Virtual sensing system
A method of predicting temperature of at least one location in a fluid flow system that has a heating system for heating fluid. The method includes obtaining a mass flow rate of fluid flow of the fluid flow system, obtaining at least one of a fluid outlet temperature and a fluid inlet temperature of a heater of the heating system, obtaining power provided to the heater, and calculating temperature at the at least one location based on a model of the fluid flow system and the obtained mass flow rate, fluid outlet temperature, and fluid inlet temperature.
1. A method of predicting one or more temperatures of at least one location in a fluid flow system having a heating system for heating a fluid, the method comprising:
obtaining a mass flow rate of a fluid flow of the fluid flow system;
obtaining at least one of a fluid outlet temperature and a fluid inlet temperature at a heater of the heating system;
obtaining power provided to the heater; and
calculating the one or more temperatures of the at least one location based on a model of the fluid flow system, wherein the model is based on the obtained mass flow rate and the fluid outlet and inlet temperatures.
2. The method of claim 1 , wherein the at least one location is on a resistive heating element of the heater.
3. The method of claim 1 , wherein the one or more temperatures are one of a steady-state temperature and a transient temperature.
4. The method of claim 1 , further comprising providing the power to the heater based on the one or more temperatures of the at least one location in the fluid flow system.
5. The method of claim 1 , wherein the mass flow rate is obtained based on a parameter that comprises a measured manifold absolute pressure (MAP), a combination of an inlet air mass flow rate and fuel consumption, or a combination thereof.
6. The method of claim 1 , wherein the fluid outlet temperature is based on an outlet temperature of a resistive heating element of the heater, and wherein the one or more temperatures are based on the outlet temperature of the resistive heating element of the heater.
7. The method of claim 6 , wherein the outlet temperature of the resistive heating element is calculated based on the following equation:
T
out
,
1
=
2
·
m
.
·
C
P
·
T
i
n
,
1
+
h
·
A
s
(
2
T
s
-
T
i
n
,
1
)
2
·
m
.
·
C
P
·
h
·
A
s
where:
A s is a sheath surface area of the resistive heating element,
C p is a specific heat of air at constant pressure,
h is a convective heat transfer coefficient,
{dot over (m)} the mass flow rate,
T out,1 is the outlet temperature of the resistive heating element,
T in,1 is an inlet temperature of the resistive heating element, and
T s is a sheath temperature.
8. The method of claim 1 , wherein the model is configured to modify a controlled variable based on projected conditions.
9. The method of claim 8 , wherein the controlled variable is the power provided to the heater of the heater system.