IP Library › Granted Patent US 10,528,064
Granted Patent B2
US 10,528,064 · App. 15/702,789 · Granted Jan 7, 2020

Tube pump system and method for controlling the tube pump system

Inventors: Yukinobu Imai (Saitama, JP); Kazuki Hirai (Saitama, JP)
Assignee: Surpass Industry Co., Ltd.
G05D7/0623F04B11/0091F04B43/09F04B43/12F04B43/1253F04B49/22F04B51/00
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Quick Facts
Patent No.
US 10,528,064
App. No.
15/702,789
Granted
Jan 7, 2020
Kind
B2
Abstract

There is provided a tube pump system including: a pair of roller units rotated around an axis line from a contact position to a separate position; a pair of drive units rotating the pair of roller units respectively; and a control unit controlling each of the pair of drive units. A pipe having flexibility is connected to an outflow-side end portion of the tube, and the pipe maintains a pressure of a liquid flowing through the inside of the pipe at a first predetermined pressure higher than an atmospheric pressure. The control unit controls each of the pair of drive units such that a pressure of the liquid in the tube closed due to a contact of the pair of roller units is increased to a second predetermined pressure when one of the pair of roller units passes the separate position.

Claims (24)

1. A tube pump system comprising:

a housing unit which has an inner peripheral surface formed into a circular-arc shape around an axis line;

a tube having flexibility which is arranged along the inner peripheral surface;

a pair of roller units which are housed in the housing unit, and are rotated around the axis line from a contact position to a separate position around the axis line in a state where the pair of roller units compress the tube;

a pair of drive units which are configured to rotate the pair of roller units respectively around the axis line in a same direction; and

a control unit which is configured to control each of the pair of drive units such that a liquid which flows into the tube from one end of the tube is discharged from the other end of the tube, wherein

a pipe having flexibility is connected to the other end of the tube, the pipe maintaining a pressure of the liquid flowing through the inside of the pipe at a first predetermined pressure higher than an atmospheric pressure, and

the control unit is configured to control each of the pair of drive units such that a pressure of the liquid in the tube which is closed due to a contact of the pair of roller units is increased to a second predetermined pressure having a predetermined pressure difference with respect to the first predetermined pressure when one of the pair of roller units passes the separate position.

2. The tube pump system according to claim 1 , wherein

the control unit is configured to temporarily increase an angular velocity of said one of the pair of roller units when a state where said one of the pair of roller units compresses the tube is released.

3. The tube pump system according to claim 1 , further comprising a flowmeter which is configured to measure a flow rate of the liquid flowing through the inside of the pipe, wherein

the control unit is configured to control each of the pair of drive units such that the flow rate of the liquid measured by the flowmeter conforms to a target flow rate.

4. The tube pump system according to claim 1 , wherein

the first predetermined pressure is equal to or more than 30 kPaG and equal to or less than 150 kPaG.

5. A method for controlling a tube pump system which includes a housing unit which has an inner peripheral surface formed into a circular-arc shape around an axis line; a tube having flexibility which is arranged along the inner peripheral surface; a pair of roller units which are housed in the housing unit, and are rotated around the axis line from a contact position to a separate position around the axis line in a state where the pair of roller units compress the tube; and a pair of drive units which are configured to rotate the pair of roller units respectively around the axis line in a same direction, the method comprising:

a controlling step of controlling each of the pair of drive units such that a liquid which flows into the tube from one end of the tube is discharged from the other end of the tube, wherein

a pipe having flexibility is connected to the other end of the tube, the pipe maintaining a pressure of the liquid flowing through the inside of the pipe at a first predetermined pressure higher than an atmospheric pressure, and

in the controlling step, each of the pair of drive units is controlled such that a pressure of the liquid in the tube which is closed due to a contact of the pair of roller units is increased to a second predetermined pressure having a predetermined pressure difference with respect to the first predetermined pressure when one of the pair of roller units passes the separate position.

6. The method for controlling a tube pump system according to claim 5 , wherein

in the controlling step, an angular velocity of said one of the pair of roller units is temporarily increased when a state where said one of the pair of roller units compresses the tube is released.

7. The method for controlling a tube pump system according to claim 5 , further comprising a measuring step of measuring a flow rate of the liquid flowing through the inside of the pipe, wherein

in the controlling step, each of the pair of drive units is controlled such that the flow rate of the liquid measured in the measuring step conforms to a target flow rate.

8. The method for controlling a tube pump system according to claim 5 , wherein

the first predetermined pressure is equal to or more than 30 kPaG and equal to or less than 150 kPaG.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 13, 2017
From: IMAI, YUKINOBU; HIRAI, KAZUKI
To: SURPASS INDUSTRY CO., LTD.
Reel/Frame 043573/0166 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 13, 2017
From: IMAI, YUKINOBU; HIRAI, KAZUKI
To: SURPASS INDUSTRY CO., LTD.
Reel/Frame 043573/0297 →
Priority Claims (1)
JP 2016-179549 · Sep 14, 2016 · national
Continuity (1)
Related Publication 20180074525A1 · Mar 15, 2018
Cited By (1)
US 12,221,956