic determining means includes means for determining said first characteristic .GAMMA. in accordance with the expression ##EQU26## where R.sub.h is the resistance of said heating means at said volume mean temperature.
- 23. Apparatus in accordance with claim 22 wherein said data processing system further includes
- means for determining a second characteristic .beta. in accordance with the expression: ##EQU27## memory storage means for storing the non-dimensional predeterminable relationship between the expression .beta. .sqroot..alpha..sub.b /.GAMMA.a wherein .alpha..sub.b is the predetermined thermal diffusivity of said heating means; the expression k.sub.m /k.sub.b, wherein k.sub.m is the thermal conductivity of said medium with no fluid flowing therein; and the expression .alpha..sub.b /.alpha..sub.m is the thermal diffusivity of any medium which is to be determined; and
- means for determining the actual value of said expression .beta. .sqroot..alpha..sub.b /.GAMMA.a and k.sub.m /k.sub.b and for determining the actual value of .alpha..sub.b /.alpha..sub.m from said memory storage means; and
- means responsive to the value of .alpha..sub.b /.alpha..sub.m for determining the thermal diffusivity .alpha..sub.m of said medium.
- 24. Apparatus in accordance with claim 17 wherein said sensing means and said heating means comprise
- a first heating element immersed at a first region of said medium; and
- a second element immersed at a second region of said medium sufficiently remote from said first region as to be not affected by the heating of said first element.
- 25. Apparatus in accordance with claim 24 wherein said first and second elements are thermistor bead elements.
- 26. Apparatus in accordance with claim 24 for use over a relatively long time period during which said reference temperature varies with time and wherein
- said second element determines said reference temperature over said time period; and further including
- means for maintaining said volume mean temperature and the resistance of said heating means at said volume mean temperature at fixed predetermined values over said time period during which said reference temperature varies whereby the temperature difference therebetween varies over said time period.
- 27. Apparatus in accordance with claim 26 wherein said data processing means determines the thermal conductivity of said medium over said time period in accordance with the expression: ##EQU28## where k(t) is said thermal conductivity, .DELTA.T(t) is said temperature difference, R.sub.h is the resistance of said heating means at said mean temperature, V.sub.h (t) is the voltage at said heating means as power is applied thereto, a is the radius of a spherical heating means having a volume equivalent to the actual volume of said heating means and k.sub.b is said predetermined thermal conductivity of said heating means.
- 28. Apparatus in accordance with claim 27 wherein said date processing system includes
- means for determining the intrinsic thermal conductivity k.sub.m of said medium when no fluid is flowing therein;
- means for determining the effective thermal conductivity k.sub.eff (t) of said medium when a fluid having a predetermined heat capacity is flowing therein;
- means for determining the ratio of k.sub.eff (t)/k.sub.m over said time period; and
- means for determining the rate of flow .omega. (t) of said fluid in said medium in accordance with the expression: ##EQU29## where C.sub.b is said predetermined heat capacity.
- 29. Apparatus in accordance with claim 24 and for use over a relatively long time period during which said reference temperature varies with time wherein
- said second element determines said reference temperature over said time period; and further including
- means for determining the said volume mean temperature over said time period as a function of said reference temperature and a preselected fixed value of said temperature difference;
- means for maintaining the resistance of said first element over said time period at a value such as to maintain the temperature difference between said volume mean temperature and said reference temperature at said preselected fixed value, said resistance varying as a function of time; and
- means for determining the thermal conductivity of said medium over said time period in accordance with the expression: ##EQU30## where .DELTA.T is said temperature difference, R.sub.h (t) is said resistance of said heating means at said volume mean temperature, a is the radius of a spherical heating means having a volume equivalent to the actual volume of said first element, V.sub.h (t) is the voltage at said first element when power is applied thereto, and k.sub.b is the predetermined thermal conductivity of said first element.
- 30. Apparatus in accordance with claim 29 wherein said data processing system includes
- means for determining the intrinsic thermal conductivity k.sub.m of said medium when no fluid is flowing therein;
- means for determining the effective thermal conductivity k.sub.eff (t) of said medium when a fluid having a predetermined heat capacity is flowing therein;
- means for determining the ratio of k.sub.eff (t)/k.sub.m over said time period; and
- means for determining the rate of flow .omega. (t) of said fluid in said medium in accordance with the expression: ##EQU31## where C.sub.b is said predetermined heat capacity.
- 31. Apparatus in accondance with claim 24 for use over a relatively long time period during which said reference temperature varies with time wherein
- said second element determines said reference temperature over said time period; and further including
- means for determining the resistance of said second element over said time period;
- means for determining the desired resistance of said first element over said time period as a function of the resistance of said second element and of a preselected fixed value of the resistance difference between the resistances of said second and said first elements;
- means for maintaining the resistance of said first element at said desired resistance so that said resistance difference is maintained at said predetermined fixed value, the resistance of said first element varying as a function of time;
- means for determining the volume mean temperature of said first element over said time period at said desired resistance of said first element, said volume mean temperature varying as a function of time;
- means for determining the temperature difference between said volume mean temperature and said reference temperature over said time period, said temperature difference varying as a function of time;
- means for determining the thermal conductivity of said medium over said time period in accordance with the expression: ##EQU32## where .DELTA.T(t) is said temperature difference, R.sub.h (t) is said resistance of said heating means at said volume mean temperature, a is the radius, of a spherical heating means having a volume equivalent to the actual volume of said first element, V.sub.h (t) is the voltage at said first element when power is applied thereto, and k.sub.b is the predetermined thermal conductivity of said first element.
- 32. Apparatus in accordance with claim 31 wherein said data processing system includes
- means for determining the intrinsic thermal conductivity k.sub.m of said medium when no fluid is flowing therein;
- means for determining the effective thermal conductivity k.sub.eff (t) of said medium when a fluid having a predetermined heat capacity is flowing therein;
- means for determining the ratio of k.sub.eff (t)/k.sub.m over said time period; and
- means for determining the rate of flow .omega. (t) of said fluid in said medium in accordance with the expression: ##EQU33## where C.sub.b is said predetermined heat capacity.
Government Interests
The invention herein described was made in the course of work performed under a grant from the National Institute of Health.
US Referenced Citations (7)
Non-Patent Literature Citations (2)
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