IP Library Granted Patent US 11,413,628
Granted Patent B2
US 11,413,628 · App. 16/465,588 · Granted Aug 16, 2022

Electrostatic particle filtering

Inventors: Johannes Marra (Eindhoven, NL); Achim Gerhard Rolf Koerber (Eindhoven, NL); Cornelis Reinder Ronda (Aachen, DE)
Assignee: KONINKLIJKE PHILIPS N.V.
B03C3/68B03C3/08B03C3/12B03C3/368B03C3/47B03C2201/14B03C2201/24B03C2201/32
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Quick Facts
Patent No.
US 11,413,628
App. No.
16/465,588
Granted
Aug 16, 2022
Kind
B2
Abstract

An electrostatic air cleaning device comprises a particle charging section, a particle precipitation section, a current sensor for measuring an electric current flowing through electrode plates of the precipitation section and a relative humidity sensor. The voltage applied to the electrode plates and the air flow through the device are controlled in dependence on the measured current flowing through the electrode plates. In this way, control is provided to prevent excessive electric leakage currents inside the precipitation section, that may lead to a hazard, and to optimize the energy efficiency of the cleaning device in relation to its cleaning performance. The relative humidity information also enables diagnosis of the cause of the high leakage current and the status of the precipitation section concerning the amount of precipitated particles therein.

Claims (32)

1. An electrostatic air cleaning device, comprising:

a particle charging section;

a particle precipitation section, comprising parallel electrode plates;

a source of electric potential for applying a voltage between adjacent electrode plates in the particle precipitation section;

a current sensor for measuring an electric current flowing through the electrode plates;

a relative humidity sensor for sensing relative humidity of air;

a flow controller; and

a device controller,

wherein the device controller is adapted to control the source of electric potential and the flow controller in dependence on the measured electric current flowing through the electrode plates, and wherein the device controller is adapted to implement:

a first, normal, operation mode when the measured electric current flowing through the electrode plates is below a current threshold;

a second operation mode when the measured electric current flowing through the electrode plates is above the current threshold and the source of electric potential is controlled to reduce the electric current, wherein the flow controller is controlled to achieve a desired filtration efficiency, and wherein the measured electric current being above the current threshold is caused by a high relative humidity; and

a third operation mode when the measured electric current flowing through the electrode plates is above the current threshold and the source of electric potential is controlled to reduce the electric current, wherein the flow controller is controlled to achieve the desired filtration efficiency, wherein the measured electric current being above the current threshold is caused by a level of particle deposition in the particle precipitation section, and wherein, in the third operation mode, the device controller is adapted to provide output information as an output signal indicating that cleaning or replacement of the particle precipitation section is required.

2. The electrostatic air cleaning device as claimed in claim 1 , wherein the device controller is adapted to implement the first operation mode by applying a maximum electric potential between the adjacent electrode plates, and wherein the flow controller is adapted to implement a flow rate as selected by a user of the electrostatic air cleaning device.

3. The electrostatic air cleaning device as claimed in claim 1 , wherein the device controller is adapted to implement the second operation mode when the sensed relative humidity exceeds a humidity threshold and to reduce the electric potential applied between the adjacent electrode plates until the measured electric current flowing through the electrode plates reduces to the current threshold, and wherein the flow controller is adapted to implement a flow rate reduction until the desired filtration efficiency reaches an efficiency threshold.

4. The electrostatic air cleaning device as claimed in claim 1 , wherein the device controller is adapted to implement the third operation mode when the sensed relative humidity is below a humidity threshold and to reduce the electric potential applied between the adjacent electrode plates until the measured electric current flowing through the electrode plates reduces to the current threshold, and wherein the flow controller is adapted to implement a flow rate reduction until the desired filtration efficiency reaches an efficiency threshold.

5. The electrostatic air cleaning device as claimed in claim 3 , wherein the efficiency threshold comprises a fractional filtration efficiency for a particular particle size.

6. The electrostatic air cleaning device as claimed in claim 5 , wherein the particular particle size is 200 nm particle diameter and the efficiency threshold is 0.9.

7. The electrostatic air cleaning device as claimed in claim 1 , wherein the flow controller is a fan.

8. An electrostatic air cleaning method, comprising:

charging airborne particles in an air flow using a charging section;

filtering the air flow using a particle precipitation section which comprises parallel electrode plates having a voltage between adjacent electrode plates;

measuring an electric current flowing through the electrode plates;

sensing a relative humidity; and

controlling the voltage between the adjacent electrode plates and controlling the air flow in dependence on the measured electric current flowing through the electrode plates, wherein a device controller, comprised in an electrostatic air cleaning device, implements:

a first, normal, operation mode when the measured electric current flowing through the electrode plates is below a current threshold;

a second operation mode when the measured electric current flowing through the electrode plates is above the current threshold, and a source of electric potential is controlled to reduce the electric current, wherein a flow controller, comprised in the electrostatic air cleaning device, is controlled to achieve a desired filtration efficiency, and wherein the measured electric current being above the current threshold is caused by a high relative humidity; and

a third operation mode when the measured electric current flowing through the electrode plates is above the current threshold and the source of electric potential is controlled to reduce the electric current, wherein the flow controller is controlled to achieve the desired filtration efficiency, wherein the measured electric current being above the current threshold is caused by a level of particle deposition in the particle precipitation section, and wherein, in the third operation mode, the device controller provides output information as an output signal indicating that cleaning or replacement of the particle precipitation section is required.

9. The electrostatic air cleaning method as claimed in claim 8 , comprising implementing the first operation mode by applying a maximum electric potential between the adjacent electrode plates, and implementing a flow rate as selected by a user of the electrostatic air cleaning device.

10. The electrostatic air cleaning method as claimed in claim 8 , comprising implementing the second operation mode when the sensed relative humidity exceeds a humidity threshold and by reducing the electric potential between the adjacent electrode plates until the measured electric current flowing through the electrode plates reduces to the current threshold, and implementing a flow rate reduction until the desired filtration efficiency reaches an efficiency threshold.

11. The electrostatic air cleaning method as claimed in claim 8 , comprising implementing the third operation mode when the sensed relative humidity is below a humidity threshold and by reducing the electric potential applied between the adjacent electrode plates until the measured electric current flowing through the electrode plates reduces to the current threshold, and implementing a flow rate reduction until the desired filtration efficiency reaches an efficiency threshold.

12. The electrostatic air cleaning method as claimed in claim 10 , wherein the efficiency threshold comprises a fractional filtration efficiency for a particular particle size, for example, 200 nm particle diameter, and wherein the efficiency threshold is 0.9.

13. A non-transitory computer readable recording medium storing a computer program comprising computer program code means which is adapted, when said computer program is run on a computer, to implement the electrostatic air cleaning method of claim 8 .

Assignments (2)
NUNC PRO TUNC ASSIGNMENT Recorded Aug 17, 2023
From: KONINKLIJKE PHILIPS N.V.
To: VERSUNI HOLDING B.V.
Reel/Frame 064618/0115 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 24, 2019
From: MARRA, JOHANNES; KOERBER, ACHIM GERHARD ROLF; RONDA, CORNELIS REINDER
To: KONINKLIJKE PHILIPS N.V.
Reel/Frame 050814/0764 →
Priority Claims (1)
EP 16201686 · Dec 1, 2016 · regional
Continuity (1)
Related Publication 20190381516A1 · Dec 19, 2019