Claims
- 1. A mass flow meter comprising:
an inlet with a diameter and an outlet with a diameter; a flow restrictor having a restriction chamber and a pressure balancing system interposed between the inlet and outlet; the restriction chamber having a cylindrical restriction wall with a diameter less than the diameters of the inlet and outlet; and, a pressure sensor and a temperature sensor upstream from the flow restrictor providing input to a meter circuit having calibration data; whereby the meter circuit generates a flow output signal based on the calibration data and the input from the pressure sensor and temperature sensor.
- 2. The mass flow meter of claim 1 where the restriction wall defines the restriction chamber.
- 3. The mass flow meter of claim 1 where the restriction chamber further comprises:
a conical compression wall located upstream of the restriction wall; a variable orifice assembly, the variable orifice assembly having a deformable tube member having an internal surface defining an effective cross-sectional area of the restriction chamber, a compression wedge, a compression shim, first and second chevron members, and a compression nut; whereby axial rotation of the compression nut displaces the nut towards the restriction wall, as the nut moves toward the restriction wall; the nut applies a force on the compression wedge through the first and second chevron members and compression shim and forces the compression wedge radially inwards deforming the deformable tub member and reducing the effective cross-sectional area of the restriction chamber.
- 4. The mass flow meter of claim 1 where the meter circuit further comprises:
a first summing and scaling system that combines the calibration data and the pressure signal to obtain a calibrated pressure signal; a second summing and scaling system that combines the temperature signal and a gas constant to obtain a compensated temperature signal; and, a third summing and scaling system that combines the calibrated pressure signal and the compensated temperature signal to obtain the flow output signal.
- 5. The mass flow meter of claim 4 where the meter circuit is implemented on an application specific integrated circuit.
- 6. The mass flow meter of claim 4 where the meter circuit is implemented on a digital signal processor.
- 7. The mass flow meter of claim 6 where the meter circuit further comprises a memory unit for storing calibration conditions.
- 8. The mass flow meter of claim 4 where the first summing and scaling system comprises:
a signal conditioning module; an arithmetic logic unit; an optional linearization amplifier; and, a first and second summing and scaling amplifier.
- 9. The mass flow meter of claim 4 where the second summing and scaling system comprises:
a signal conditioning module; a scaling and gain amplifier; and, a summing and scaling multiplier.
- 10. The mass flow meter of claim 4 where the third summing and scaling systems comprises:
a summing and scaling amplifier; and, a buffer amplifier that generates the flow output signal.
- 11. The mass flow meter of claim 8 where the meter circuit further comprises a switch for removing either the arithmetic logic unit or the linearization amplifier from the circuit.
- 12. A mass flow control system comprising:
a flow controller capable of controlling a flow rate through the mass flow control system; said controller connected in series with a mass flow meter; said mass flow meter comprising an inlet with a diameter and an outlet with a diameter; a flow restrictor having a restriction chamber and a pressure balancing system interposed between the inlet and outlet; the restriction chamber having a cylindrical restriction wall with a diameter less than the diameters of the inlet and outlet; and, a pressure sensor and a temperature sensor upstream from the flow restrictor providing input to a meter circuit having calibration data; whereby the meter circuit generates a flow output signal based on the calibration data and the input from the pressure sensor and temperature sensor; said mass flow meter is connected to a valve control feedback loop system; whereby the mass flow meter sends the flow output signal to the valve control feedback loop system and said feedback system compares the flow output signal with a predetermined flow rate to generate a flow control signal; said valve control feedback loop system is connected to the flow controller; whereby said feedback system sends the flow control signal to the flow controller to operate the flow controller to change the flow rate.
- 13. The mass flow control system of claim 12 where the restriction wall defines the restriction chamber.
- 14. The mass flow control system of claim 12 where the restriction chamber further comprises:
a conical compression wall located upstream of the restriction wall; a variable orifice assembly, the variable orifice assembly having a deformable tube member having an internal surface defining an effective cross-sectional area of the restriction chamber, a compression wedge, a compression shim, first and second chevron members, and a compression nut; whereby axial rotation of the compression nut displaces the nut towards the restriction wall, as the nut moves toward the restriction wall; the nut applies a force on the compression wedge through the first and second chevron members and compression shim and forces the compression wedge radially inwards deforming the deformable tub member and reducing the effective cross-sectional area of the restriction chamber.
- 15. The mass flow control system of claim 12 where the meter circuit further comprises:
a first summing and scaling system that combines the calibration data and the pressure signal to obtain a calibrated pressure signal; a second summing and scaling system that combines the temperature signal and a gas constant to obtain a compensated temperature signal; and, a third summing and scaling system that combines the calibrated pressure signal and the compensated temperature signal to obtain the flow output signal.
- 16. The mass flow control system of claim 12 where the meter circuit is implemented on an application specific integrated circuit.
- 17. The mass flow meter of claim 15 where the meter circuit is implemented on a digital signal processor.
- 18. The mass flow meter of claim 15 where the first summing and scaling system comprises:
a signal conditioning module; an arithmetic logic unit; an optional linearization amplifier; and, a first and second summing and scaling amplifier.
- 19. The mass flow meter of claim 15 where the second summing and scaling system comprises:
a signal conditioning module; a scaling and gain amplifier; and, a summing and scaling multiplier.
- 20. The mass flow meter of claim 15 where the third summing and scaling systems comprises:
a summing and scaling amplifier; and, a buffer amplifier that generates the flow output signal.
- 21. A method for calibrating a flow meter; said flow meter comprising an inlet with a diameter and an outlet with a diameter; a flow restrictor having a restriction chamber and a pressure balancing system interposed between the inlet and outlet; the restriction chamber having a variable orifice assembly; a cylindrical restriction wall with a diameter less than the diameters of the inlet and outlet; and, a pressure sensor and a temperature sensor upstream from the flow restrictor providing input to a meter circuit having calibration data; whereby the meter circuit generates a flow output signal based on the calibration data and the input from the pressure sensor and temperature sensor; the steps of said method comprising:
connecting the flow meter to a referenced flow standard; applying a negative gauge pressure to the outlet; setting a zero point on the meter circuit; applying pressure upstream of the meter; measuring a flow; entering a gas specific constant into the calibration data of the meter circuit; obtaining a maximum flow range by adjusting the variable orifice assembly for a given inlet pressure; decreasing the flow to ten percent of maximum flow; measuring the pressure and temperature and storing results in the meter circuit; increasing the flow by ten percent increments up to the maximum flow; measuring the pressure and temperature at each ten percent increment and storing the results in the meter circuit; calculating a slope of a graph of pressure versus mass flow rate from the results stored in the meter circuit; setting the meter circuit by using the slope.
- 22. The method of claim 21 where the meter circuit further comprises an arithmetic logic unit and a linearization amplifier and, where the graph is non-linear, the steps of said method further comprise:
performing a piecewise linearization function on a filtered pressure signal to obtain a compensated pressure signal for use in setting the meter circuit.
- 23. The method of claim 21 where the method further comprises the following step:
measuring a current and storing results in the meter circuit as a pressure.
- 24. A mass flow meter comprising:
an inlet and an outlet; a flow restrictor and a pressure balancing system interposed between the inlet and outlet, whereby the system maintains a constant volumetric flow through the flow restrictor; a pressure sensor and a temperature sensor upstream from the flow restrictor providing input to a meter circuit, P and T respectively, having a stored calibration factor K, a stored gas constant R and zero offset; whereby the meter circuit generates a flow output signal based on the stored calibration factor, the stored gas constant, the zero offset and the input from the pressure sensor and temperature sensor according to the equation: y=mx+b where y is mass flow, x is P, m is KR/T, and b is the zero offset.
- 25. A mass flow control system comprising:
a flow controller capable of controlling a flow rate through the mass flow control system; said controller connected in series with a mass flow meter and generating a voltage signal to a meter circuit; said mass flow meter comprising an inlet with a diameter and an outlet with a diameter; a flow restrictor having a restriction chamber and a pressure balancing system interposed between the inlet and outlet; the restriction chamber having a cylindrical restriction wall with a diameter less than the diameters of the inlet and outlet; and, a temperature sensor upstream from the flow restrictor providing input to the meter circuit; said meter circuit having calibration data whereby the meter circuit generates a flow output signal based on the calibration data, the input from the temperature sensor and the voltage signal; said mass flow meter is connected to a valve control feedback loop system; whereby the mass flow meter sends the flow output signal to the valve control feedback loop system and said feedback system compares the flow output signal with a predetermined flow rate to generate a flow control signal; said valve control feedback loop system is connected to the flow controller; whereby said feedback system sends the flow control signal to the flow controller to operate the flow controller to change the flow rate.
- 26. The mass control system of claim 25 where the flow controller comprises a piezoelectric actuator control and a valve.
- 27. The mass control system of claim 25 where the flow controller comprises a solenoid actuator control and a valve.
- 28. The mass control system of claim 25 where the flow controller generates a current signal which is converted to the voltage signal.
Parent Case Info
[0001] This patent application claims priority based on provisional patent application U.S. Serial No. 60/283,596 filed on Apr. 13, 2001 which is fully incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60283596 |
Apr 2001 |
US |