IP Library Granted Patent US 12663321
Granted Patent B2
US 12663321 · App. 18/312,888 · Granted Jun 23, 2026

System and method for non-invasive determining of a fluid temperature

Inventors: Joerg Gebhardt (Mainz, DE); Paul Szasz (Plankstadt, DE); Guruprasad Sosale (Munich, DE)
Assignee: ABB Schweiz AG
G01K13/02G01K1/143G01K7/427
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Quick Facts
Patent No.
US 12663321
App. No.
18/312,888
Filed
May 5, 2023
Granted
Jun 23, 2026
Kind
B2
Art Unit
2855
USPC
374/147
Abstract

A system for non-invasive determining of a fluid temperature of a fluid in a pipe, comprising a surface temperature sensor disposed at a pipe surface of the pipe; a reference temperature sensor disposed outside of the pipe; a data interface, configured for receiving nominal process parameters; a process parameter sensor, configured for determining at least one measured process parameter, wherein the at least one measured process parameter relates to measured parameters of a process that relates to the fluid in the pipe; and a process model, configured for determining a calculated fluid temperature of the fluid in the pipe by using the determined surface temperature, the determined reference temperature, the received nominal process parameters and the at least one measured process parameter.

Claims (29)

1 . A system for non-invasive determining of a fluid temperature of a fluid in a pipe, comprising:

a surface temperature sensor disposed at a pipe surface of the pipe, the surface temperature sensor arranged and configured for determining a surface temperature of the pipe surface;

a reference temperature sensor disposed outside of the pipe and configured for determining a reference temperature of the pipe;

a data interface configured for receiving nominal process parameters, wherein the nominal process parameters relate to nominal parameters of a process that relates to the fluid in the pipe;

a process parameter sensor configured for determining at least one measured process parameter, wherein the at least one measured process parameter relates to measured parameters of the process that relates to the fluid in the pipe; and

a process model configured for determining a calculated fluid temperature of the fluid in the pipe by using the determined surface temperature, the determined reference temperature, the received nominal process parameters, and the at least one measured process parameter, wherein the at least one measured process parameter comprises a measured fluid velocity;

wherein the process model is further configured for:

determining at least one corrected measured process parameter including the measured fluid velocity by using the calculated fluid temperature; and

determining a corrected calculated fluid temperature by using the determined surface temperature, the determined reference temperature, the received nominal process parameters, and the at least one corrected measured process parameter.

2 . The system of claim 1 , wherein the process model is further configured for:

determining a Nußelt number of the fluid by using the at least one measured process parameter, wherein the Nußelt number depends on a Prandtl number of the fluid and a Reynolds number of the fluid, wherein the Prandtl number and the Reynolds number each depends on the at least one measured process parameter; and

determining the calculated fluid temperature by using the determined Nußelt number of the fluid.

3 . The system of claim 1 , wherein the nominal process parameters comprise at least one nominal pipe parameter and at least one fluid parameter, wherein the at least one nominal pipe parameter comprises a geometry of the pipe and/or a material of the pipe, wherein the at least one nominal fluid parameter comprises a nominal viscosity of the fluid, a nominal heat conductivity of the fluid, a nominal pressure of the fluid, and/or a nominal velocity of the fluid.

4 . The system of claim 1 , wherein the process parameter sensor comprises an invasive process parameter sensor.

5 . The system of claim 1 , wherein the process parameter sensor comprises a non-invasive process parameter sensor.

6 . The system of claim 1 , wherein the process model is further configured for selectively considering the at least one measured process parameter, wherein the selection is based on a user input relating to a demanded accuracy of the calculation of the process model or relating to an accuracy of the at least one measured process parameter, and/or based on a pressure within the pipe.

7 . The system of claim 1 , wherein the at least one measured process parameter comprises at least one of a measured fluid pressure, a measured fluid viscosity, a measured fluid composition, and/or a measured fluid heat conductivity.

8 . The system of claim 7 , wherein the process parameter sensor comprises a differential pressure flow sensor configured for determining the measured fluid pressure and the measured fluid velocity.

9 . The system of claim 1 , wherein the process parameter sensor comprises an integrated non-invasive process parameter sensor, wherein the non-invasive process parameter sensor is integrated into the surface temperature sensor.

10 . The system of claim 9 , wherein the surface temperature sensor comprises a clamping system that is configured for attaching the surface temperature sensor on a pipe surface of the pipe; and wherein the integrated non-invasive process parameter sensor is integrated into the clamping system.

11 . The system of claim 10 , wherein the integrated non-invasive process parameter sensor is integrated into the clamping system, the integrated non-invasive process parameter sensor including one or more of a strain gauge, a tensile force sensor, or a compressive force sensor.

12 . A method for non-invasive determining of a fluid temperature of fluid in a pipe, comprising:

determining a surface temperature of the pipe using a surface temperature sensor, wherein the surface temperature sensor is disposed at a pipe surface of the pipe;

determining, by a reference temperature sensor, a reference temperature of the pipe, wherein the reference temperature sensor is disposed outside of the pipe;

receiving, by a data interface, nominal process parameters, wherein the nominal process parameters relate to nominal parameters of a process that relates to the fluid in the pipe;

determining, by a process parameter sensor, at least one measured process parameter, wherein the at least one measured process parameter relates to measured parameters of a process that relates to the fluid in the pipe;

determining, by a process model, a calculated fluid temperature of the fluid in the pipe by using the measured surface temperature, the determined reference temperature, the determined nominal process parameters, and the at least one measured process parameter, wherein the at least one measured process parameter comprises a measured fluid velocity;

determining, by the process model, at least one corrected measured process parameter including the measured fluid velocity by using the calculated fluid temperature; and

determining, by the process model, a corrected calculated fluid temperature by using the determined surface temperature, the determined reference temperature, the received nominal process parameters, and the at least one corrected measured process parameter.