US 11,835,582 B2
Secondary battery state estimation device
Toru Kitamura, Saitama (JP)
Assigned to HONDA MOTOR CO., LTD., Tokyo (JP)
Filed by HONDA MOTOR CO., LTD., Tokyo (JP)
Filed on Feb. 23, 2022, as Appl. No. 17/678,022.
Claims priority of application No. 2021-046618 (JP), filed on Mar. 19, 2021.
Prior Publication US 2022/0299571 A1, Sep. 22, 2022
Int. Cl. G01R 31/36 (2020.01); G01R 31/367 (2019.01); G01R 31/392 (2019.01); G01R 31/3842 (2019.01)
CPC G01R 31/3648 (2013.01) [G01R 31/367 (2019.01); G01R 31/3842 (2019.01); G01R 31/392 (2019.01)] 2 Claims
OG exemplary drawing
 
1. A secondary battery state estimation device, comprising;
a state measurer configured to measure, at predetermined time intervals, state variables including a terminal current and a terminal voltage of the secondary battery when in operation;
an internal resistance calculator configured td calculate internal resistance of the secondary battery, by using the state variables;
an estimated open-circuit-voltage (OCV) calculator configured to calculate an estimated OCV representing an estimated value of the terminal voltage in an opened state, by using the state variables and the internal resistance;
an estimated state-of-charge (SOC) calculator configured to calculate, from the estimated OCV, an estimated SOC representing an estimated value of a percentage of charge in the secondary battery, by using an SOC-OCV characteristic model representing a relationship between an SOC representing a percentage of charge in the secondary battery and an OCV representing the terminal voltage in the opened state;
a differential estimated SOC calculator configured to calculate a differential estimated SOC representing an amount of change, per unit time, in the estimated SOC, by using the estimated SOC;
an integrated terminal current calculator configured to calculate an integrated terminal current representing an integrated amount, per unit time, of the terminal current, by using the state variables; and
a state-of-health (SOH) calculator configured to calculate an SOH representing an electricity storage capacity in the secondary battery, by using the differential estimated SOC and the integrated terminal current,
a plurality of battery packs each at least including the secondary battery, the plurality of battery packs being coupled in parallel to each other;
a plurality of coupling switches respectively provided in a corresponding manner to the plurality of battery packs, the plurality of coupling switches being each configured to be switched between a coupled state and a decoupled state for supplying of electric power from each of the battery packs; and
a controller configured to control the plurality of coupling switches,
the controller controlling the plurality of coupling switches to switch only one of the plurality of coupling switches to the coupled state to sequentially update the SOC-OCV characteristic model in each of the plurality of battery packs,
wherein the SOH that the SOH calculator has calculated in a high SOC state where at least the estimated OCV is equal to or above a first threshold value is entered into an SOH estimation model used to estimate the SOH to update the SOH estimation model,
wherein
the state variables include a temperature relating to the secondary battery,
the secondary battery state estimation device includes:
a heat generation amount calculator configured to calculate an amount of heat generated in the secondary battery, by using the state variables; and
a minimum OCV calculator configured to regard the estimated OCV at a point of time when the amount of heat generated has reached a predetermined threshold value as a minimum OCV representing a minimum value of the terminal voltage in the opened state, and
the minimum OCV is entered into the SOC-OCV characteristic model to update the SOC-OCV characteristic model.