IP Library Granted Patent US 12,214,957
Granted Patent B2
US 12,214,957 · App. 17/708,926 · Granted Feb 4, 2025

Self-cleaning tank

Inventors: Nathan Hayes Owen (Spokane Valley, WA); Nathan Scott Batson (Colbert, WA); Thomas Raymond Rodgers (Spokane, WA)
Assignee: Spokane Stainless Technologies, Inc.
B65D90/0093B01F27/091B01F27/808B01F27/82B01F35/123B01F35/145B01F35/32045B08B9/0808B08B9/087B65D90/54B65D88/68Y10T137/0435Y10T137/4238
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Quick Facts
Patent No.
US 12,214,957
App. No.
17/708,926
Granted
Feb 4, 2025
Kind
B2
Abstract

A tank, such as a fermentation tank, includes a scraper blade assembly slideably coupled to a bottom surface of the tank. The scraper blade assembly includes a blade arranged to displace solids deposited on the bottom surface of the tank out through an aperture arranged flush with the bottom surface of the tank.

Claims (49)

1. A method comprising:

supplying power to a first hydraulic motor via a hydraulic power unit, the first hydraulic motor being attached beneath a first tank, and the hydraulic power unit being separate from the first tank, the first tank including:

a first top surface;

a first bottom surface opposite the first top surface;

a first wall fixed between the first bottom surface and the first top surface; and

a first aperture located in the first wall;

the first hydraulic motor being operatively coupled to a first scraper blade assembly including a first scraper blade rotatably coupled to the first bottom surface, wherein when the first hydraulic motor is powered via the hydraulic power unit the first scraper blade is rotatably displaced along the first bottom surface;

disconnecting the hydraulic power unit from the first hydraulic motor;

connecting the hydraulic power unit to a second hydraulic motor, the second hydraulic motor being attached beneath a second tank, the hydraulic power unit being separate from the second tank, the second tank including:

a second top surface;

a second bottom surface opposite the second top surface;

a second wall fixed between the second bottom surface and the second top surface; and

a second aperture located in the second wall;

supplying power to the second hydraulic motor via the hydraulic power unit; and

the second hydraulic motor being operatively coupled to a second scraper blade assembly including a second scraper blade rotatably coupled to the second bottom surface, wherein when the second hydraulic motor is powered via the hydraulic power unit the second scraper blade is rotatably displaced along the second bottom surface.

2. The method of claim 1 , wherein when the first scraper blade is rotatably displaced along the first bottom surface, a first leading surface of the first scraper blade displaces first solids deposited on the first bottom surface in a direction towards the first wall to displace the first solids deposited through the first aperture.

3. The method of claim 1 , wherein when the second scraper blade is rotatably displaced along the second bottom surface, a second leading surface of the second scraper blade displaces second solids deposited on the second bottom surface in a direction towards the second wall to displace the second solids through the second aperture.

4. The method of claim 1 , wherein the first tank further includes a first gate located adjacent to the first aperture, the first gate being selectively movable between an open position and a closed position.

5. The method of claim 1 , wherein the second tank further includes a second gate located adjacent to the second aperture, the second gate being selectively movable between an open position and a closed position.

6. The method of claim 1 , wherein the first wall is a first vertical wall fixed to a first perimeter of the first bottom surface, at a first location between the first bottom surface and the first top surface, and the first bottom surface extends substantially around a second perimeter of the first vertical wall; or

the second wall is a second vertical wall fixed to a third perimeter of the second bottom surface, at a second location between the second bottom surface and the second top surface, and the second bottom surface extends substantially around a third perimeter of the second vertical wall.

7. The method of claim 6 , wherein the first tank further includes a first gate located adjacent to the first aperture, the first gate being selectively movable at least vertically between an open position and a closed position; or

wherein the second tank further includes a second gate located adjacent to the second aperture, the second gate being selectively moveable at least vertically between an open position and a closed position.

8. A method comprising:

supplying, via a hydraulic power unit, first power to a first hydraulic motor to rotatably displace a first scraper blade of a first scraper blade assembly along a first bottom surface of a first tank;

the first hydraulic motor being operatively coupled to the first scraper blade assembly including the first scraper blade rotatably coupled to the first bottom surface of the first tank, wherein when the first hydraulic motor is powered by the hydraulic power unit the first scraper blade is rotatably displaced along the first bottom surface of the first tank;

disconnecting the hydraulic power unit from the first hydraulic motor;

connecting the hydraulic power unit to a second hydraulic motor;

supplying power to the second hydraulic motor with the hydraulic power unit; and

the second hydraulic motor being operatively coupled to a second scraper blade assembly including a second scraper blade rotatably coupled to a second bottom surface of a second tank, wherein when the second hydraulic motor is powered by the hydraulic power unit the second scraper blade is rotatably displaced along the second bottom surface of the second tank.

9. The method of claim 8 , wherein based at least in part on the first scraper blade being rotatably displaced along the first bottom surface, a first leading surface of the first scraper blade displaces first solids deposited on the first bottom surface in a direction towards a first wall of the first tank to displace the first solids through a first aperture located in the first wall.

10. The method of claim 8 , wherein based at least in part on the second scraper blade being rotatably displaced along the second bottom surface, a second leading surface of the second scraper blade displaces second solids deposited on the second bottom surface in a direction towards a second wall of the second tank to displace the second solids through a second aperture located in the second wall.

11. The method of claim 8 , wherein the first tank further includes a first gate located adjacent to a first aperture disposed through a first wall of the first tank, the first gate being selectively movable between an open position and a closed position.

12. The method of claim 8 , wherein the second tank further includes a second gate located adjacent to a second aperture disposed through a second wall of the second tank, the second gate being selectively movable between an open position and a closed position.

13. The method of claim 8 , wherein the first tank includes a first vertical wall disposed around a first perimeter of the first bottom surface, at a location and between the first bottom surface and a first top surface of the first tank, and the first bottom surface extends substantially around a second perimeter of the first vertical wall, wherein a first aperture is disposed in the first vertical wall; or

wherein the second tank includes a second vertical wall disposed around a second perimeter of the second bottom surface, at a location and between the second bottom surface and a second top surface of the second tank, and the second bottom surface extends substantially around a third perimeter of the second vertical wall, wherein a second aperture is disposed in the second vertical wall.

14. The method of claim 13 , wherein the first tank further includes a first gate located adjacent to the first aperture in the first vertical wall of the first tank, the first gate being selectively movable at least vertically between an open position and a closed position; or

wherein the second tank further includes a second gate located adjacent to the second aperture in the second vertical wall of the second tank, the second gate being selectively movable at least vertically between an open position and a closed position.

15. A method comprising:

supplying power to a first hydraulic motor of a first tank via a hydraulic power unit, the hydraulic power unit being separate from the first tank and operatively coupled to a first scraper blade assembly including a first scraper blade rotatably coupled to a first bottom surface of the first tank, wherein the first scraper blade is rotatably displaced along the first bottom surface based on the power being supplied to the first hydraulic motor;

disconnecting the hydraulic power unit from the first hydraulic motor; and

connecting the hydraulic power unit to a second hydraulic motor of a second tank, the hydraulic power unit being separate from the second tank and operatively coupled to a second scraper blade assembly including a second scraper blade rotatably coupled to a second bottom surface of the second tank, wherein the second scraper blade is rotatably displaced along the second bottom surface based on the power being supplied to the second hydraulic motor.

16. The method of claim 15 , wherein based at least in part on the first scraper blade being rotatably displaced along the first bottom surface, a first leading surface of the first scraper blade displaces first solids deposited on the first bottom surface in a direction towards a first wall of the first tank to displace the first solids through a first aperture located in the first wall.

17. The method of claim 16 , wherein the first tank includes a first gate located adjacent to the first aperture in the first wall, the first gate being selectively movable between an open position and a closed position.

18. The method of claim 15 , wherein based at least in part on the second scraper blade being rotatably displaced along the second bottom surface, a second leading surface of the second scraper blade displaces second solids deposited on the second bottom surface in a direction towards a second wall of the second tank to displace the second solids through a second aperture located in the second wall.

19. The method of claim 18 , wherein the second tank includes a second gate located adjacent to the second aperture in the second wall, the second gate being selectively movable between an open position and a closed position.

20. The method of claim 15 , wherein at least one of:

the first hydraulic motor is attached beneath the first tank; or

the second hydraulic motor is attached beneath the second tank.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 21, 2024
From: SPOKANE INDUSTRIES, INC.
To: SPOKANE STAINLESS TECHNOLOGIES, INC.
Reel/Frame 068953/0690 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 10, 2024
From: OWEN, NATHAN HAYES; RODGERS, THOMAS RAYMOND; BATSON, NATHAN SCOTT
To: SPOKANE INDUSTRIES
Reel/Frame 068870/0004 →
Continuity (4)
Division 16459285 · Jul 1, 2019
Division 15172941 · Jun 3, 2016
Continuation 14255778 · Apr 17, 2014
Related Publication 20220219888A1 · Jul 14, 2022
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