IP Library › Granted Patent US 11,635,141
Granted Patent B2
US 11,635,141 · App. 17/394,612 · Granted Apr 25, 2023

Working machine

Inventors: Ryota Hamamoto (Osaka, JP); Kazuki Ueda (Osaka, JP); Daiki Abe (Osaka, JP); Kohei Nagao (Osaka, JP)
Assignee: KUBOTA CORPORATION
F16H61/421E02F9/2246E02F9/2253F16H61/47F16H2061/6615
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Quick Facts
Patent No.
US 11,635,141
App. No.
17/394,612
Granted
Apr 25, 2023
Kind
B2
Abstract

In a working machine, a traveling pump is driven by a prime mover to rotate a traveling motor by fluid therefrom. The traveling motor has a rotation speed shiftable between a lower first speed and a higher second speed. A traveling change-over valve is shiftable between a first state where the rotation speed of the traveling motor is set to the first speed and a second state where the rotation speed of the traveling motor is set to the second speed. A controller performs a shock-mitigation for reducing a rotation speed of the prime mover when the traveling change-over valve is shifted from the second state to the first state. The controller determines a reduction amount of rotation speed of the prime mover reduced by the shock mitigation based on a difference between a target rotation speed of the prime mover and an actual rotation speed of the prime mover.

Claims (33)

1. A working machine comprising:

a prime mover;

a traveling pump driven by power of the prime mover so as to deliver operation fluid;

a traveling motor configured to be rotated by the operation fluid delivered from the traveling pump, the traveling motor having a rotation speed shiftable between a first speed and a second speed that is higher than the first speed;

a machine body provided thereon with the prime mover, the traveling pump and the traveling motor;

a traveling change-over valve shiftable between a first state where the rotation speed of the traveling motor is set to the first speed and a second state where the rotation speed of the traveling motor is set to the second speed; and

a controller configured or programmed to perform a shock-mitigation control for reducing a rotation speed of the prime mover when the traveling change-over valve is shifted from the second state to the first state, wherein

the controller is configured or programmed to determine a reduction amount of rotation speed of the prime mover reduced by the shock mitigation control based on a drop amount defined as a difference between a target rotation speed of the prime mover and an actual rotation speed of the prime mover.

2. The working machine according to claim 1 , wherein

the controller is configured or programmed to calculate a mitigation value of the prime mover in the shock mitigation control by subtracting the reduction amount from the actual rotation speed of the prime mover.

3. The working machine according to claim 2 , wherein

when a period for the shock mitigation control until the actual rotation speed of the prime mover reduced by the shock mitigation control reaches the mitigation value is defined as a mitigation period, the controller is configured or programmed to reduce the actual rotation speed of the prime mover at a first reduction rate kept constant for the mitigation period from a start point thereof to an end point thereof.

4. The working machine according to claim 2 , wherein

when a period for the shock mitigation control until the actual rotation speed of the prime mover reduced by the shock mitigation control reaches the mitigation value is defined as a mitigation period, the controller is configured or programmed to reduce the actual rotation speed of the prime mover at a second reduction rate for a first part of the mitigation period from a start point thereof to an intermediate point thereof, and to reduce the actual rotation speed of the prime mover at a third reduction rate less than the second reduction rate for a second part of the mitigation period from the intermediate point thereof to an end point thereof.

5. The working machine according to claim 2 , wherein

the controller is configured or programmed to change a timing for shifting the traveling change-over valve from the second state to the first state in correspondence to the drop amount.

6. The working machine according to claim 2 , further comprising:

a change-over switch operable to issue a speed-shift instruction selected between an acceleration instruction to shift the rotation speed of the traveling motor from the first speed to the second speed and a deceleration instruction to shift the rotation speed of the traveling motor from the second speed to the first speed; and

an accelerator operable to set a target rotation speed of the prime mover, wherein when the change-over switch is operated to issue the speed-shift instruction, the controller is configured or programed to reduce the actual rotation speed of the prime mover to the mitigation value determined based on the reduction amount, and to shift the traveling change-over valve to either the first state or the second state in correspondence to the speed-shift instruction.

7. The working machine according to claim 2 , wherein

the controller is configured or programmed to determine the reduction amount based on the drop amount in such a way that the reduction amount becomes larger as the drop amount becomes smaller, and the reduction amount becomes smaller as the drop amount becomes larger.

8. The working machine according to claim 1 , wherein

the controller is configured or programmed to change a timing for shifting the traveling change-over valve from the second state to the first state in correspondence to the drop amount.

9. The working machine according to claim 1 , further comprising:

a change-over switch operable to issue a speed-shift instruction selected between an acceleration instruction to shift the rotation speed of the traveling motor from the first speed to the second speed and a deceleration instruction to shift the rotation speed of the traveling motor from the second speed to the first speed; and

an accelerator operable to set a target rotation speed of the prime mover, wherein when the change-over switch is operated to issue the speed-shift instruction, the controller is configured or programed to reduce the actual rotation speed of the prime mover to the mitigation value determined based on the reduction amount, and to shift the traveling change-over valve to either the first state or the second state in correspondence to the speed-shift instruction.

10. The working machine according to claim 1 , wherein

the controller is configured or programmed to determine the reduction amount based on the drop amount in such a way that the reduction amount becomes larger as the drop amount becomes smaller, and the reduction amount becomes smaller as the drop amount becomes larger.

11. The working machine according to claim 1 , further comprising:

a first traveling device provided on a left portion of the machine body; and

a second traveling device provided on a right portion of the machine body, wherein a first traveling motor configured to output a traveling power to the first traveling device and a second traveling motor configured to output a traveling power to the second traveling device are each provided as the traveling motor,

the traveling pump is configured to rotate the first traveling motor and the second traveling motor, and

the traveling change-over valve is configured to shift the rotation speed of the first and second traveling motors between the first speed and the second speed.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 5, 2021
From: HAMAMOTO, RYOTA; UEDA, KAZUKI; ABE, DAIKI; NAGAO, KOHEI
To: KUBOTA CORPORATION
Reel/Frame 057094/0477 →
Priority Claims (2)
JP JP2020-137192 · Aug 15, 2020 · national
JP JP2020-137193 · Aug 15, 2020 · national
Continuity (1)
Related Publication 20220049723A1 · Feb 17, 2022
Cited By (1)
US 12,304,555