IP Library › Granted Patent US 12,037,192
Granted Patent B2
US 12,037,192 · App. 17/650,540 · Granted Jul 16, 2024

Transport system and transport method

Inventors: Junya Ota (Tokyo, JP); Kunihiro Iwamoto (Nagakute, JP); Yuta Itozawa (Nagoya, JP); Hirotaka Komura (Tokyo, JP); Yutaro Takagi (Tokyo, JP); Yoshiaki Nakamoto (Nisshin, JP)
Assignee: TOYOTA JIDOSHA KABUSHIKI KAISHA
B65G1/065B25J5/007B65G1/0492
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Quick Facts
Patent No.
US 12,037,192
App. No.
17/650,540
Granted
Jul 16, 2024
Kind
B2
Abstract

A rack includes a pair of first rail portions extending in a depth direction for supporting protrusions, a pair of first gradient portions inclining downward toward a front surface of the rack, a pair of second rail portions facing the pair of the first rail portions, and a pair of second gradient portions inclining upward toward the front surface of the rack. A transport robot includes a top plate on which an object is placed, an elevating portion that raises and lowers the top plate, one or more load sensors provided on the top plate, and a control unit for controlling the elevating portion based on measurement results.

Claims (41)

1. A transport system in which an object is stored in a rack by a transport robot, wherein:

the object includes protrusions protruding outward in a width direction;

the rack includes

a pair of first rail portions extending in a depth direction for supporting the protrusions,

a pair of first gradient portions extending from ends of the pair of the first rail portions and inclining downward toward a front surface of the rack,

a pair of second rail portions provided above the pair of the first rail portions so as to face the pair of the first rail portions, and

a pair of second gradient portions extending from ends of the pair of the second rail portions and inclining upward toward the front surface of the rack; and

the transport robot includes

a top plate on which the object is placed,

an elevating portion that raises and lowers the top plate,

one or more load sensors provided on the top plate, and

a controller for controlling the elevating portion based on measurement results of each of the one or more load sensors; wherein:

the transport robot further includes an arm provided on the top plate for moving the object in and out of the rack; and

the controller

pushes the object into the rack using the arm, after controlling the elevating portion by feedforward control, and

performs feedback control for the elevating portion based on the measurement results of each of the one or more load sensors, when the object failed to be stored in the rack.

2. The transport system according to claim 1 , wherein:

the transport robot includes two load sensors as the one or more load sensors;

one of the two load sensors is provided on a front side of the top plate, and the other of the two load sensors is provided on a rear side of the top plate; and

the controller controls the elevating portion based on a difference between measurement results of the two load sensors.

3. The transport system according to claim 1 , wherein each of the one or more load sensors is a load cell.

4. A transport method in which an object is stored in a rack by a transport robot, wherein:

the object includes protrusions protruding outward in a width direction;

the rack includes

a pair of first rail portions extending in a depth direction for supporting the protrusions,

a pair of first gradient portions extending from ends of the pair of the first rail portions and inclining downward toward a front surface of the rack,

a pair of second rail portions provided above the pair of the first rail portions so as to face the pair of the first rail portions, and

a pair of second gradient portions extending from ends of the pair of the second rail portions and inclining upward toward the front surface of the rack;

the transport robot includes

a top plate on which the object is placed,

an elevating portion that raises and lowers the top plate, and

one or more load sensors provided on the top plate; and

the transport method includes a controlling step for controlling the elevating portion based on measurement results of each of the one or more load sensors; wherein:

the transport robot further includes an arm provided on the top plate for moving the object in and out of the rack; and

a controller that

pushes the object into the rack using the arm, after controlling the elevating portion by feedforward control, and

performs feedback control for the elevating portion based on the measurement results of each of the one or more load sensors, when the object failed to be stored in the rack.

5. The transport method according to claim 4 , wherein:

the transport robot includes two load sensors as the one or more load sensors;

one of the two load sensors is provided on a front side of the top plate, and the other of the two load sensors is provided on a rear side of the top plate; and

the controlling step controls the elevating portion based on a difference between detection results of the two load sensors.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 12, 2022
From: OTA, JUNYA; IWAMOTO, KUNIHIRO; ITOZAWA, YUTA; KOMURA, HIROTAKA; TAKAGI, YUTARO; NAKAMOTO, YOSHIAKI
To: TOYOTA JIDOSHA KABUSHIKI KAISHA
Reel/Frame 058996/0094 →
Priority Claims (1)
JP 2021-022713 · Feb 16, 2021 · national
Continuity (1)
Related Publication 20220274777A1 · Sep 1, 2022
Cited By (1)
US 12,661,783