Claims
- 1. A damper for both controlling fluid flow through a duct and measuring a flow rate of the fluid past the damper, comprising in combination:
at least one damper vane having a leading surface facing at least partially upstream at least some of the time and a trailing surface facing at least partially downstream at least some of the time; said damper vane configured to be pivotably mounted within the duct such that said damper vane can rotate between different positions; said different positions of said damper vane having a unique amount that said different positions of said damper vane control flow of the fluid through the duct; a damper vane rotational position sensor; a first pressure sensor positioned to sense fluid pressure at a location on an upstream side of said damper vane and coupled to said damper vane; a second pressure sensor positioned to sense fluid pressure at a location on a downstream side of said damper vane and coupled to said damper vane; and a fluid flow rate calculator coupled to said first pressure sensor, said second pressure sensor and said damper rotational position sensor, said calculator configured to determine fluid flow rate past said damper vane from inputs provided by said first pressure sensor, said second pressure sensor and a position of said damper vane provided by said damper vane position sensor.
- 2. The damper of claim 1 wherein said first pressure sensor includes a first pressure sensing pick-up located on an upstream side of said damper vane, and wherein said second pressure sensor includes a second pressure sensing pick-up located on a downstream side of said damper vane.
- 3. The damper of claim 2 wherein a differential pressure sensor is coupled to said first pressure sensing pick-up and said second pressure sensing pick-up, said differential pressure sensor measuring a difference in pressure between fluids within said first pressure sensing pick-up and fluids within said second pressure sensing pick-up, said difference provided to said calculator for calculating the fluid flow rate, along with the rotational position of said damper vane provided by said damper vane position sensor.
- 4. The damper of claim 2 wherein said first pressure sensing pick-up faces non-perpendicularly relative to said leading surface.
- 5. The damper of claim 4 wherein said first pressure sensing pick-up faces in a direction away from a directly downstream orientation for all damper vane positions between a totally closed position and a totally open position.
- 6. The damper of claim 4 wherein said first pressure sensing pick-up faces at least partially upstream for all positions of said damper vane between a totally closed position and a totally open position.
- 7. The damper of claim 6 wherein said first pressure sensing pick-up faces in a direction substantially parallel with said leading surface of said damper vane.
- 8. The damper of claim 1 wherein said first pressure sensor is spaced away from said leading surface of said damper vane on said upstream side of said damper vane.
- 9. The damper of claim 7 wherein said first pressure sensing pick-up is spaced away from said leading surface of said damper vane on said upstream side of said damper vane.
- 10. The damper of claim 9 wherein said second pressure sensing pick-up faces in a direction away from an upstream direction for all damper vane positions.
- 11. The damper of claim 10 wherein both said first pressure sensing pick-up and said second pressure sensing pick-up are configured to lead to a differential pressure sensor, said differential pressure sensor measuring a difference in pressure between fluids within said first pressure sensing pick-up and fluids within said second pressure sensing pick-up, said differential pressure sensor coupled to said calculator.
- 12. The damper of claim 11 wherein said first pressure sensor includes at least two first pressure sensing pick-ups located on said upstream side of said damper and spaced from said leading surface of said damper, said at least two first pressure sensing pick-ups facing in a common direction and leading to a common first pressure space leading to said differential pressure sensor.
- 13. The damper of claim 12 wherein said damper includes:
a fluid flow controller coupled to said damper vane; said controller configured to rotate said damper vane between said different rotational positions; said controller configured to receive a desired flow rate for the duct; said controller configured to receive a measured flow rate through the duct provided by said fluid flow rate calculator; and said controller configured to rotate said damper vane toward a more closed position if the measured flow rate from said fluid flow rate calculator is higher than the desired flow rate and configured to rotate said damper vane to a more open position if the measured fluid flow rate from said fluid flow rate calculator is less than the desired fluid flow rate.
- 14. A damper for both controlling gas flow through a duct and measuring a flow rate of the gas past the damper, comprising in combination:
at least one damper vane having a leading surface facing at least partially upstream and a trailing surface facing at least partially downstream; said damper vane configured to be pivotably mounted within a conduit such as the duct such that said damper vane can rotate between different positions; said different positions of said damper vane having a unique amount that said different positions of said damper vane control a rate of gas flow through the duct; a damper vane rotational position sensor; a first pressure sensing pick-up located on an upstream side of said damper vane and coupled to said damper vane; said first pressure sensing pick-up facing non-perpendicularly relative to said leading surface; a second pressure sensing pick-up located on a downstream side of said damper vane and coupled to said damper vane; said first pressure sensing pick-up and said second pressure sensing pick-up both coupled to at least one pressure sensor, said at least one pressure sensor configured to generate at least one signal related to gas pressure at said first pressure sensing pick-up and said second pressure sensing pick-up; and a gas flow rate calculator coupled to said at least one pressure sensor in a manner receiving said at least one signal, and said gas flow rate calculator coupled to said damper vane rotational position sensor, said calculator configured to determine flow rate past said damper vane from said at least one pressure signal and said damper vane rotational position from said damper vane rotational position sensor.
- 15. The damper of claim 14 wherein said at least one pressure sensor includes a first pressure sensor coupled to said first pressure sensing pick-up, said first pressure sensor configured to generate a first signal correlating with the pressure of gas at said first pressure sensing pick-up, and a second pressure sensor coupled to said second pressure sensing pick-up, said second pressure sensor configured to generate a second pressure signal correlating with a pressure of the gas at said second pressure sensing pick-up, said first signal and said second signal each coupled to said calculator.
- 16. The damper of claim 14 wherein said at least one pressure sensor includes a differential pressure sensor coupled to both said first pressure sensing pick-up and said second pressure sensing pick-up, said differential pressure sensor generating at least one signal corresponding to a difference in pressure between a pressure of the gas at said first pressure sensing pick-up and a pressure of the gas at said second pressure sensing pick-up.
- 17. The damper of claim 15 wherein said damper vane is coupled to a damper vane position controller, said damper vane position controller configured to compare a gas flow rate calculated by said calculator with a desired gas flow rate through the duct and rotate the damper vane in a direction for the gas flow rate calculated by said calculator to match the desired gas flow rate.
- 18. The damper of claim 17 wherein said damper includes a plurality of first pressure sensing pick-ups each located on said upstream side of said damper vane, said plurality of first pressure sensing pick-ups each spaced from said leading surface of said damper vane within a common structure such that each of said plurality of first pressure sensing pick-ups lead to a common first pressure space, said first pressure space coupled to said differential pressure sensor.
- 19. The damper of claim 18 wherein each of said plurality of first pressure sensing pick-ups face in a common direction substantially parallel with said leading surface of said damper vane, said common structure configured as an elongate hollow bar having a distance upstream of said leading surface of said damper vane which is substantially constant, such that said plurality of first pressure sensing pick-ups are each a substantially similar distance away from said leading surface of said damper vane.
- 20. A method for measuring fluid flow rate through a fluid flow rate control device, the method including the steps of:
configuring the control device to include at least one damper vane rotatably mounted in a position to selectively block fluid flow past the damper vane by different amounts; using at least one first pressure sensor in a position to measure fluid pressure upstream of a leading surface of the damper vane, the sensor facing at least partially upstream such that the at least one first pressure sensor senses a pressure caused both by a pressure of the fluid and a velocity of the fluid; coupling the at least one first pressure sensor to the damper vane such that the at least one first pressure sensor rotates at least partially with the damper vane; monitoring a position of the damper vane; and calculating a flow rate past the damper vane from pressure sensed by the at least one first pressure sensor and the position of the damper vane.
- 21. The method of claim 20 including the further steps of:
locating a second pressure sensor within the fluid adjacent the damper vane; orienting said second pressure sensor in a different direction than said at least one first pressure sensor for a majority of damper vane rotational positions; and said calculating step having the step of including a pressure provided by said second pressure sensor in calculating the flow rate past the damper vane.
- 22. The method of claim 21 wherein said calculating step includes the steps of:
determining a difference between pressure sensed by said at least one first pressure sensor of said placing step and said second pressure sensor; and correlating the pressure difference of said determining step to the flow rate of the fluid past the damper vane.
- 23. The method of claim 21 wherein the second pressure sensor is located downstream of a trailing surface of the damper vane that faces at least partially downstream, the second pressure sensor coupled to the damper vane such that the second pressure sensor rotates with the damper vane.
- 24. The method of claim 23 wherein said at least one first pressure sensor of said placing step and said second pressure sensor face in opposite directions.
- 25. The method of claim 23 wherein said placing step includes the further step of orienting said at least one first pressure sensor non-perpendicular to the leading surface of the damper vane.
- 26. The method of claim 25 wherein said placing step includes the further step of orienting the at least one first pressure sensor facing substantially parallel to the leading surface of the damper vane.
- 27. The method of claim 26 wherein said placing step includes the further step of spacing the at least one first pressure sensor away from the leading surface of the damper vane in an upstream direction.
- 28. The method of claim 21 including the further step of configuring the at least one first pressure sensor and the second pressure sensor to each include a sensor pick-up with an orientation of the at least one first pressure sensor of said placing step and the second pressure sensor being a direction aligned with a center line passing into the sensor pick-ups, the sensor pick-ups leading to at least one pressure sensor calculating a pressure of fluid passing through the sensor pick-ups.
- 29. The method of claim 21 wherein said calculating step includes the further step of adjusting a signal received from the at least one first pressure sensor of said placing step based on the position of the damper vane determined by said monitoring step.
- 30. The method of claim 29 wherein said adjusting step includes identifying a gain curve for a pressure signal provided by the at least one first pressure sensor of said placing step and modifying the pressure signal to account for the gain associated with the damper vane rotational position.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims benefit under Title 35, United States Code §119(e) of U.S. Provisional Application No. 60/194,659 filed on Apr. 4, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60194659 |
Apr 2000 |
US |