Vehicle braking systems and methods
US-9964167-B2 · May 8, 2018 · US
US2016138665A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016138665-A1 |
| Application number | US-201414540048-A |
| Country | US |
| Kind code | A1 |
| Filing date | Nov 13, 2014 |
| Priority date | Nov 13, 2014 |
| Publication date | May 19, 2016 |
| Grant date | — |
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A method of estimating brake pad wear includes determining required braking energy to be dissipated by a braking system as a fraction of total kinetic energy according to an energy partitioning model. The required braking energy is distributed to vehicle braking mechanisms according to a vehicle dynamics model. Rotor temperature of each brake rotor may be determined according to a rotor temperature model that utilizes the required braking energy and the distribution of the required braking energy, and determining brake pad wear of each brake pad according to a brake pad wear model that utilizes the rotor temperature and the distributed required braking energy. A first brake pad wear model is implemented under first operating conditions, and a second brake pad wear model under second operating conditions. The brake pad wear is indicated via a brake pad wear indicator output device. A vehicle has a controller that implements the method.
Opening claim text (preview).
1 . A method of estimating brake pad wear on a vehicle, the method comprising: determining, via an electronic controller, required braking energy to be dissipated by a braking system of the vehicle as a fraction of total kinetic energy of the vehicle according to an energy partitioning model; determining, via the electronic controller, a distribution of the required braking energy to multiple vehicle braking mechanisms on the vehicle according to a vehicle dynamics model; wherein each of the multiple vehicle braking mechanisms has a brake rotor and a brake pad; determining, via the electronic controller, rotor temperature of each brake rotor according to a rotor temperature model that utilizes the required braking energy and the distribution of the required braking energy; determining, via the electronic controller, brake pad wear of each brake pad according to a brake pad wear model; indicating the brake pad wear via a brake pad wear indicator output device; and wherein the energy partitioning model, the vehicle dynamics model, the rotor temperature model, and the brake pad wear model are representative of vehicle conditions when the rotor temperature is greater than a predetermined minimum rotor temperature, braking speed is greater than a predetermined minimum braking speed, and the required braking energy is greater than a predetermined minimum braking energy. 2 . The method of claim 1 , wherein the energy partitioning model, the vehicle dynamics model, the rotor temperature model and the brake pad model are utilized for said determining the required braking energy to be dissipated, determining the distribution of the required braking energy, determining the rotor temperature, and determining the brake pad wear, respectively, only when the predetermined minimum rotor temperature and the predetermined minimum braking speed are exceeded a predetermined number of times within a predetermined time period, or the braking energy exceeds the predetermined minimum braking energy for a predetermined minimum period of time. 3 . The method of claim 2 , wherein the energy partitioning model, the vehicle dynamics model, the rotor temperature model and the brake pad model are utilized for said determining the required braking energy to be dissipated, determining the distribution of the required braking energy, determining the rotor temperature, and determining the brake pad wear, respectively in response to operator selection even if the predetermined minimum rotor temperature and the predetermined minimum braking speed are not exceeded the predetermined number of times within the predetermined time period, and even if the braking energy does not exceed the predetermined minimum braking energy for the predetermined minimum period of time. 4 . The method of claim 2 , wherein an alternative brake pad wear model is utilized when the predetermined minimum rotor temperature and the predetermined minimum braking speed are not exceeded the predetermined number of times within the predetermined time period, and the braking energy does not exceed the predetermined minimum braking energy for the predetermined minimum period of time. 5 . The method of claim 1 , wherein the predetermined minimum rotor temperature is representative of vehicle operation in a first driving mode; wherein the rotor temperature model is representative of vehicle operation in a second driving mode; and wherein braking speeds and braking energy in the second driving mode are greater than braking speeds and braking energy in the first driving mode. 6 . The method of claim 5 , wherein the rotor temperature model used in the second driving mode includes a lumped capacitance model of rotor specific heat capacity with cooling coefficients less than cooling coefficients used in the first driving mode. 7 . The method of claim 1 , wherein the brake pad wear model determines an amount of linear wear of each brake pad per a predetermined amount of time by reference to stored linear wear data or by reference to a fitted linear wear equation. 8 . The method of claim 1 , wherein the energy partitioning model is based at least partially on gear ratio, vehicle speed, and braking energy. 9 . The method of claim 1 , wherein the vehicle dynamics model is based at least partially on lateral acceleration and longitudinal acceleration of the vehicle. 10 . The method of claim 1 , further comprising: receiving a sensor signal indicative of a predetermined amount of actual brake pad wear; comparing brake pad wear determined according to the brake pad wear model to the predetermined amount of actual brake pad wear; and revising the brake pad wear model wear based on the comparison to the predetermined amount of actual brake pad wear. 11 . A method of estimating brake pad wear on a vehicle, the method comprising: determining, via an electronic controller, brake pad wear according to a first brake pad wear model when an estimated brake rotor temperature is less than or equal to a predetermined minimum rotor temperature; and determining, via the electronic controller, brake pad wear according to a second brake pad wear model when the estimated brake rotor temperature is greater than the predetermined minimum rotor temperature; indicating the brake pad wear via a brake pad wear indicator output device. 12 . The method of claim 11 , wherein said determining brake pad wear according to the first brake pad wear model is only when braking speed is less than or equal to a predetermined minimum braking speed, and required braking energy is less than or equal to a predetermined minimum braking energy; and wherein said determining brake pad wear according to the second brake pad wear model is only when the braking speed is greater than the predetermined minimum braking speed, and the required braking energy is greater than the predetermined minimum braking energy. 13 . The method of claim 12 , wherein the second brake pad wear model is utilized only when the predetermined minimum rotor temperature and the predetermined minimum braking speed are determined to be exceeded a predetermined number of times within a predetermined time period, or the braking energy exceeds the predetermined minimum braking energy for a predetermined minimum period of time. 14 . The method of claim 13 , wherein the second brake pad wear model is further utilized when commanded by a vehicle operator even if the predetermined minimum rotor temperature and the predetermined minimum braking speed are not exceeded the predetermined number of times within the predetermined time period, and even if the braking energy does not exceed the predetermined minimum braking energy for the predetermined minimum period of time. 15 . The method of claim 11 , wherein the first brake pad wear model utilizes the estimated brake rotor temperature as determined according to a first rotor temperature model; and wherein the second brake pad wear model utilizes the estimated brake rotor temperature as determined according to a second rotor temperature model. 16 . The method of claim 15 , further comprising: determining, via the electronic controller, required braking energy to be dissipated by a braking system of the vehicle as a fraction of total kinetic energy of the vehicle according to an energy partitioning model; determining, via the electronic controller, a distribution of the required braking energy to multiple vehicle braking mechanisms on the vehicle according to a vehicle dynamics model; wherein each of the multiple vehicle braking systems has a brake rotor and a brake pad; wherein the second ro
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