IP Library › Granted Patent US 12,264,953
Granted Patent B2
US 12,264,953 · App. 17/774,261 · Granted Apr 1, 2025

System and method for measuring a flow of gas through a channel

Inventor: Patrick Reissner (Herrliberg, CH)
Assignee: BELIMO HOLDING AG
G01F1/667G01F1/662
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Quick Facts
Patent No.
US 12,264,953
App. No.
17/774,261
Filed
May 4, 2022
Granted
Apr 1, 2025
Kind
B2
Art Unit
2855
USPC
73/861.27
Abstract

An HVAC flow measurement system ( 1 ) comprises an ultrasonic flowmeter ( 10 ) for measuring a flow of gas through a channel ( 2 ). The ultrasonic flowmeter ( 10 ) comprises ultrasonic s transducers ( 11, 12 ) arranged at a distance from each other in flow direction (f) and configured to emit an ultrasonic pulse into the channel ( 2 ) and to receive an ultrasonic pulse in the channel ( 2 ). The flow measurement system ( 1 ) further comprises a processor ( 100 ) connected to the two ultrasonic transducers ( 11, 11 a, 11 b, 12, 12 a, 12 b ) and configured to determine and store transit times of ultrasonic pulses propagating in and against flow direction (f) along one or more than one path (R 1 , R 2 ) in the channel ( 2 ), and to determine the flow of gas using the transit times. A damper system ( 40 ) having a damper blade ( 4 ) arranged in the channel ( 2 ) is provided downstream of the ultrasonic flowmeter ( 10 ).

Claims (43)

1. A flow measurement system comprising an ultrasonic flowmeter for measuring a flow of gas through a channel, the ultrasonic flowmeter comprising at least two ultrasonic transducers arranged at a distance from each other in a flow direction, when the ultrasonic flowmeter is fixed to the channel, and configured to emit an ultrasonic pulse into the channel and to receive an ultrasonic pulse in the channel, and a processor connected to the at least two ultrasonic transducers,

wherein the processor is configured to determine and store transit times of ultrasonic pulses propagating in and against the flow direction along at least one path in the channel, and to determine the flow of gas using the transit times,

wherein the flow measurement system further comprises the channel, the ultrasonic flowmeter is fixed to the channel, and a damper system has a damper blade arranged in the channel downstream of the ultrasonic flowmeter, and

wherein a plurality of paths, for measuring the transit times of ultrasonic pulses propagating in and against the flow direction, are implemented using a plurality of direct paths, a plurality of reflection paths, or a combination of one or more direct paths and one or more reflection paths.

2. The flow measurement system of claim 1 , wherein the ultrasonic flowmeter is configured to emit an ultrasonic pulse into the channel and to receive an ultrasonic pulse in the channel along more than one path, and the processor is configured to determine and store transit times of ultrasonic pulses propagating in and against the flow direction along the more than one path in the channel.

3. The flow measurement system of claim 1 , wherein the at least two ultrasonic transducers are configured to receive at least one reflection of an ultrasonic pulse in the channel-, and the processor is configured to determine and store transit times of ultrasonic pulses propagating in and against the flow direction along one or more reflection paths, each reflection path running via one or more reflection points on an inside wall of the channel, and to determine the flow of gas using the transit times.

4. The flow measurement system of claim 1 , wherein the processor is configured to determine and store the transit times of ultrasonic pulses propagating in and against the flow direction along a plurality of reflection paths of a plurality of reflections of an ultrasonic pulse emitted by one of the at least two ultrasonic transducers on a plurality of reflection points on an inside wall of the channel.

5. The flow measurement system of claim 1 , wherein the processor is configured to determine and store the transit times of ultrasonic pulses propagating in and against the flow direction along a plurality of reflection paths of a plurality of ultrasonic pulses emitted by different ultrasonic transducers.

6. The flow measurement system of claim 1 , wherein the processor is further configured to determine a flow profile of the channel—, using the transit times, and determine the flow of gas using the flow profile.

7. The flow measurement system of claim 1 , wherein the damper blade is rotatable about a damper rotation axis which divides a cross section of the channel into a first portion and a second portion and the ultrasonic transducers are arranged on a same side of the channel forming either the first portion of the cross section or the second portion of the cross section.

8. The flow measurement system of claim 1 , wherein the damper blade is rotatable about a damper rotation axis which divides a cross section of the channel into an upper portion and a lower portion, wherein in the upper portion of the cross section the damper blade is movable downstream in the flow direction and in the lower portion of the cross section the damper blade is movable upstream against the flow direction, and the at least two ultrasonic transducers are arranged on a side of the channel forming the upper portion of the cross section.

9. The flow measurement system of claim 1 , wherein the at least two ultrasonic transducers are arranged on a side of the channel along a longitudinal arrangement axis running in a symmetry plane of the damper blade normal to a damper rotation axis.

10. The flow measurement system of claim 1 , wherein the ultrasonic transducer arranged downstream in the flow direction is arranged at a defined distance between its center axis and a cross sectional plane running through the damper blade in closed position, wherein the defined distance is within a range of 75% to 125% of a diameter of the channel.

11. The flow measurement system of claim 1 , wherein the at least two ultrasonic transducers are arranged on a side of the channel along a longitudinal arrangement axis parallel to a central axis of the channel.

12. The flow measurement system of claim 1 , wherein the processor is further configured to determine a temperature of the gas using the transit times.

13. A variable air volume system for heating, ventilating, and air conditioning, the variable air volume system comprising the flow measurement system according to claim 1 .

14. A method of measuring a flow of gas through a channel in the flow measurement system of claim 1 , using an ultrasonic flowmeter which comprises at least two ultrasonic transducers, and a processor connected to the at least two ultrasonic transducers, the method comprising:

fixing the ultrasonic flowmeter to the channel such that the at least two ultrasonic transducers are arranged at a distance from each other in a flow direction and configured to emit an ultrasonic pulse into the channel and to receive an ultrasonic pulse in the channel;

determining and storing by the processor transit times of ultrasonic pulses propagating in and against the flow direction along at least one path in the channel; and

determining by the processor the flow of gas using the transit times,

wherein the flow measurement system further comprises the channel, the ultrasonic flowmeter is fixed to the channel, and a damper system has a damper blade arranged in the channel downstream of the ultrasonic flowmeter,

wherein determining the flow of gas comprises the processor further using signal strength values of the received ultrasonic pulses, and

wherein the method comprises the processor excluding the transit times of ultrasonic pulses received via a particular reflection path in determining the flow of gas, if a signal strength value of the reflection via the particular reflection path is below a threshold value.

15. A method of measuring a flow of gas through a channel in the flow measurement system of claim 1 , using an ultrasonic flowmeter which comprises at least two ultrasonic transducers, and a processor connected to the at least two ultrasonic transducers, the method comprising:

fixing the ultrasonic flowmeter to the channel such that the at least two ultrasonic transducers are arranged at a distance from each other in a flow direction and configured to emit an ultrasonic pulse into the channel and to receive an ultrasonic pulse in the channel;

determining and storing by the processor transit times of ultrasonic pulses propagating in and against the flow direction along at least one path in the channel; and

determining by the processor the flow of gas using the transit times,

wherein the flow measurement system further comprises the channel, the ultrasonic flowmeter is fixed to the channel, and a damper system has a damper blade arranged in the channel downstream of the ultrasonic flowmeter, and

wherein a plurality of paths, for measuring the transit times of the ultrasonic pulses propagating in and against the flow direction, are implemented using a plurality of direct paths, a plurality of reflection paths, or a combination of one or more direct paths and one or more reflection paths.

16. The method of claim 15 , wherein the at least two ultrasonic transducers are configured to emit an ultrasonic pulse into the channel and to receive an ultrasonic pulse in the channel along more than one path, and the method comprises determining and storing by the processor transit times of ultrasonic pulses propagating in and against the flow direction along the more than one path in the channel.

17. The method of claim 15 , wherein the at least two ultrasonic transducers are configured to receive at least one reflection of an ultrasonic pulse in the channel—, and the method comprises the processor determining and storing transit times of ultrasonic pulses propagating in and against the flow direction along one or more reflection paths, each reflection path running via one or more reflection point on an inside wall of the channel, and determining the flow of gas using the transit times.

18. The method of claim 15 , wherein the method comprises the processor determining and storing the transit times of ultrasonic pulses propagating in and against the flow direction along a plurality of reflection paths of a plurality of reflections of an ultrasonic pulse emitted by one of the at least two ultrasonic transducers on a plurality of reflection points on an inside wall of the channel.

19. The method of claim 15 , wherein the method comprises the processor determining and storing the transit times of ultrasonic pulses propagating in and against the flow direction along a plurality of reflection paths of a plurality of ultrasonic pulses emitted by different ultrasonic transducers.

20. The method of claim 15 , wherein the method further comprises the processor determining a flow profile of the channel—, using the transit times, and determining the flow of gas comprises the processor using the flow profile.

21. The method of claim 15 , wherein the method further comprises the processor determining a temperature of the gas using the transit times.

22. The method of claim 15 , wherein the damper blade is rotatable about a damper rotation axis which divides a cross section of the channel into a first portion and a second portion, and the at least two ultrasonic transducers are arranged on a same side of the channel forming either the first portion of the cross section or the second portion of the cross section.

23. The flow measurement system of claim 15 , wherein the damper blade is rotatable about a damper rotation axis which divides a cross section of the channel into an upper portion and a lower portion, wherein in the upper portion of the cross section the damper blade is movable downstream in the flow direction and in the lower portion of the cross section the damper blade is movable upstream against the flow direction, and the at least two ultrasonic transducers are arranged on a side of the channel forming the upper portion of the cross section.

24. The flow measurement system of claim 15 , wherein the at least two ultrasonic transducers are arranged on a side of the channel along a longitudinal arrangement axis running in a symmetry plane of the damper blade normal to a damper rotation axis.

25. A flow measurement system comprising an ultrasonic flowmeter for measuring a flow of gas through a channel, the ultrasonic flowmeter comprising at least two ultrasonic transducers arranged at a distance from each other in a flow direction, when the ultrasonic flowmeter is fixed to the channel, and configured to emit an ultrasonic pulse into the channel and to receive an ultrasonic pulse in the channel, and a processor connected to the at least two ultrasonic transducers,

wherein the processor is configured to determine and store transit times of ultrasonic pulses propagating in and against the flow direction along at least one path in the channel, and to determine the flow of gas using the transit times,

wherein the flow measurement system further comprises the channel, the ultrasonic flowmeter is fixed to the channel, and a damper system has a damper blade arranged in the channel downstream of the ultrasonic flowmeter,

wherein the processor is configured to determine the flow of gas further using signal strength values of the received ultrasonic pulses; and

wherein the processor is further configured to exclude the transit times of ultrasonic pulses received via a particular reflection path in determining the flow of gas, if a signal strength value of the reflection via the particular reflection path is below a threshold value.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 2, 2022
From: REISSNER, PATRICK
To: BELIMO HOLDING AG
Reel/Frame 060256/0725 →
Priority Claims (1)
CH 01696/19 · Dec 23, 2019 · national
Continuity (1)
Related Publication 20220381595A1 · Dec 1, 2022
References Cited (55)
US 4515021A · Wallace et al. · 1985 [cited by applicant]
US 5117698A · Baumoel · 1992 [cited by examiner]
US 5553505A · Bignell et al. · 1996 [cited by applicant]
US 6330831B1 · Lynnworth et al. · 2001 [cited by applicant]
US 6345539B1 · Rawes et al. · 2002 [cited by applicant]
US 6494105B1 · Gallagher · 2002 [cited by applicant]
US 6584860B1 · Feller et al. · 2003 [cited by applicant]
US 7201065B1 · Feller · 2007 [cited by applicant]
US 7581453B2 · Gen · 2009 [cited by applicant]
US 8302455B2 · Straub, Jr. · 2012 [cited by examiner]
US 9453749B1 · Bachmann et al. · 2016 [cited by applicant]
US 9671261B2 · Hayashi · 2017 [cited by examiner]
US 10036763B2 · Hies et al. · 2018 [cited by applicant]
US 10837816B2 · Mayle et al. · 2020 [cited by applicant]
US 10928414B2 · Hies et al. · 2021 [cited by applicant]
US 11237034B2 · Funck · 2022 [cited by applicant]
US 11268725B2 · Chen et al. · 2022 [cited by applicant]
US 20080156107A1 · Ao et al. · 2008 [cited by applicant]
US 20100095782A1 · Ferencz · 2010 [cited by examiner]
US 20110162461A1 · Allen · 2011 [cited by applicant]
US 20120204620A1 · Straub, Jr. · 2012 [cited by applicant]
US 20140067135A1 · Lehnert et al. · 2014 [cited by applicant]
US 20140083202A1 · Wiest · 2014 [cited by examiner]
US 20140352399A1 · Vaissiere · 2014 [cited by applicant]
US 20160265954A1 · Bachmann et al. · 2016 [cited by applicant]
US 20170153132A1 · Aughton · 2017 [cited by applicant]
US 20180328956A1 · Hies et al. · 2018 [cited by applicant]
US 20190011300A1 · Gloss et al. · 2019 [cited by applicant]
US 20200141604A1 · Chen et al. · 2020 [cited by applicant]
US 20200173824A1 · Funck · 2020 [cited by applicant]
US 20220373373A1 · Reissner · 2022 [cited by examiner]
US 20220381595A1 · Reissner · 2022 [cited by applicant]
US 20220381596A1 · Reissner · 2022 [cited by examiner]
EP 1113247A1 · 2001 [cited by examiner]
GB 2363455A · 2001 [cited by applicant]
JP 2005241581A · 2005 [cited by applicant]
JP 2012002625A · 2012 [cited by applicant]
JP 2014137369A · 2014 [cited by applicant]
WO 2010122117A1 · 2010 [cited by applicant]
WO 2015063079A1 · 2015 [cited by applicant]
WO 2015154777A1 · 2015 [cited by applicant]
WO 2018233984A1 · 2018 [cited by applicant]
WO 2019010603A1 · 2019 [cited by applicant]
Swiss Search Report of CH 16962019 dated May 4, 2020 [PCT/ISA/201]. [cited by applicant]
International Search Report of PCT/EP2020/087760 dated Apr. 7, 2021 [PCT/ISA/210]. [cited by applicant]
Written Opinion of PCT/EP2020/087760 dated Apr. 7, 2021 [PCT/ISA/237]. [cited by applicant]
Communication issued Apr. 18, 2024 in European Application No. 20 838 557.5. [cited by applicant]
Communication issued Apr. 22, 2024 in European Application No. 20 838 556.7. [cited by applicant]
Office Action issued May 31, 2024 in U.S. Appl. No. 17/774,407. [cited by applicant]
International Search Report for PCT/EP2020/087761 dated Apr. 12, 2021 [PCT/ISA/210]. [cited by applicant]
Written Opinion for PCT/EP2020/087761 dated Apr. 12, 2021 [PCT/ISA/237]. [cited by applicant]
Communication issued Apr. 18, 2024 in European Application No. 20 838 558.3. [cited by applicant]
International Search Report of PCT/EP2020/087759 dated Apr. 16, 2021 [PCT/ISA/210]. [cited by applicant]
Written Opinion of PCT/EP2020/087759 dated Apr. 16, 2021 [PCT/ISA/237]. [cited by applicant]
Chinese Office Action dated Jan. 26, 2025 in Application No. 202080088622.8. [cited by applicant]