IP Library Granted Patent US 12,728,867
Granted Patent B2
US 12,728,867 · App. 19/235,016 · Granted Sep 8, 2026

Method for managing a gear shift in a gearbox

Inventor: Julien Payen (Tournefeuille, FR)
Assignee: SCHAEFFLER TECHNOLOGIES AG & CO. KG
B60W30/19B60W10/06B60W10/11B60W2510/0657B60W2510/10B60W2710/0666B60W2710/1005F16H63/50
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Quick Facts
Patent No.
US 12,728,867
App. No.
19/235,016
Granted
Sep 8, 2026
Kind
B2
Abstract

A control method for managing an upshift in a gearbox, the shift being intended to transition from a starting gear to a target gear, without declutching, the gearbox comprising a selection shaft movable between a first position corresponding to the starting gear and a second position corresponding to the target gear, an angular position sensor providing a voltage value corresponding to a current angular position of the selection shaft, the method comprising: iteratively acquiring the voltage value corresponding to the angular position of the selection shaft; when the current voltage value ( 61 ) becomes greater than a first predetermined threshold (VS 1 ), then triggering a reduction in the engine torque; when the current voltage value increases and becomes greater than a second predetermined threshold (VS 2 ), then cancelling the reduction in engine torque.

Claims (16)

1 . A control method for managing an upshift in a gearbox of a movable vehicle having an engine, the shift being intended to transition from a starting gear to a target gear,

wherein the gearbox comprises a selection shaft ( 1 ) movable between a first stable position (θ 1 ) corresponding to the starting gear and a second stable position (θ 2 ) corresponding to the target gear,

wherein the gearbox comprises an angular position sensor ( 2 ) for the selection shaft providing a voltage value ( 61 ) corresponding to a current angular position of the selection shaft, the method comprising:

an acquisition step, in which the voltage value corresponding to the angular position of the selection shaft is acquired iteratively;

an engine torque reduction step, in which, when, starting from a first reference value (V 1 ) corresponding to the first stable position (θ 1 ) of the selection shaft, the current voltage value increases and becomes greater than a first predetermined threshold (VS 1 ), then a reduction in the engine torque is triggered, with the first predetermined threshold (VS 1 ) exceeding the first reference value (V 1 ) by a first difference (E 1 );

an engine torque restoration step, in which, when the current voltage value increases and becomes greater than a second predetermined threshold (VS 2 ), then the engine torque reduction is cancelled and the requested engine torque is applied;

with the second predetermined threshold (VS 2 ) being separated by a second difference (E 2 ) and being below a second reference value (V 2 ) corresponding to the second stable position (θ 2 ) of the selection shaft;

wherein the first difference (E 1 ) ranges between 5% and 15% of the difference between the second reference value (V 2 ) and the first reference value (V 1 ).

2 . The method as claimed in claim 1 , wherein, when, after the engine torque reduction step has been carried out, the current voltage value does not reach the second predetermined threshold (VS 2 ) and once again returns to the first predetermined threshold (VS 1 ), then the engine torque reduction is cancelled and the requested engine torque is applied.

3 . The method as claimed in claim 1 , wherein the second difference (E 2 ) ranges between 5% and 15% of the difference between the second reference value (V 2 ) and the first reference value (V 1 ).

4 . The method as claimed in claim 1 , wherein the acquisition step comprises an acquisition frequency of at least 100 Hz.

5 . The method as claimed in claim 1 , wherein the first stable position (θ 1 ) of the selection shaft either corresponds to the second gear ratio, or to the third gear ratio, or to the fourth gear ratio, and the first reference value (V 1 ) respectively corresponds to the second, third and fourth gear voltages (VR 2 , VR 3 , VR 4 ).

6 . The method as claimed in claim 5 , wherein at least the second, third and fourth gear voltages are taken from a calibration table and are adjusted by learning.

7 . A computer configured to implement the method as claimed in claim 1 .

8 . A computer program product, stored on a non-transient storage medium, comprising instructions which, when they are implemented by at least one processor of a computer, execute the method as claimed in claim 1 .

9 . A control system for managing an upshift in a gearbox of a movable vehicle having an engine, the gearbox comprising a selection shaft ( 1 ), an angular position sensor ( 2 ) for the selection shaft providing a voltage value corresponding to a current angular position of the selection shaft, and a gearbox gear shift lever ( 3 ), the control system comprising a computer ( 5 ) configured to implement the method as claimed in claim 1 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 11, 2025
From: PAYEN, JULIEN
To: SCHAEFFLER TECHNOLOGIES AG & CO. KG
Reel/Frame 071388/0868 →
Priority Claims (1)
FR 2408085 · Jul 23, 2024 · national
Continuity (1)
Related Publication 20260028029A1 · Jan 29, 2026
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