Gas safety device
11480493 · 2022-10-25
Assignee
Inventors
- Yuji Fujii (Nara, JP)
- Takashi Kayaba (Kyoto, JP)
- Yoshihiro Ueda (Nara, JP)
- Kenji Yasuda (Kyoto, JP)
- Taiti Gyoutoku (Kyoto, JP)
- Hideki Kinoshita (Kyoto, JP)
Cpc classification
G01F1/667
PHYSICS
G01M3/26
PHYSICS
G01M3/28
PHYSICS
G01F1/66
PHYSICS
International classification
Abstract
A gas safety device includes: flow path through which a gas flows; ultrasonic sensor for measuring a flow rate of the gas flowing through flow path; flow rate calculator that calculates a flow rate measurement data pieces from a measurement value of the flow rate measured by ultrasonic sensor; and leakage detector that detects a minor leakage of the gas. The gas safety device further includes: pulsation recognizer that recognizes that pulsation is occurring when a fluctuation in the flow rate measuring data pieces calculated by flow rate calculator is greater than or equal to a predetermined value; and pulsating flow rate corrector that corrects, when pulsation recognizer determines that the pulsation is occurring, the flow rate measurement data piece by a predetermined value. Furthermore, when pulsation recognizer determines that the pulsation is occurring, leakage detector determines whether a leakage is present using the flow rate measurement data piece corrected by pulsating flow rate corrector.
Claims
1. A gas safety device comprising: a flow path through which a gas flows; an ultrasonic sensor for measuring a flow rate of the gas flowing through the flow path; a flow rate calculator that calculates a flow rate measurement data piece from a measurement value of the flow rate measured by the ultrasonic sensor; a leakage detector that detects a minor leakage of the gas; a pulsation recognizer configured to recognize that pulsation is occurring, when a fluctuation in the flow rate measuring data piece calculated by the flow rate calculator is greater than or equal to a predetermined value; and a pulsating flow rate corrector configured to correct the flow rate measurement data piece, when the pulsation recognizer determines that the pulsation is occurring, the pulsating flow rate corrector is configured to correct the flow rate measurement data piece to a value confirmed in advance at the time of designing, the value being a value at which the average value of the flow rate measurement data piece shifts from the flow rate of 0 (L/H), wherein when the pulsation recognizer determines that the pulsation is occurring, the leakage detector determines whether a leakage is present using the flow rate measurement data piece corrected by the pulsating flow rate corrector.
2. The gas safety device according to claim 1, wherein the pulsation recognizer is configured to shorten a flow rate measuring time of the ultrasonic sensor when an average of a predetermined number of the flow rate measurement data pieces falls within a predetermined range excluding 0 L/h during a time period of the measurement performed by the ultrasonic sensor while a predetermined gas appliance is assumed to be not in use.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(9) A gas safety device according to exemplary embodiments of the present invention will now be described with reference to the drawings. Note that the present invention is not limited to any of the exemplary embodiments.
First Exemplary Embodiment
(10)
(11) As illustrated in
(12) Control circuit 4 includes flow rate calculator 15 that obtains the gas flow rate from an ultrasonic wave propagation time between the pair of ultrasonic sensors 1, and also includes pulsation recognizer 5 that recognizes that pulsation of a gas flow rate is occurring when a fluctuation in the flow rate measurement data piece calculated by flow rate calculator 15 is greater than or equal to a predetermined value. In addition, control circuit 4 includes pulsating flow rate corrector 6 that corrects, when pulsation recognizer 5 recognizes that pulsation is present, the flow rate measurement data piece calculated by flow rate calculator 15 by a predetermined value, and also includes leakage detector 14 that detects the presence or absence of a gas leakage using the flow rate measurement data piece corrected by pulsating flow rate corrector 6.
(13) Flow rate calculator 15 controls ultrasonic sensor drive circuit 3 to repeatedly perform flow rate measurement for predetermined flow rate measuring time Ta in a cycle of predetermined measurement interval T, as illustrated in
(14) The following describes operations and actions of the gas safety device configured as above.
(15) First of all, basic operations of the gas safety device according to the present exemplary embodiment are the same as the operations of the conventional art described above with reference to
(16)
(17) Then, when the flow rate measurement data piece fluctuates by at least a predetermined value as in
(18) Next, when pulsation recognizer 5 determines that pulsation is present, flow rate calculator 15 corrects the calculated flow rate measurement data piece with a predetermined value (correction value) determined in advance by pulsating flow rate corrector 6. Using the corrected flow rate measurement data piece, leakage detector 14 determines whether a leakage is actually occurring. The correction value is a value confirmed in advance when the structure of the meter was designed. The correction value is set to a value by which the average of flow rate measurement data pieces fluctuating during pulsation is shifted from 0 (L/h). As described above, in the present exemplary embodiment, the gas safety device includes pulsation recognizer 5 and pulsating flow rate corrector 6 to make it possible to accurately detect a leakage even when pulsation beyond expectation occurs, thereby achieving a gas safety device ensuring greater safety.
Second Exemplary Embodiment
(19) The basic configuration of the gas safety device according to a second exemplary embodiment of the present invention is the same as the basic configuration of the gas safety device according to the first exemplary embodiment illustrated in
(20) When the average flow rate of a predetermined number of flow rate measurement data pieces is very small but falls within a predetermined range excluding 0 (L/h) as illustrated in
(21) Therefore, in this state, it can be determined whether pulsation is present under the same determination conditions as in the first exemplary embodiment. Resultingly, the measurement result is corrected by the correction value that is determined in advance depending on the meter structure, and leakage detector 14 determines whether a leakage is actually occurring.
(22) As described above, in the present exemplary embodiment, the gas safety device includes pulsation recognizer 5 and pulsating flow rate corrector 6 to make it possible to accurately detect a leakage even when pulsation occurs, thereby achieving a gas safety device ensuring greater safety.
Third Exemplary Embodiment
(23)
(24) As illustrated in
(25) Control circuit 4 includes flow rate calculator 15 that obtains the gas flow rate from an ultrasonic wave propagation time between ultrasonic sensors 1 and also includes pulsation recognizer 5 that recognizes that pulsation of a gas flow rate is occurring when a fluctuation in the flow rate measurement data piece calculated by flow rate calculator 15 is greater than or equal to a predetermined value. In addition, control circuit 4 includes pulsating flow rate corrector 6 that corrects, when pulsation recognizer 5 recognizes that pulsation is present, the flow rate measurement data piece calculated by flow rate calculator 15 by a predetermined value. Furthermore, control circuit 4 includes measurement mode optimizer 11 that changes, when pulsation recognizer 5 determines that pulsation is present, the flow rate measuring time to re-set the normal measurement mode with a new flow rate measuring time in which the average of flow rate measurement data piece obtained by ultrasonic sensors 1 performing a predetermined number of measurements of propagation time is closest to 0 (L/h).
(26) The following describes operations and actions of the gas safety device configured as above.
(27) First of all, basic operations are the same as the operations described in the first exemplary embodiment with reference to
(28) In the present exemplary embodiment, when pulsation recognizer 5 determines that pulsation is present, measurement mode optimizer 11 changes flow rate measuring time Ta little by little as shown in
(29) Then, flow rate measuring time Tc in which the average is closest to 0 (L/h) is stored as the optimum measurement mode under the installation conditions of this gas safety device, and subsequent flow rate measurements are performed in the stored measurement mode.
(30) As described above, in the present exemplary embodiment, the gas safety device includes pulsation recognizer 5, pulsating flow rate corrector 6, and measurement mode optimizer 11 to make it possible to accurately detect a leakage even when the influence of the occurrence of pulsation varies depending on the installation conditions of the gas safety device, thereby achieving a gas safety device ensuring greater safety.
(31) As described above, a gas safety device according to a first aspect includes: a flow path through which a gas flows; an ultrasonic sensor for measuring a flow rate of the gas flowing through the flow path; a flow rate calculator that calculates a flow rate measurement data piece from a measurement value of the flow rate measured by the ultrasonic sensor; and a leakage detector that detects a minor leakage of the gas. In addition, the gas safety device according to the first aspect includes: pulsation recognizer that recognizes that pulsation is occurring when a fluctuation in the flow rate measuring data piece calculated by the flow rate calculator is greater than or equal to a predetermined value; and pulsating flow rate corrector that corrects, when the pulsation recognizer determines that the pulsation is occurring, the flow rate measurement data piece by a predetermined value. Furthermore, in the gas safety device according to the first aspect, when the pulsation recognizer determines that the pulsation is occurring, the leakage detector determines whether a leakage is present using the flow rate measurement data piece corrected by the pulsating flow rate corrector.
(32) With this configuration, the gas safety device according to the first aspect can accurately determine whether a gas leakage is present even when the influence of pulsation cannot be reduced in a conventional measurement mode due to the structure or installation conditions of the meter.
(33) In the gas safety device according to a second aspect, when, in particular in the first aspect, an average of a predetermined number of the flow rate measurement data pieces falls within a predetermined range excluding 0 (L/h) during a time period of measurement performed by the ultrasonic sensor while a predetermined gas appliance is assumed to be not in use, the pulsation recognizer may shorten the flow rate measuring time of the ultrasonic sensor.
(34) With this configuration, pulsation can be recognized even when the flow rate measurement data piece provided by the ultrasonic sensors is shifted without fluctuating under the influence of pulsation due to the structure or installation conditions of the meter. Furthermore, the gas safety device includes the pulsating flow rate corrector that corrects, on the basis of a signal from the pulsation recognizer, the flow rate measurement data piece supplied from the ultrasonic sensors by a predetermined value. Therefore, it is made possible to provide the gas safety device that accurately determines that a gas leakage is present even when the influence of pulsation cannot be reduced in a conventional measurement mode due to the structure or installation conditions of the meter.
(35) The gas safety device according to a third aspect may include a measurement mode optimizer that changes, when, in particular in the first aspect, the pulsation recognizer determines that pulsation is occurring, the flow rate measuring time of the ultrasonic sensor to re-set the normal measurement mode with a new flow rate measuring time of the ultrasonic sensor in which the average of flow rate measurement data pieces provided by the ultrasonic sensor for a predetermined number of measurements is closest to 0 (L/h).
(36) With this configuration, it is made possible to provide the gas safety device that can accurately determine whether a gas leakage is present even when the gas safety device is likely to suffer the influence of pulsation due to the installation conditions, because the gas safety device is capable of automatically switching to a measurement mode suitable for the installation site.
INDUSTRIAL APPLICABILITY
(37) As described above, the gas safety device according to the present aspect can accurately detect a leakage by correcting any influence of the structure or installation conditions, the influence leading to pulsation to produce an abnormal flow rate measurement result. Therefore, the gas safety device achieves much greater safety of a gas operating environment and can be used for general household and business applications.
REFERENCE MARKS IN THE DRAWINGS
(38) 1 ultrasonic sensor
(39) 2 flow path
(40) 3 ultrasonic sensor drive circuit
(41) 4 control circuit
(42) 5 pulsation recognizer
(43) 6 pulsating flow rate corrector
(44) 7 shutoff valve drive circuit
(45) 8 shutoff valve
(46) 11 measurement mode optimizer
(47) 12 leakage alarm stopper
(48) 13 leakage alarm
(49) 14 leakage detector
(50) 15 flow rate calculator