IP Library Granted Patent US 8,973,601
Granted Patent B2
US 8,973,601 · App. 13/017,917 · Granted Mar 10, 2015

Liquid condition sensing circuit and method

Inventors: Peter J. Puskas (Freeport, IL); Steven H. Myers (Lena, IL)
Assignee: Ultrasonic Power Corporation
B08B3/12F17D3/00
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,973,601
App. No.
13/017,917
Granted
Mar 10, 2015
Kind
B2
Abstract

A liquid condition sensor configured to monitor the condition of a liquid in an ultrasonic cleaning system tank, the liquid condition sensor including a first circuit configured to detect a signal transmitted from an ultrasonic generator to one or more ultrasonic transducers located in the tank. The liquid condition sensor further includes a second circuit coupled to the first circuit, the second circuit configured to determine if the signal is indicative of one of a suboptimal liquid level, and an unacceptably high concentration of dissolved gases in the cleaning liquid, and a third circuit coupled to the second circuit, the third circuit configured to provide a warning if one of a suboptimal liquid level, and an unacceptably high concentration of dissolved gases in the cleaning liquid is indicated by the second circuit.

Claims (31)

1. A liquid condition sensor configured to monitor cavitation activity of a liquid in an ultrasonic cleaning system tank, the liquid condition sensor comprising:

a first circuit configured to detect a signal transmitted from an ultrasonic generator to one or more ultrasonic transducers located in the tank;

a second circuit coupled to the first circuit, the second circuit configured to determine if the signal is indicative of one of a suboptimal liquid level, and an unacceptably high concentration of dissolved gases in the cleaning liquid, each of which results in less than optimal cavitation activity;

a third circuit coupled to the second circuit, the third circuit configured to provide a warning if one of a suboptimal liquid level, and an unacceptably high concentration of dissolved gases in the cleaning liquid is indicated by the second circuit.

2. The liquid condition sensor of claim 1 , wherein the first circuit comprises a sensing coil coupled to an output transformer of the ultrasonic generator.

3. The liquid condition sensor of claim 2 , wherein the sensing coil is inductively coupled to the output transformer of the ultrasonic generator.

4. The liquid condition sensor of claim 1 , wherein the second circuit comprises a demodulator and filtering circuit configured to convert an AC signal output from the first circuit into a pulsed DC signal.

5. The liquid condition sensor of claim 4 , wherein the second circuit further comprises a band-pass filter and an amplifier.

6. The liquid condition sensor of claim 5 , wherein the band-pass filter is configured to pass a portion of the signal between approximately 38 kHz and 42 kHz.

7. The liquid condition sensor of claim 5 , further comprising a buffer circuit coupled between the band-pass filter and the amplifier.

8. The liquid condition sensor of claim 1 , wherein the third circuit is comprises a rectifier and an LED driver coupled to a plurality of LEDs.

9. The liquid condition sensor of claim 1 , further comprising a controller configured to execute a control function when the signal is indicative of one of a suboptimal liquid level, and an unacceptably high concentration of dissolved gases in the cleaning liquid.

10. The liquid condition sensor of claim 9 , wherein the control function comprises a degassing procedure.

11. The liquid condition sensor of claim 9 , wherein the control function comprises shutting off power to one or more ultrasonic transducers due to an indication of suboptimal liquid level.

12. The liquid condition sensor of claim 9 , wherein the control function comprises adjusting a level of the liquid level in the tank.

13. A method of sensing cavitation activity of liquid in an ultrasonic cleaning system tank, the method comprising:

detecting a signal being transmitted from an ultrasonic generator to an ultrasonic transducer, wherein the ultrasonic transducer is located in a liquid-filled cleaning tank;

determining if the signal being transmitted is indicative of a suboptimal liquid level and less than optimal cavitation activity in the cleaning tank;

determining if the signal being transmitted is indicative of an unacceptably high concentration of dissolved gases and less than optimal cavitation activity in the cleaning liquid;

providing a warning signal if it is determined that there is a suboptimal liquid level and less than optimal cavitation activity in the cleaning tank; and

providing a warning signal if it is determined that there is an unacceptably high concentration of dissolved gases and less than optimal cavitation activity in the cleaning liquid.

14. The method of claim 13 , wherein detecting a signal being transmitted from an ultrasonic generator to an ultrasonic transducer comprises detecting a signal using a sensing coil coupled to an output transformer of the ultrasonic generator.

15. The method of claim 13 , wherein determining if the signal being transmitted is indicative of a suboptimal liquid level and less than optimal cavitation activity in the cleaning tank comprises demodulating and filtering the signal being transmitted to convert the signal from an AC signal into a pulsed DC signal.

16. The method of claim 15 , wherein determining if the signal being transmitted is indicative of a suboptimal liquid level and less than optimal cavitation activity in the cleaning tank further comprises filtering the signal to pass a portion of the signal between approximately 38 kHz and 42 kHz, and amplifying the filtered signal.

17. The method of claim 13 , wherein determining if the signal being transmitted is indicative of an unacceptably high concentration of dissolved gases and less than optimal cavitation activity in the cleaning liquid comprises demodulating and filtering the signal being transmitted to convert the signal from an AC signal into a pulsed DC signal.

18. The method of claim 17 , wherein determining if the signal being transmitted is indicative of an unacceptably high concentration of dissolved gases and less than optimal cavitation activity in the cleaning liquid further comprises filtering the signal to pass a portion of the signal between approximately 38 kHz and 42 kHz, and amplifying the filtered signal.

19. The method of claim 13 , further comprising commencing a degassing procedure if it is determined that there is an unacceptably high concentration of dissolved gases and less than optimal cavitation activity in the cleaning liquid.

20. A liquid condition sensor configured to monitor cavitation activity of a liquid in an ultrasonic cleaning system tank, the liquid condition sensor comprising:

a first circuit configured to detect a signal transmitted from an ultrasonic generator to one or more ultrasonic transducers located in the tank;

a second circuit coupled to the first circuit, the second circuit configured to determine if the signal is indicative of an unacceptably high concentration of dissolved gases and less than optimal cavitation activity in the cleaning liquid;

a third circuit coupled to the second circuit, the third circuit configured to provide a warning if an unacceptably high concentration of dissolved gases in the cleaning liquid is indicated by the second circuit.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2020
From: ULTRASONIC POWER CORPORATION
To: BJG NELSON HOLDINGS, INC.
Reel/Frame 052142/0269 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 1, 2011
From: PUSKAS, PETER J.; MYERS, STEVEN H.
To: ULTRASONIC POWER CORPORATION
Reel/Frame 025725/0039 →
Continuity (2)
Provisional Application 61300211 · Feb 1, 2010
Related Publication 20110186155A1 · Aug 4, 2011