IP Library Granted Patent US 12,528,090
Granted Patent B2
US 12,528,090 · App. 18/208,845 · Granted Jan 20, 2026

Spark tolerant electrostatic precipitator

Inventors: Igor Krichtafovitch (Kiev, UA); Alan Viosca (Seattle, WA); Larry Rothenberg (Kensington, MD)
Assignee: ANGETIS AIR LLC
B03C3/66B03C3/08B03C3/47
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Quick Facts
Patent No.
US 12,528,090
App. No.
18/208,845
Granted
Jan 20, 2026
Kind
B2
Abstract

An electrostatic precipitator particle collection unit with a particle collecting electrode and a repelling electrode fabricated with static dissipative materials. The static dissipative material may be a polymer, may be a synthetic polymer, and may be a moldable polymer. The electrode plates may be formed from thermoplastic or thermoset polymer.

Claims (42)

1 . An electrostatic precipitator electrode pair comprising a first electrostatic precipitator electrode element arranged parallel to a second electrostatic precipitator electrode element, wherein said first electrostatic precipitator electrode element is configured for connection at a first connection location to a first electrical potential and said second electrostatic precipitator electrode element is configured for connection at a second connection location to a second electrical potential and where a difference between said first electrical potential and said second electrical potential is a high voltage sufficient to create an electrostatic field to repel charged particles away from one of said first and second electrostatic precipitator electrode elements and attract said charged particles toward the other one of said electrostatic precipitator electrode elements:

wherein said first connection location is remote and extended substantially from said second connection location;

wherein said first electrostatic precipitator electrode element exhibits a resistivity along a current flow path between said first connection location and a location corresponding to said second connection location at a level sufficient to dissipate spark events;

wherein said first electrostatic precipitator electrode element includes an interruption which extends said current flow path;

wherein said interruption is a first non-conductive segment arranged between said first connection location and a position corresponding to said second connection location;

wherein said first connection location and said second connection location define a medial axis of said first electrostatic precipitator electrode element and said non-conductive segment that transects said medial axis;

wherein said non-conductive segment extends from a first lateral edge of said first electrostatic precipitator electrode element;

further comprising a second non-conductive segment extending from a second lateral edge opposing said first lateral edge wherein said second non-conductive segment transects said medial axis further extending said current flow path; and

wherein said first non-conductive segment and said second non-conductive segment establish an S-shaped electrode element.

2 . An electrostatic precipitator electrode pair comprising a first electrostatic precipitator electrode element arranged parallel to a second electrostatic precipitator electrode element, wherein said first electrostatic precipitator electrode element is configured for connection at a first connection location to a first electrical potential and said second electrostatic precipitator electrode element is configured for connection at a second connection location to a second electrical potential and where a difference between said first electrical potential and said second electrical potential is a high voltage sufficient to create an electrostatic field to repel charged particles away from one of said first and second electrostatic precipitator electrode elements and attract said charged particles toward the other one of said electrostatic precipitator electrode elements:

wherein said first connection location is remote and extended substantially from said second connection location;

wherein said first electrostatic precipitator electrode element exhibits a resistivity along a current flow path between said first connection location and a location corresponding to said second connection location at a level sufficient to dissipate spark events;

wherein said first electrostatic precipitator electrode element includes an interruption which extends said current flow path;

wherein said first electrostatic precipitator electrode element comprises a static dissipative material;

wherein said static dissipative material is a moldable synthetic polymer; and

further comprising a non-conductive segment of at least one of said first and second electrostatic precipitator electrode elements wherein said non-conductive segment transects a medial axis defined by said first connection location and said second connection location wherein said non-conductive segment is defined by treating said static dissipative material to locally increase resistance.

3 . An electrostatic precipitator electrode pair comprising a first electrostatic precipitator electrode element arranged parallel to a second electrostatic precipitator electrode element, wherein said first electrostatic precipitator electrode element is configured for connection at a first connection location to a first electrical potential and said second electrostatic precipitator electrode element is configured for connection at a second connection location to a second electrical potential and where a difference between said first electrical potential and said second electrical potential is a high voltage sufficient to create an electrostatic field to repel charged particles away from one of said first and second electrostatic precipitator electrode elements and attract said charged particles toward the other one of said electrostatic precipitator electrode elements:

wherein said first connection location is remote and extended substantially from said second connection location;

wherein said first electrostatic precipitator electrode element exhibits a resistivity along a current flow path between said first connection location and a location corresponding to said second connection location at a level sufficient to dissipate spark events;

wherein said first electrostatic precipitator electrode element includes an interruption which extends said current flow path;

wherein said first electrostatic precipitator electrode element comprises a static dissipative material;

wherein said static dissipative material is a moldable synthetic polymer; and

further comprising a non-conductive segment of at least one of said electrostatic precipitator electrode elements, wherein said non-conductive segment transects a medial axis defined by said first connection location and said second connection location wherein said non-conductive segment is defined by absence of material forming said at least one said electrostatic precipitator electrode elements.

4 . The electrostatic precipitator electrode pair according to claim 3 further comprising a non-conductive stabilizing element in at least a portion of said non-conductive segment of said at least one of said electrostatic precipitator electrode element.

5 . An electrostatic precipitator electrode pair comprising a first electrostatic precipitator electrode element arranged parallel to a second electrostatic precipitator electrode element, wherein said first electrostatic precipitator electrode element is configured for connection at a first connection location to a first electrical potential and said second electrostatic precipitator electrode element is configured for connection at a second connection location to a second electrical potential and where a difference between said first electrical potential and said second electrical potential is a high voltage sufficient to create an electrostatic field to repel charged particles away from one of said first and second electrostatic precipitator electrode elements and attract said charged particles toward the other one of said electrostatic precipitator electrode elements:

wherein said first connection location is remote and extended substantially from said second connection location;

wherein said first electrostatic precipitator electrode element exhibits a resistivity along a current flow path between said first connection location and a location corresponding to said second connection location at a level sufficient to dissipate spark events;

wherein said first electrostatic precipitator electrode element includes an interruption which extends said current flow path;

wherein said first electrostatic precipitator electrode element comprises a static dissipative material;

wherein said static dissipative material is a moldable synthetic polymer; and

further comprising a non-conductive segment of at least one of said first and second electrostatic precipitator electrode elements, wherein said non-conductive segment transects a medial axis defined by said first connection location and said second connection location wherein said non-conductive segment is defined by insulating material molded into said at least one of said first and second electrostatic precipitator electrode elements.

6 . The electrostatic precipitator electrode pair according to claim 2 wherein said first non-conductive segment establishes a C-shaped electrode element.

7 . An electrostatic precipitator electrode pair comprising a first electrostatic precipitator electrode element arranged parallel to a second electrostatic precipitator electrode element, wherein said first electrostatic precipitator electrode element is configured for connection at a first connection location to a first electrical potential and said second electrostatic precipitator electrode element is configured for connection at a second connection location to a second electrical potential and where a difference between said first electrical potential and said second electrical potential is a high voltage sufficient to create an electrostatic field to repel charged particles away from one of said first and second electrostatic precipitator electrode elements and attract said charged particles toward the other one of said electrostatic precipitator electrode elements:

wherein said first connection location is remote and extended substantially from said second connection location;

wherein said first electrostatic precipitator electrode element exhibits a resistivity along a current flow path between said first connection location and a location corresponding to said second connection location at a level sufficient to dissipate spark events;

wherein said first electrostatic precipitator electrode element includes an interruption which extends said current flow path;

wherein said second electrostatic precipitator electrode element is configured to correspond to a configuration of said first electrostatic precipitator electrode element; and

wherein at least one of said first and second electrostatic precipitator electrode elements further comprising multiple interleaved non-conductive segments extending in opposing directions to define a switchback current path.

8 . The electrostatic precipitator electrode pair according to claim 7 wherein said switchback current path has 2 to 10 switchbacks.

9 . The electrostatic precipitator electrode pair according to claim 8 wherein said switchback current path has 10 switchbacks.

10 . The electrostatic precipitator electrode pair according to claim 7 wherein said first non-conductive segment establishes a C-shaped electrode element.

11 . The electrostatic precipitator electrode pair according to claim 3 wherein said first non-conductive segment establishes a C-shaped electrode element.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 6, 2023
From: KRICHTAFOVITCH, IGOR; VIOSCA, ALAN; ROTHENBERG, LARRY
To: AGENTIS AIR LLC
Reel/Frame 065470/0868 →
Continuity (2)
Provisional Application 63351411 · Jun 12, 2022
Related Publication 20230405603A1 · Dec 21, 2023
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