Method and Apparatus for Determining Motor Temperature, and Storage Medium
US-2020119625-A1 · Apr 16, 2020 · US
US11293986B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11293986-B2 |
| Application number | US-201916566338-A |
| Country | US |
| Kind code | B2 |
| Filing date | Sep 10, 2019 |
| Priority date | Apr 25, 2019 |
| Publication date | Apr 5, 2022 |
| Grant date | Apr 5, 2022 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
A system for thermal management of an electric motor, uses an augmented thermal circuit model of the electric motor, which relates temperatures of a set of nodes of the thermal circuit model with the temperature measurements at a first subset of nodes and heat losses of heat sources at a second subset of nodes, for joint estimation of the temperatures at the entire set of nodes and values of the heat losses in the second subset of nodes. The system solves the joint estimation using an estimator/observer. The system outputs one or combination of the values of the temperatures of the set of nodes and the values of the heat losses.
Opening claim text (preview).
The invention claimed is: 1. A system for a thermal management of an electric motor, comprising: a memory configured to store an augmented thermal circuit model of the electric motor relating temperatures of a set of nodes of the thermal circuit model with temperature measurements at a first subset of the set of nodes and values of heat losses of heat sources at a second subset of the set of nodes, wherein each node in the thermal circuit model represents a spatial location of the electric motor, wherein locations of first subset of nodes and locations of the second subset of nodes are predetermined, while values of the temperatures at the first subset of nodes and values of heat losses at the second subset of nodes are unknown, such that the temperatures of the set of nodes and the values of the heat losses are state variables of the augmented thermal circuit model, and wherein a number of temperature measurements is equal or greater than a number of heat sources, wherein a rank of a thermal management matrix modeling a combination of thermal capacitances of the augmented thermal circuit model, thermal resistances in the augmented thermal circuit model, the locations of the first subset of nodes and the locations of the second subset of nodes of the augmented thermal circuit model not greater than a sum of the number nodes in the set of nodes and the number of heat sources; an input interface configured to accept temperature measurements at the locations of the first subset of nodes; a processor configured to jointly estimate the values of the temperatures at the set of nodes and the values of the heat losses in the second subset of nodes by solving a joint estimation problem using the augmented thermal circuit model populated with the temperature measurements for the first subset of nodes, wherein, in the joint estimation, the values of the temperatures at the set of nodes and the values of the heat losses in the second subset of nodes are interdependent on each other; and an output interface configured to output one or combination of the values of the temperatures of the set of nodes and the values of the heat losses in the second subset of nodes. 2. The system of claim 1 , wherein in the augmented thermal circuit model a heat source is mapped to locations of multiple nodes, such that a value of the heat loss determined by the joint estimation is distributed across the locations of multiple nodes. 3. The system of claim 1 , wherein the first subset of nodes is selected such that a product of a temperature sensor matrix, an inverse of a thermal resistance matrix and heat source matrix approximates an identity matrix. 4. The system of claim 1 , wherein the locations of the first subset of nodes include only locations at a surface of stationary parts of the electrical motor resulting in an ill-conditioned joint estimation problem, and wherein the processor jointly estimates the set of temperatures and the values of the heat loses subject to constraints transforming the ill-conditioned joint estimation problem into a well-conditioned joint estimation problem solved by the processor. 5. The system of claim 4 , wherein the constraints transforming the ill-conditioned joint estimation problem into the well-conditioned joint estimation problem include a constraint on a total value of heat losses during the operation of the electric motor. 6. The system of claim 4 , wherein the constraints transforming the ill-conditioned joint estimation problem into the well-conditioned joint estimation problem include one or combination of stator winding losses, a total electric input power, a total output torque. 7. The system of claim 1 , wherein the input interface is configured to accept measurements of parameters of operation of the electric motor, wherein the memory stores a mapping between different values of the parameters of operation of the electric motor and different values of the heat losses at the second subset of nodes, and wherein the processor is configured to determine an initial values of the heat losses by submitting the measurements of parameters of operation of the electric motor to the mapping; initialize the joint estimation problem with the initial values of the heat losses; and solve the joint estimation problem to produce one or combination of the values of temperature for the entire set of nodes and the values of the heat loses for the second subset of nodes. 8. The system of claim 7 , wherein the measurements of parameters of operation of the electric motor are received from one or combination of a voltage sensor, a current sensor, and a rotor speed sensor, and wherein the temperature measurements are received from a set of temperature sensors arranged to measure temperature at the first set of locations. 9. The system of claim 1 , wherein the processor solves the joint estimation problem using an observer including one or combination of Kalman filter, a PD observer, an adaptive observer, an L1 adaptive observer, and a Luenberger observer. 10. The system of claim 9 , wherein the observer operates on a thermal management matrix to iteratively estimate the values of the temperatures at the set of nodes and the values of the heat losses in the second subset of nodes. 11. The system of claim 1 , further comprising: a recovery controller configured to control the electric motor based on estimations outputted by the output interface. 12. A method for a thermal management of an electric motor, wherein the method uses a processor coupled to a memory storing an augmented thermal circuit model of the electric motor relating temperatures of a set of nodes of the thermal circuit model with temperature measurements at a first subset of the set of nodes and values of heat losses of heat sources at a second subset of the set of nodes, wherein each node in the thermal circuit model represents a spatial location of the electric motor, wherein locations of first subset of nodes and the second subset of nodes are predetermined, while values of the temperatures at the first subset of nodes and values of heat losses at the second subset of nodes are unknown, such that the temperatures of the set of nodes and the values of the heat losses are state variables of the augmented thermal circuit model, and wherein a number of temperature measurements is equal or greater than a number of heat sources, wherein a rank of a thermal management matrix modeling a combination of thermal capacitances of the augmented thermal circuit model, thermal resistances in the augmented thermal circuit model, the locations of the first subset of nodes and the locations of the second subset of nodes of the augmented thermal circuit model not greater than a sum of the number nodes in the set of nodes and the number of heat sources, the processor is coupled with stored instructions when executed by the processor carry out steps of the method, comprising: accepting temperature measurements at the locations of the first subset of nodes; jointly estimating the values of the temperatures at the set of nodes and the values of the heat losses in the second subset of nodes by solving a joint estimation problem using the augmented thermal circuit model populated with the temperature measurements for the first subset of nodes, wherein, in the joint estimation, the values of the temperatures at the set of nodes and the values of the heat losses in the second subset of nodes are interdependent on each other; and outputting one or combination of the values of the temperatures of the set of nodes and the values of the heat losses in the second subset of nodes. 13. The method of claim 12 , wherein the locations of th
Estimation or adaptation of motor parameters, e.g. rotor time constant, flux, speed, current or voltage · CPC title
in operation · CPC title
using finite element methods [FEM] or finite difference methods [FDM] · CPC title
Investigating presence of flaws · CPC title
Circuits effecting compensation of thermal inertia; Circuits for predicting the stationary value of a temperature · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.