IP Library Granted Patent US 7,168,641
Granted Patent B2
US 7,168,641 · App. 10/929,566 · Granted Jan 30, 2007

Attrition scrubber apparatus and method

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Quick Facts
Patent No.
US 7,168,641
App. No.
10/929,566
Granted
Jan 30, 2007
Kind
B2
Abstract

An attrition scrubber that includes multiple attrition scrubber cells. The multiple attrition scrubbers cells are arranged generally parallel to a vertical axis of rotation. The apparatus includes a shaft that extends generally parallel to the vertical axis of rotation and through the center of all attritioning cells. Each attritioning cell contains two impellers having a diameter. The impellers are attached to the common shaft and positioned a distance apart from each other. Each cell also contains a distribution ring and radial baffles. The attrition scrubber apparatus also includes a lifter impeller having a diameter.

Claims (81)

1. An attrition scrubber for attritioning a fluid, having a vertical axis of rotation, comprising:

a first attritioning cell located generally along the vertical axis of rotation having an inlet opening and a width W cell ;

a second attritioning cell located generally along the vertical axis of rotation at a position adjacently above the first attritioning cell, wherein the second attritioning cell has a width equal to W cell ;

a rotatable shaft disposed within the first and second attritioning cells, wherein the rotatable shaft extends generally parallel to and rotates about the vertical axis of rotation at least partially all the way between first and second attritioning cells;

a first orifice plate disposed at an axial location between the first and second attritioning cells to separate the first and second attritioning cells from each other, the orifice plate extending radially inward and having a central orifice through which the shaft passes with a clearance to allow fluid flow through the orifice around the shaft from the first attritioning cell to the second attritioning cell;

a first impeller attached to the rotatable shaft at a first axial location within the first attritioning cell, wherein the first impeller pumps fluid along the vertical axis of rotation in a first direction;

a second impeller attached to the rotatable shaft at a second axial location within the first attritioning cell, wherein the second impeller pumps fluid along the vertical axis of rotation in a second, opposite direction;

a third impeller attached to the rotatable shaft at a third axial location within the second attritioning cell, wherein the third impeller pumps fluid along the vertical axis of rotation in the first direction;

a fourth impeller attached to the rotatable shaft at a fourth axial location within the second attritioning cell, wherein the fourth impeller pumps fluid along the vertical axis of rotation in the second, opposite direction,

a first dispersion ring disposed in the first attritioning cell, wherein the first dispersion ring is connected to the rotatable shaft at a fifth axial location thereof above the second impeller the fifth axial location being different from the location of the first orifice plate; and

a second dispersion ring disposed in the second attritioning cell, wherein the dispersion ring is connected to the rotatable shaft at a sixth axial location thereof above the fourth impeller the sixth axial location being different from the location of the first orifice plate,

wherein the first and second dispersion rings each have a diameter D r ,

wherein the first, second, third, and fourth impellers each have a diameter D i .

2. The apparatus according to claim 1 , wherein the first, second, third, and fourth impellers, each comprise:

a hub mounted to the rotatable shaft that rotates with the shaft;

a plurality of blades mounted to the hub,

wherein each blade comprises a plate, and wherein each plate comprises:

a constant thickness portion;

a rounded profile;

a leading edge,

wherein the rounded profile is located along the leading edge.

3. The apparatus according to claim 1 , wherein D i =0.72W cell .

4. The apparatus according to claim 1 , wherein the first and second attritioning cells are a plurality of attritioning cells.

5. An apparatus according to claim 1 , wherein the first and second impellers are separated by a first distance, and the third and fourth impellers are separated by a second distance.

6. The apparatus according to 5 , wherein the first and second distances are equal to approximately 0.27W cell .

7. The apparatus according to claim 1 ,

wherein the first orifice plate has a first orifice having a diameter D o extending therethrough.

8. The apparatus according to claim 7 , further comprising:

a top chamber having an outlet opening, wherein the top chamber is located generally along the vertical axis of rotation adjacently above the second attritioning cell; and

a second orifice plate that separates the top chamber and the second attritioning cell, wherein the second plate has a second orifice having the diameter D o extending therethrough.

9. The apparatus according to claim 8 , wherein D r =1.3D o .

10. The apparatus according to claim 8 , wherein the top chamber comprises a lifter impeller connected to the rotatable shaft at an axial location within the top chamber.

11. The apparatus according to claim 1 , further comprising inwardly directed baffles disposed around the inside of the first and second attritioning cells.

12. An attrition scrubber for attritioning a fluid, having a vertical axis of rotation, comprising:

a first attritioning cell located generally along the vertical axis of rotation having an inlet opening and a diameter D cell;

a second attritioning cell located generally along the vertical axis of rotation at a position adjacently above the first attritioning cell, wherein the second attritioning cell has a diameter equal to D cell ;

a rotatable shaft disposed within the first and second attritioning cells, wherein the rotatable shaft extends generally parallel to and rotates about the vertical axis of rotation at least partially all the way between first and second attritioning cells;

a first orifice plate disposed at an axial location between the first and second attritioning cells to separate the first and second attritioning cells from each other, the orifice plate extending radially inward and having a central orifice through which the shaft passes with a clearance to allow fluid flow through the orifice around the shaft from the first attritioning cell to the second attritioning cell;

a first impeller attached to the rotatable shaft at a first axial location within the first attritioning cell, wherein the first impeller pumps fluid along the vertical axis of rotation in a first direction;

a second impeller attached to the rotatable shaft at a second axial location within the first attritioning cell, wherein the second impeller pumps fluid along the vertical axis of rotation in a second, opposite direction;

a third impeller attached to the rotatable shaft at a third axial location within the second attritioning cell, wherein the third impeller pumps fluid along the vertical axis of rotation in the first direction; and

a fourth impeller attached to the rotatable shaft at a fourth axial location within the second attritioning cell, wherein the fourth impeller pumps fluid along the vertical axis of rotation in the second, opposite direction,

a first dispersion ring disposed at an axial location different from the fifth and sixth locations and in the first attritioning cell, wherein the first dispersion ring is connected to the rotatable shaft at a fifth axial location thereof above the second impeller the fifth axial location being different from the location of the first orifice plate; and

a second dispersion ring disposed in the second attritioning cell, wherein the dispersion ring is connected to the rotatable shaft at a sixth axial location thereof above the fourth impeller the sixth axial location being different from the location of the orifice plate,

wherein the first and second dispersion rings each have a diameter D r ,

wherein the first, second, third, and fourth impellers each have a diameter D i .

13. The apparatus according to claim 12 , wherein D i =0.72D cell .

14. The apparatus according to claim 12 , wherein the first and second attritioning cells are a plurality of attritioning cells.

15. The apparatus according to claim 12 , wherein the first and second impellers are separated by a first distance, and the third and fourth impellers are separated by a second distance.

16. The apparatus according to 15 , wherein the first and second distances are equal to approximately 0.27D cell .

17. An attrition scrubber for attritioning a fluid, having a rotatable shaft that rotates about a vertical axis of rotation, wherein the rotatable shaft extends between a first attritioning cell having a width W cell and a second attritioning cell having a width equal to W cell comprising:

means for directing fluid into the first attritioning cell via an inlet, wherein the first attritioning cell comprises:

a first means for pumping the fluid attached to the rotatable shaft at a first axial location within the first attritioning cell; and

a second means for pumping the fluid attached to the rotatable shaft at a second axial location within the first attritioning cell;

means for directing the fluid along the vertical axis of rotation into the second attritioning cell, wherein the second attritioning cell comprises:

a third means for pumping the fluid attached to the rotatable shaft at a third axial location within the second attritioning cell; and

a fourth means for pumping the fluid attached to the rotatable shaft at a fourth axial location within the second attritioning cell,

a first dispersion ring disposed in the first attritioning cell, wherein the first dispersion ring is connected to the rotatable shaft at a fifth axial location thereof above the second impeller; and

a second dispersion ring located in the second attritioning cell, wherein the dispersion ring is connected to the rotatable shaft at a sixth axial location thereof above the fourth impeller,

a first orifice plate disposed at an axial location different from the fifth and sixth locations and between the first and second attritioning cells to separate the first and second attritioning cells from each other, the orifice plate extending radially inward and having a central orifice through which the shaft passes with a clearance to allow fluid flow through the orifice around the shaft from the first attritioning cell to the second attritioning cell;

wherein the first and second dispersion rings each have a diameter D r ,

wherein the first, second, third, and fourth means for pumping the fluid each have a diameter D i .

18. The attrition scrubber according to claim 17 , wherein D i =0.72W cell .

19. The attrition scrubber according to claim 17 , wherein the first and second attritioning cells are a plurality of attritioning cells.

20. The attrition scrubber according to claim 17 , wherein the first and second means for pumping the fluid are separated by a first distance, and the third and fourth means for pumping the fluid are separated by a second distance.

21. The attrition scrubber according to 20 , wherein the first and second distances are equal to approximately 0.27W cell .

22. An attrition scrubber for attritioning a fluid, having a vertical axis of rotation, comprising:

a first attritioning cell located generally along the vertical axis of rotation having an inlet opening and a width W cell ;

a second attritioning cell located generally along the vertical axis of rotation at a position adjacently above the first attritioning cell, wherein the second attritioning cell has a width equal to W cell ;

a rotatable shaft disposed within the first and second attritioning cells, wherein the rotatable shaft extends generally parallel to and rotates about the vertical axis of rotation between first and second attritioning cells;

a first orifice plate disposed at an axial location between the first and second attritioning cells to separate the first and second attritioning cells from each other, the orifice plate extending radially inward and having a central orifice through which the shaft passes with a clearance to allow fluid flow through the orifice around the shaft from the first attritioning cell to the second attritioning cell;

a first impeller attached to the rotatable shaft at a first axial location within the first attritioning cell, wherein the first impeller pumps fluid along the vertical axis of rotation in a first direction;

a second impeller attached to the rotatable shaft at a second axial location within the first attritioning cell, wherein the second impeller pumps fluid along the vertical axis of rotation in a second, opposite direction;

a third impeller attached to the rotatable shaft at a third axial location within the second attritioning cell, wherein the third impeller pumps fluid along the vertical axis of rotation in the first direction;

a fourth impeller attached to the rotatable shaft at a fourth axial location within the second attritioning cell, wherein the fourth impeller pumps fluid along the vertical axis of rotation in the second, opposite direction,

wherein the first, second, third, and fourth impellers each have a diameter D i ; and

pumping the fluid through a top chamber having an outlet opening, wherein the top chamber is located generally along the vertical axis of rotation adjacently above the second attritioning cell; and

a second plate that separates the top chamber and the second attritioning cell, wherein the second plate has a second orifice having the diameter D o extending therethrough; and

a first dispersion ring disposed in the first attritioning cell, wherein the first dispersion ring is connected to the rotatable shaft at a fifth axial location thereof above the second impeller the fifth axial location being different from the location of the first orifice plate; and

a second dispersion ring disposed in the second attritioning cell, wherein the dispersion ring is connected to the rotatable shaft at a sixth axial location thereof above the fourth impeller the sixth axial location being different from the location of the first orifice plate,

wherein the first and second dispersion rings each have a diameter D r .

Assignments (6)
RELEASE OF SECURITY INTEREST RECORDED AT REEL/FRAME 039337/0749 Recorded May 24, 2024
From: BANK OF AMERICA, N.A.
To: SPX FLOW, INC.
Reel/Frame 067528/0708 →
SECURITY INTEREST Recorded Apr 5, 2022
From: PHILADELPHIA MIXING SOLUTIONS LLC; SPX FLOW TECHNOLOGY USA, INC.; SPX FLOW, INC.; SPX FLOW US, LLC
To: CITIBANK, N.A.
Reel/Frame 059619/0158 →
NOTICE OF GRANT OF SECURITY INTEREST IN PATENTS Recorded Jul 14, 2016
From: SPX FLOW, INC.
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 039337/0749 →
CORRECTIVE ASSIGNMENT TO CORRECT THE RECEIVING PARTY DATA PREVIOUSLY RECORDED AT REEL: 035561 FRAME: 0004. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Jun 16, 2015
From: SPX CORPORATION
To: SPX FLOW, INC.
Reel/Frame 036147/0859 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 1, 2015
From: SPX CORPORATION
To: SPX FLOW
Reel/Frame 035561/0004 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 3, 2005
From: FILGUEIRAS, MARCOS
To: SPX CORPORATION
Reel/Frame 016118/0318 →