WO1995011425A2 - Vortex flowmeter electronics - Google Patents
Vortex flowmeter electronics Download PDFInfo
- Publication number
- WO1995011425A2 WO1995011425A2 PCT/US1993/009942 US9309942W WO9511425A2 WO 1995011425 A2 WO1995011425 A2 WO 1995011425A2 US 9309942 W US9309942 W US 9309942W WO 9511425 A2 WO9511425 A2 WO 9511425A2
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- filter
- frequency
- signal
- corner
- output
- Prior art date
Links
Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01F—MEASURING VOLUME, VOLUME FLOW, MASS FLOW OR LIQUID LEVEL; METERING BY VOLUME
- G01F15/00—Details of, or accessories for, apparatus of groups G01F1/00 - G01F13/00 insofar as such details or appliances are not adapted to particular types of such apparatus
- G01F15/06—Indicating or recording devices
- G01F15/061—Indicating or recording devices for remote indication
- G01F15/063—Indicating or recording devices for remote indication using electrical means
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01F—MEASURING VOLUME, VOLUME FLOW, MASS FLOW OR LIQUID LEVEL; METERING BY VOLUME
- G01F1/00—Measuring the volume flow or mass flow of fluid or fluent solid material wherein the fluid passes through a meter in a continuous flow
- G01F1/05—Measuring the volume flow or mass flow of fluid or fluent solid material wherein the fluid passes through a meter in a continuous flow by using mechanical effects
- G01F1/20—Measuring the volume flow or mass flow of fluid or fluent solid material wherein the fluid passes through a meter in a continuous flow by using mechanical effects by detection of dynamic effects of the flow
- G01F1/32—Measuring the volume flow or mass flow of fluid or fluent solid material wherein the fluid passes through a meter in a continuous flow by using mechanical effects by detection of dynamic effects of the flow using swirl flowmeters
- G01F1/325—Means for detecting quantities used as proxy variables for swirl
- G01F1/3287—Means for detecting quantities used as proxy variables for swirl circuits therefor
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01F—MEASURING VOLUME, VOLUME FLOW, MASS FLOW OR LIQUID LEVEL; METERING BY VOLUME
- G01F15/00—Details of, or accessories for, apparatus of groups G01F1/00 - G01F13/00 insofar as such details or appliances are not adapted to particular types of such apparatus
- G01F15/06—Indicating or recording devices
- G01F15/068—Indicating or recording devices with electrical means
Definitions
- the present invention relates to flowmeters, such as vortex shedding meters or swirl ⁇ ieters which are responsive to a fluid flow.
- flowmeters such as vortex shedding meters or swirl ⁇ ieters which are responsive to a fluid flow.
- electronics for such meters which reduce noise in a flow responsive signal.
- Flowmeters sense the flow of liquid and gases in conduits and produce a noise contaminated flow responsive signal. Under certain circumstances, the presence of an obstacle or shedder in a flow conduit causes periodic vortices.
- a vortex flowmeter produces shedding vortices from a bluff body. The frequency of these vortices is directly proportional to the flow velocity in the meter.
- the shedding vortices produce an alternating differential pressure across the bluff body at the shedding frequency. This differential pressure is converted to an electrical signal by piezoelectric crystals or other differential pressure devices.
- the magnitude of the differential pressure or electric signal is proportional to p, where p is the fluid density and V is the fluid velocity.
- the signal is proportional to D 2 F 2 , where D is the inside diameter of the meter and F is the shedding frequency.
- the flowmeter produces pulses having a frequency proportional to the flow rate.
- the swirlmeter produces a similar flow responsive signal by measuring the vortex precession frequency produced by swirling the flow, then passing the flow through a downstream contraction and expansion.
- the vortex flowmeter signal comprises a fundamental signal which has a fundamental frequency representative of the flow and an associated noise signal at various frequencies caused by fluid turbulence and other unrepeatable factors such as pipe vibrations, common mode pressure variation and noise from acoustic sources.
- Pipe vibrations caused by pumps, motors and unsupported sections of pipe are usually in the 0 to 100 Hz range and common mode pressure noise in the 10 to 1000 Hz range, while acoustic noise is generally above 100 Hz.
- Fluid turbulence results in noise on both sides of the fundamental frequency. Because fluid turbulence noise generally increases in amplitude as the flow velocity increases, it is particularly troublesome when low frequency turbulent noise below the fundamental frequency is disproportionally amplified by signal processing electronics.
- Flowmeters like vortex shedding meters and swirlmeters are designed for a variety of applications encompassing wide ranges of flow rates, pipe diameters and fluid densities. Consequently, such meters operate over a relatively large dynamic range.
- the flow velocity range is typically 25 to 1.
- signal amplitude will change by a ratio of 625 to 1, because the signal is proportional to the square of the velocity.
- variable fluid densities which range between 1 and 800 in fluids such as atmospheric air to liquids, a frequency change of 100 to 1 is possible for a specific meter size and will result in a maximum signal amplitude range from 10,000 to 1.
- the signal-to-noise ratio changes markedly over the ranges.
- a single set of electronics having an improved high frequency response which proportionally amplify low frequencies is desired.
- electronics which have a sufficiently fast response time to prevent loss of pulses during flow transients.
- the present invention is a transmitter sensing a physical parameter such as flow.
- Filter means in the transmitter receive a noise contaminated input signal representative of the physical parameter which has a fundamental frequency varying responsively to the physical parameter.
- Filter means filter the input signal with a current high pass (HP) filter characteristic to produce a filtered signal having a frequency representative of the physical parameter.
- the frequency characteristic of the HP filter means is selected from a family of preselectable HP filters having varying corner frequencies. Each HP filter in the family has a unique switchup and a unique switchdown value assigned to it.
- the electronics include timer means which provide a period timer value representative of the time between period boundaries of the filtered signal and also provide a present timer value representative of the elapsed time since a last period boundary of the filtered signal.
- the electronics also include adaptive response means which select a current HP filter for use in the filter means.
- the adaptive means use one selection method when the flow is increasing and another selection method when the flow decreases. For increasing flow, a HP filter corner higher in frequency than the current filter corner is selected when the period timer value is less than a switchup value corresponding to the filter having such next higher corner frequency. For decreasing flow, a HP filter corner lower in frequency than the current filter corner is selected when the present timer value exceeds a switchdown value corresponding to such lower filter characteristic.
- output means convert the signal from the filter means into a transmitter output, typically a 4-20 mA current or a frequency output, which is representative of such physical parameter.
- the filter means may also include low pass (LP) filter means having a variable low frequency corner which is set as a function of the diameter of a pipe through which the fluid flows and the density of the fluid.
- LP low pass
- Schmitt trigger means receiving the filtered signal and coupled between the timer means and the adaptive response means for providing a stable filtered signal to the adaptive response means.
- the adaptive response means decreases the frequency of the LP filter corner frequency until a first corner frequency is encountered where the output of the Schmitt trigger is no longer a square wave, and then increases such first corner frequency to a second corner frequency greater than the first corner frequency.
- FIG. 2A and 2B are graphs of the frequency responses of a two pole low pass filter and a four pole high pass filter having selectable frequency characteristics in accordance with the present invention.
- FIG. 3 is a graph of input signal level versus frequency for a bandpass filter, as if acting at the input of the filter and Schmitt trigger combination with two families of vortex meter flow curves superimposed thereon.
- FIG. 4 is a graph of input signal level versus frequency for a combined bandpass filter, having the 3
- Hz LP characteristic selected, as if acting at the input of the filter and the Schmitt trigger, with a single flowmeter curve superimposed thereon.
- FIG. 5 is a block diagram of an alternate embodiment of vortex flowmeter in accordance with the present invention.
- FIG. 1 shows a vortex flowmeter 10 including electronics generally indicated at 20 for conditioning a vortex sensor signal 33. Ele ronics 20 increases the signal-to-noise ratio of signal 33 and produces both a
- Electronics 20 are api ..icable to field mounted process control instruments which must respond to a wide dynamic range of input frequencies. Electronics 20 are particularly appropriate for meters sensing a physical parameter responsive to a power of the variable which the output represents. For example, both vortex flowmeters and swirlmeters measure fluid flow by sensing an amplitude modulated pressure signal whose frequency is proportional to the flow and output a signal representative of the flow rate.
- a liquid or gas fluid 23 creates a flow, Q, through a pipe 22.
- a vortex meter housing 25 having a bluff body 26 therein is located in pipe 22.
- the magnitude of the output signal from the piezoelectric sensor is proportional to the differential pressure, which is proportional to pV 2 , where p is the fluid density and V is the velocity of fluid 23, and also proportional to pD 2 F 2 (when the ratio of the size of the shedding bar to the pipe diameter is held constant) , where D is the inside diameter of meter housing 25 and F is the shedding frequency.
- the output of the piezoelectric sensor is coupled to a charge amp 32 which includes capacitor C F and resistor R F and outputs vortex sensor signal 33.
- Adjustable two-pole low pass (hereinafter LP) filter 34 conditions signal 33 to remove undesirable high frequency noise.
- the corner of LP filter 34 is set at or slightly below the lowest flow frequency expected in a specific application and therefore needs only to be set once per application.
- FIG. 2A shows the frequency responses for each of the preselectable LP filter 34 characteristics, specifically set in this embodiment of the invention for corner frequencies between 0.75 and 1536 Hz.
- the output of filter 34 is substantially constant, or flattened, at frequencies above the selected low frequency corner.
- This flattening phenomenon is desirable because it attenuates noise occurring at higher frequencies and at larger amplitudes more than it attenuates the vortex sensor signal 33 and provides a more consistent signal to noise ratio over a given flow range.
- LP filter 34 prevents the flowmeter from needless! - responding to noise at higher frequencies ana at larger amplitudes than signal 33 because of the flattening phenomenon.
- FIG. 2B shows the frequency response of four-pole high pass (hereinafter HP) filter 36 for each preselectable HP corner frequency.
- HP high pass
- Filter 36 attenuates the low frequency noise which
- LP filter 34 does not attenuate and produces signal 41.
- the frequency response of filter 36 has four poles because of the effective loss of two poles from filter 34 in the frequency range from the LP corner to the HP corner.
- the HP corner frequency is typically larger than the LP corner frequency in order to provide more noise immunity for low frequency noise. Without filter 36, this low frequency noise present at the output of HP filter 34 would be particularly troublesome at high flow rates when the low frequency noise has an amplitude greater than the amplitude of the vortex signal.
- Schmitt trigger 42 squares the output of HP filter 36 to produce square wave signal 44, which has a frequency substantially equal to the frequency of vortex sensor signal 33.
- the voltage at which the output of trigger 42 changes state is preferably set to approximately twenty-five percent of the voltage level measured at signal 41. The measurement should be performed over the flattened section of the response found at frequencies above the low frequency corner of filter 34 in order to provide an optimally stable square wave output.
- Period timer 46 clocked by clock 48, provides an elapsed time since a last period boundary of output signal 44 to HP filter selection logic 40. The elapsed time typically corresponds to the time since the last rising edge of signal 44, but alternatively may be made over more than one period to reduce the effect of jitter on HP filter selection.
- FIG. 3 shows the set of preselectable LP filter attenuation characteristics (in solid lines) between 0.75 Hz and 1536 Hz.
- the family of HP filter attenuation characteristics (in dotted/dashed line) is provided only for the 3 Hz LP characteristic.
- the 3 Hz LP characteristic corresponds to LP filter 34 and one of the characteristics of the HP family corresponds to HP filter 36.
- the envelope formed by the 3 Hz LP characteristic and whichever HP characteristic is selected defines the area where signal 41 has an amplitude large enough to exceed the voltage .threshold necessary to make the output of trigger 42 change state.
- Curves L1-L8 are for pipes carrying liquids of density 62.4 lb/ft 3 at atmospheric pressure and ranging in diameter between one and eight inches.
- Flow curves A1-A6 are for a family of pipes carrying air at atmospheric pressure and ranging in diameter between one and six inches. Increasing fluid density moves the curves vertically upward for the same velocity range and increasing diameter moves the curves to the left for the same velocity range. As the magnitude of the output signal of vortex signal 33 is proportional to pD 2 F 2 .
- Each application will typically have a different flow curve. Increasing flows are represented as successively higher operating points on the same flow curve. Once the flow curve for the instant application is substantially known, the proper LP filter characteristic can be selected.
- a margin of 4:1 between the amplitude of signal 41 to the voltage required to trigger Schmitt trigger 42 is preferred to allow for small amplitude modulations and for filter switching transients.
- FIG. 4 shows a single LP filter characteristic (a 3 Hz filter characteristic) and a family of HP filter characteristics (0.75 Hz, 1.5 Hz, 3.0 Hz, etc.). Superimposed on these filter characteristics is an operating curve for a pipe of eight inch diameter carrying liquid of density 62.4 lbs/ft 3 , indicated at reference designator 19. Points A, B, C, D and E represent different operating points on curve 19. Point A has the lowest flow of the five points and points B, C, D and E have successively faster flow rates. As discussed above, the envelope formed by the 3 Hz LP characteristic and whichever HP characteristic is selected defines the area where signal 41 has an amplitude large enough to exceed the voltage threshold necessary to make the output of Schmitt trigger 42 change state.
- signal 33 For example, consider application of signal 33 to the combination of filter 34,36 and trigger 42 when the 0.75 LP characteristic is selected for filter 34. If signal 33 were of the amplitude and frequency represented at point A on curve 19, signal 44 would be a constant voltage, whereas application of signal 33 represented at point C on curve 19 would result in a square wave signal at signal 4 .
- HP filter selection logic 40 recognizes two switchpoints corresponding to each of the preselected HP filter characteristics (a "switchup point” and a “switchdown point”) and recognizes which HP filter characteristic is currently used in HP filter 36, (the "current filter characteristic") .
- Each switchpoint represents a timer value representative of a frequency at which logic 40 should select a new filter characteristic.
- Logic 40 continually monitors the value of period timer 46, (the "present timer value”) .
- the switchup and switchdown point for each preselectable filter characteristic introduce hysteresis, which minimizes excessive filter switching caused by frequency jitter in vortex signal 33.
- Period timer 46 is reset by a period boundary of signal 44 and consequently represents the elapsed time since the last period boundary of signal 44.
- the present timer value at the end of a signal 44 period (the "period timer value"), is less than a switchup point corresponding to the HP filter characteristic having the next highest frequency corner, logic 40 immediately selects the filter with such next higher frequency corner for use in filter 36.
- the period timer value at the end of a signal 44 period is less than the switchup point corresponding to the 1.5 Hz HP filter characteristic shown at Ul and logic 40 will immediately select the 1.5 Hz characteristic.
- the period timer value at the end of a signal 44 period is less than the switchup ; int corresponding to the 3.0 Hz HP filter characteristic shown at U2 and logic 40 immediately selects the 3.0 Hz characteristic.
- the 6.0 Hz HP filter characteristic is chosen using the same selection process. The response time of electronics 20 when successively higher frequency corner HP filters are selected decreases as the flow increases.
- logic 40 selects the filter characteristic having the next higher corner frequency relative to the corner frequency of the current filter characteristic when the period timer value, as sampled when signal 44 changes state, is less than the switchup point for such next higher corner frequency filter.
- This selection process selects a filter having a corner one step away in frequency from the corner of the current filter characteristic.
- An alternative selection process can be configured to select a filter characteristic more than one step away in corner frequency than the current filter characteristic. In such a selection process, logic 40 compares the period timer value at the end of a period of signal 44 to the set of switchup points and selects the filter characteristic having a corner corresponding to the higher of the switchup points which bound the period timer value.
- Logic 40 compares the present timer value and the switchdown point assigned to the HP filter characteristic having the next lower frequency corner than the current filter characteristic.
- the 6 Hz HP characteristic continues to be used as the filter characteristic of filter 36 until the present timer value exceeds the switchdown value assigned to point D3, at which time logic 40 selects for immediate use in filter 36 the 3 Hz HP characteristic.
- This same process continues as the flow decreases and the present timer values exceed successively larger switchdown values assigned to switchdown points D2 and Dl, respectively, without receiving a period boundary to initiate selection.
- logic 40 selects the filter characteristic having the next lower corner frequency relative to the corner frequency of the current filter characteristic when the present timer value exceeds a switchpoint corresponding to the filter characteristic having such next lower corner frequency.
- the corner frequency of HP filter 36 is adjusted in response to the frequency of signal 44 and selection logic 40 sets the filter corner frequency adequately below the frequency of signal 44.
- a small timing error results from the delay to set the HP filter 36 before timer 46 is reset, which is compensated by resetting timer 46 to the delay time instead of setting it to zero or by providing a latch to hold the value of counter 46 and restarting the timer.
- the hysteresis effected by this method of filter characteristic selection ensures that a currently selected filter characteristics is selected over a broad range of frequencies. For example, signal 44 frequencies corresponding to timer values between U5 and D4 are filtered by the 12 Hz HP characteristic. Similarly, signal 44 frequencies corresponding to timer values between D2 and U3 are filtered by the 3 Hz characteristic. This feature ensures that frequency jitter of vortex signal 33 will cause minimal filter switching and therefore reduce undesirable noise.
- the above discussed filter corners are selected to be separated in frequency by a factor of two, alternate arrangements are acceptable.
- a family of HP filters having corner frequencies separated by factors of the fourth root of two is preferred since it provides less sensitivity to noise and is convenient for a digital implementation of the filtering function.
- the adaptive filter response disclosed above is considered open loop since changing the filter corner frequency has no affect on the period measurement which controls the filter.
- Adaptive response time allows one set of electronics 20 to be used for all meter sizes and flow ranges, even though the dynamic range of a vortex flowmeter varies from 1 Hz for 8" diameter meters carrying liquid to 6000 Hz for 1/2" diameter meters carrying gases.
- Alternate vortex signal conditioning methods have disadvantages.
- Automatic gain control methods modify filter characteristics based on the amplitude of a vortex sensor output and consequently can track noise instead of the flow signal.
- Those methods utilizing a HP tracking filter experience a loss of pulses during fast reductions in flow rate.
- a decreasing flow transient causes the HP filter to attenuate the flow signal because the time required for the tracking filter to change to a new filter selection was longer than the flow transient.
- the time constant is necessarily set by the lowest flow frequency and is therefore too large at high flow frequencies. This caused a loss of pulses, and consequently of flow rate output during such a transient.
- the HP filter corner was far from the vortex flow frequencies to avoid attenuation during a decreasing flow transient, then the effectiveness of the filter was reduced.
- the present invention avoids these transient problems due to both its unique self-adapting response time and the method by which HP filter characteristics are selected in the absence of a period boundary of signal 44, since the response time of the electronics decreases as the frequency of vortex signal 33 increases. This means that the electronics respond faster at high flow rates than they do at low flow rates.
- the user initiated LP filter selection logic 38 selects a corner frequency for LP filter 34 as a function of the diameter of pipe 22 and the density of fluid 23. This selection is typically performed once during an application and needs to be changed, for example, when a meter size is changed or when fluid density is substantially changed.
- the corner can be selected via a hand-held communicator over a current loop, operator set manual dip switches, or an automated process which allows flowmeter 10 to select its proper setting and provide maximum noise immunity.
- a flow rate is set in pipe 22 is which is approximately half the maximum flow rate for flowmeter 10. The operator then initiates the flowmeter's automatic LP filter selection process. Flowmeter 10 lowers the corner of LP filter 34 until the signal 44 is no longer a square wave.
- the corner frequency of LP filter 34 is then increased by a factor of approximately two to provide a factor of four between trigger 42 output and the voltage required for Schmitt trigger 42 to change state.
- a factor of approximately two is chosen because of the 1/F2 response on filter 34, which provides a factor of four change in amplitude.
- Pulse scaling circuit 50 converts square wave signal 44 into F out , which is representative of flow rate corresponding to a convenient unit of measure such as pulses per gallon. Circuit 50 is preferably digital in order to guarantee accuracy, provide a wide range of multiplication factors and space the output pulses evenly.
- Output circuit 52 converts square wave signal 44 into a 4-20 mA current representative of the flow. Circuit 52 is coupled to a current loop commonly used in the process control industry. Some flowmeters have an alternate embodiment of output circuit 52 which outputs digital information, representative of flowmeter status parameters and flow, superimposed on the 4-20 mA current line or power line.
- a digital embodiment of the present invention utilizir. ligital filters is indicated generally at 200 in FIG. .
- a digital implementation of the function described for flowmeter 200 is preferred because it is more powerful and flexible than analog filtering and can be under direct software control of a microprocessor in a smart transmitter.
- An analog anti-aliasing filter 202 receives the analog signal from a vortex flow sensor and amplifier 201. Filter 202 filters the sensor signal to remove unwanted high-frequency noise and performs anti-aliasing filtering.
- Sigma-delta converter 204 samples the vortex signal at approximately 307.2 kHz and outputs a single bit datastream at 307.2 kHz which is representative of the amplitude and frequency of the output of vortex sensor and amplifier 201. There are no word boundaries in the datastream. The relative number of ones and zero, sometimes called the bit density, is representative of the amplitude of the vortex signal.
- Converter 204 which is preferably implemented in a CMOS ASIC to minimize power, cost and size, is particularly suited to digitizing AC signals in the one to ten kHz range which is a typical frequency range for vortex flow sensors.
- a sigma-delta converter simplifies electronics since circuits which synchronize the transmission of a data words or circuits which count the number of bits in a word are not needed.
- the output datastream has a frequency approximately 100 times greater than the typical maximum vortex frequency, which is between 1-6 kHz.
- Oversampling means moves quantization noise to higher frequencies.
- Subsequent digital filtering and decimation simplifies the anti-aliasing requirements and maintains the quantization noise inherent in sigma-delta converters at higher frequencies than the maximum vortex frequency.
- the sampling rate is chosen to be as low as possible to reduce power yet still have low noise amplitude in the vortex frequency band.
- This serial high-frequency format is ideal for transmission across an electrical isolation barrier 206 required for sensors which are grounded or have resistive leakage .to ground due to high temperature loss of insulation resistance.
- Such sensors are typically used in vortex flowmeters to reduce cost and simplify connections. Furthermore, the single bit datastream enables an inexpensive, compact transformer or capacitor to be used in isolator 206.
- Other isolation media are acceptable such as optical, piezoelectric/acoustic and magnetostrictive isolation means.
- a power supply 207 supplies power to a clock 209 whose output signal is passed through isolation 206 and from there to power supply 205, which squares the clock signal and provides as a clock to circuits 201-204.
- the clock signal is also -ectified and voltage regulated to operate as a power source for circuits 201-204. This arrangement also synchronizes clocks on both sides of barrier 206.
- the serial bitstream from converter 204 is passed through isolation 206 in the other direction to a digital decimating filter 208. Isolator 206 isolates the grounded vortex sensor from the 4- 20 mA current loop of the flowmeter to avoid noise and currents in ground loops.
- Decimating filter 208 increases the width of the data word from one bit wide to ten bits wide and reduces the sampling frequency by a factor of ten to 30.72 kHz. Filter 208 reduces the amplitude of quantization noise and prevent aliasing of higher frequency signals caused by the decimation. The decimation factor is chosen so the decimation sampling rate is five to eight times greater than the highest frequency of the vortex signal in order to use simple digital filters in subsequent stages. Output of decimating filter 208 is received by a LP infinite impulse response filter (IIR) 210 that was designed by a bilinear transformation from the analog to digital domain, using coefficients of 1/2 and 1/4 to allow register shifting to replace multiplying circuits.
- IIR infinite impulse response filter
- IIR filter 210 has a zero at one half the 30.72 kHz sampling frequency and a 3,259 Hz corner frequency chosen to be at the upper end of a typical frequency output for a one inch flowmeter. Thus, filter 210 does not attenuate the flow signal, but minimizes unwanted high frequency quantization noise present in the sigma delta converter. The decimating and bilinear filters are not required when other methods of analog to digital conversion are used.
- IIR 212 receives the output of IIR filter 210.
- Filters 212-222 are serially connected in the following order: filter 212, filter 220, filter 214, filter 222, filter 216, and then filter 218.
- Each filter is a digital representation of a single pole low pass filter or a single pole high pass filter.
- An analog implementation of the circuit would also use two LP filters and four HP filters each having a single pole.
- HP and LP filters 212-222 are ordered in this fashion to reduce transients caused when HP filter characteristics are switched by microprocessor 232, since HP filter transients have high frequency components which are not attenuated by succeeding HP filters. Otherwise, the digital equivalent of Schmitt trigger 224 may produce extra output pulses.
- Schmitt trigger 224 receives the output of filter 218 which generates a square wave vortex signal 244 having substantially the same frequency as the frequency of the output of vortex sensor and amplifier 201.
- Timer and period counter 226 outputs the elapsed time since a last period boundary of signal 244 to filter control 230, and the time between period boundaries of signal 244. The function of counter 226 with respect to the elapsed time is equivalent to the function of timer 46 in FIG. 1.
- Logic 230 operates similarly to HP selection logic 40.
- Logic 230 receives switchup and switchdown values corresponding to each of the preselectable HP filter characteristics from micro 232 and recognizes which HP filter characteristic is currently used in each of the HP filters 212,214,216,218, (the "current filter characteristic") . As discussed above in conjunction with FIG. 3, there is a switchup and a switchdown value associated with each HP filter characteristic.
- Logic 230 also continually monitors the value from period timer and counter 226, (the "present timer value").
- logic 230 sends an interrupt to microprocessor 232 when the filter characteristic having the next higher corner frequency relative to the corner frequency of the current filter characteristic when the present timer value, as sampled at a period boundary of signal 244, is less than the switchup point for such next higher corner frequency filter.
- logic 230 interrupts micro 232 when the filter characteristic having the next lower corner frequency relative to the corner frequency of the current filter characteristic when the present timer value exceeds a switchdown value correspon ing to the filter characteristic having such next lower corner frequency.
- the adaptive filter response of filters 212-218 is open loop since changing the filter corner frequency has no affect on the period measurement which controls the filter.
- each filter it is preferable for each filter to have a single variable pole, so that the corner frequency of the combined filter output has finer frequency resolution than if a single x-pole filter corner frequency were chosen.
- four single HP filters each having independently variable corners have a combined corner frequency characteristic which changes as the fourth root of two, whereas a single four pole filter would have a corner characteristic variable in factors of two.
- Use of shift registers to perform multiplication is another simplifying design choice which reduces power consumption and the number of digital gates needed for each filter.
- the digital filter output is the sum of first order terms each consisting of the product of a coefficient and a variable, when the coefficients multiplying the variables are chosen to be factors of one-half, only shift registers are required where a full multiplier circuit would otherwise be needed. For this reason, corner frequencies are only adjustable in factors of two. It is also preferable to implement the filters and associated circuitry placed within dashed box 250 into an ASIC to conserve power and for ease of assembly.
- Microprocessor 232 calculates appropriate corner frequencies for filters 212-222 and sends corner selection commands representative of the proper HP filter characteristic to filter control 230 and to filter selection latch 238. Latch circuit 238 distributes filter selection values to filters 212-222. Microprocessor 232 also performs supervisory functions, optional output conditioning and required communications between the flowmeter and a process control system which receives the flowmeter output. An example of a supervisory function is disabling filter tracking, whereas examples of output conditioning are setting damping and alarm limits, and low flow cutoff, depending on user preference data contained in application data block 234.
- Signal 244 operates timer and a period counter 226 which interrupts micro 232 with data representative of the frequency of signal 244. The interruption occurs approximately every tenth of a second or once each period of signal 244, whichever represents the longer amount of time.
- micro 232 calculates an updated vortex frequency and provides such output digitally on output 236.
- Converter and modem 237 converts the digital information encoded on output 236 to a 4-20mA current representative of the flow.
- Other output formats such as Fieldbus or other process control industry standard communications formats can be used as appropriate.
- Micro 232 also provides a signal to pulse output scaling circuit 228 which provides the necessary signals to operate a pulse transformer 242. Pulse transformer 242 provides an electrically isolated signal to output circuit 243. Circuit 243 provides a frequency output F out representative of the flow.
Landscapes
- Physics & Mathematics (AREA)
- Fluid Mechanics (AREA)
- General Physics & Mathematics (AREA)
- Measuring Volume Flow (AREA)
- Arrangements For Transmission Of Measured Signals (AREA)
Abstract
Description
Claims
Priority Applications (10)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US07/954,513 US5372046A (en) | 1992-09-30 | 1992-09-30 | Vortex flowmeter electronics |
CN93118155A CN1054199C (en) | 1992-09-30 | 1993-09-27 | Vortex flowmeter electronics |
JP51170995A JP3313116B2 (en) | 1993-10-18 | 1993-10-18 | Electronics for vortex flowmeters |
RU96108935A RU2148797C1 (en) | 1993-10-18 | 1993-10-18 | Electronic circuit for vortex usage meter |
CA002172799A CA2172799A1 (en) | 1993-10-18 | 1993-10-18 | Vortex flowmeter electronics |
DE69327806T DE69327806T2 (en) | 1993-10-18 | 1993-10-18 | Flow meter |
EP94901169A EP0724714B1 (en) | 1993-10-18 | 1993-10-18 | Vortex flowmeter electronics |
PCT/US1993/009942 WO1995011425A2 (en) | 1992-09-30 | 1993-10-18 | Vortex flowmeter electronics |
AU55851/94A AU5585194A (en) | 1992-09-30 | 1993-10-18 | Vortex flowmeter electronics |
US08/258,767 US5429001A (en) | 1992-09-30 | 1994-06-13 | Vortex mass flowmeter |
Applications Claiming Priority (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US07/954,513 US5372046A (en) | 1992-09-30 | 1992-09-30 | Vortex flowmeter electronics |
PCT/US1993/009942 WO1995011425A2 (en) | 1992-09-30 | 1993-10-18 | Vortex flowmeter electronics |
US08/258,767 US5429001A (en) | 1992-09-30 | 1994-06-13 | Vortex mass flowmeter |
Publications (2)
Publication Number | Publication Date |
---|---|
WO1995011425A2 true WO1995011425A2 (en) | 1995-04-27 |
WO1995011425A3 WO1995011425A3 (en) | 1995-06-08 |
Family
ID=27377418
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
PCT/US1993/009942 WO1995011425A2 (en) | 1992-09-30 | 1993-10-18 | Vortex flowmeter electronics |
Country Status (2)
Country | Link |
---|---|
AU (1) | AU5585194A (en) |
WO (1) | WO1995011425A2 (en) |
Citations (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US3709034A (en) * | 1971-02-02 | 1973-01-09 | Fischer & Porter Co | Signal conditioner for recovering dominant signals from swirl-type meters |
GB2059699A (en) * | 1979-08-24 | 1981-04-23 | Fischer & Porter Co | Transmission system for vortex-shedding and swirl-type flowmeters |
EP0069008A1 (en) * | 1981-06-30 | 1983-01-05 | Societe De Prospection Electrique Schlumberger | Method and apparatus for determining the flow characteristics of a fluid in a well bore |
EP0333575A1 (en) * | 1988-03-14 | 1989-09-20 | Gaz De France (Service National) | Process and device for the automatic reading of a fluid meter provided with a roller counting mechanism |
US4966040A (en) * | 1988-04-19 | 1990-10-30 | Mitsubishi Denki Kabushiki Kaisha | Karman vortex flowmeter with signal waveform shaper circuit |
WO1991019201A2 (en) * | 1990-06-06 | 1991-12-12 | M.T. Mcbrian Company, Inc. | System and method for monitoring and analyzing energy characteristics |
Family Cites Families (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS5918421A (en) * | 1982-07-22 | 1984-01-30 | Oval Eng Co Ltd | Automatic band following filter |
JPS6138420A (en) * | 1984-07-30 | 1986-02-24 | Oval Eng Co Ltd | Preamplifier of vortex flowmeter |
-
1993
- 1993-10-18 WO PCT/US1993/009942 patent/WO1995011425A2/en active IP Right Grant
- 1993-10-18 AU AU55851/94A patent/AU5585194A/en not_active Abandoned
Patent Citations (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US3709034A (en) * | 1971-02-02 | 1973-01-09 | Fischer & Porter Co | Signal conditioner for recovering dominant signals from swirl-type meters |
GB2059699A (en) * | 1979-08-24 | 1981-04-23 | Fischer & Porter Co | Transmission system for vortex-shedding and swirl-type flowmeters |
EP0069008A1 (en) * | 1981-06-30 | 1983-01-05 | Societe De Prospection Electrique Schlumberger | Method and apparatus for determining the flow characteristics of a fluid in a well bore |
EP0333575A1 (en) * | 1988-03-14 | 1989-09-20 | Gaz De France (Service National) | Process and device for the automatic reading of a fluid meter provided with a roller counting mechanism |
US4966040A (en) * | 1988-04-19 | 1990-10-30 | Mitsubishi Denki Kabushiki Kaisha | Karman vortex flowmeter with signal waveform shaper circuit |
WO1991019201A2 (en) * | 1990-06-06 | 1991-12-12 | M.T. Mcbrian Company, Inc. | System and method for monitoring and analyzing energy characteristics |
Non-Patent Citations (3)
Title |
---|
PATENT ABSTRACTS OF JAPAN vol. 10, no. 195 (P-475) <2251> 09 July 1986 & JP,A,61 038 420 (OVAL ENG CO) 24 February 1986 * |
PATENT ABSTRACTS OF JAPAN vol. 8, no. 109 (P-275) <1546> 22 May 1984 & JP,A,59 018 421 (OVAL KIKI KOGYO) 30 January 1984 * |
REGELUNGSTECHNISCHE PRAXIS, vol. 26,no. 8, August 1984 M]NCHEN,DE, pages 369-373, R. HILLEBRAND 'INDUSTRIERECHNER ERSCHLIESSEN NEUE ANWENDUNGSGEBIETE' * |
Also Published As
Publication number | Publication date |
---|---|
WO1995011425A3 (en) | 1995-06-08 |
AU5585194A (en) | 1995-05-08 |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
US5372046A (en) | Vortex flowmeter electronics | |
US5942696A (en) | Rapid transfer function determination for a tracking filter | |
JP3112948B2 (en) | Noise reduction filter system for Coriolis flowmeters | |
US4270391A (en) | Frequency-responsive filter for flowmeter transmission system | |
US4463612A (en) | Electronic circuit using digital techniques for vortex shedding flowmeter signal processing | |
JPH0778440B2 (en) | Coriolis mass flow meter | |
CA2536341C (en) | Flow meter filter system and method | |
US3991612A (en) | Electromagnetic flowmeter usable in less-than full fluid lines | |
WO2000034744A1 (en) | Adjustable bandwidth filter for process variable transmitter | |
EP1085301B1 (en) | Vortex Flowmeter | |
KR100186888B1 (en) | Electronic flowmeter | |
AU609624B2 (en) | Coriolis mass flow rate meter having absolute frequency output | |
EP0724714B1 (en) | Vortex flowmeter electronics | |
US4227408A (en) | Harmonic noise suppression in electromagnetic flowmeter | |
JPH0477854B2 (en) | ||
WO1995011425A2 (en) | Vortex flowmeter electronics | |
US4370892A (en) | Electromagnetic flowmeter having noise suppression network | |
US5574396A (en) | Micro-power vortex isolator circuit | |
Henry et al. | The dynamic response of Coriolis mass flow meters: Theory and applications | |
US5675091A (en) | Step-wise tracking electronic filter with offset up and down transition | |
JPH0648350Y2 (en) | Vortex flowmeter converter | |
JPH05113379A (en) | Pressure/differential pressure transmitter | |
JPH0626812Y2 (en) | Vortex flowmeter converter | |
JPH0682284A (en) | Electromagnetic flowmeter | |
JPH11287680A (en) | Vortex flowmeter |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
AK | Designated states |
Kind code of ref document: A2 Designated state(s): AU BR CA CZ JP RU SK |
|
AL | Designated countries for regional patents |
Kind code of ref document: A2 Designated state(s): AT BE CH DE DK ES FR GB GR IE IT LU MC NL PT SE |
|
AK | Designated states |
Kind code of ref document: A3 Designated state(s): AU BR CA CZ JP RU SK |
|
AL | Designated countries for regional patents |
Kind code of ref document: A3 Designated state(s): AT BE CH DE DK ES FR GB GR IE IT LU MC NL PT SE |
|
121 | Ep: the epo has been informed by wipo that ep was designated in this application | ||
DFPE | Request for preliminary examination filed prior to expiration of 19th month from priority date (pct application filed before 20040101) | ||
WWE | Wipo information: entry into national phase |
Ref document number: 1994901169 Country of ref document: EP |
|
WWE | Wipo information: entry into national phase |
Ref document number: 2172799 Country of ref document: CA |
|
WWP | Wipo information: published in national office |
Ref document number: 1994901169 Country of ref document: EP |
|
WWG | Wipo information: grant in national office |
Ref document number: 1994901169 Country of ref document: EP |