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Three-Dimensional Venturi Sensor for Measuring Extreme WindsA three-dimensional (3D) Venturi sensor is being developed as a compact, rugged means of measuring wind vectors having magnitudes of as much as 300 mph (134 m/s). This sensor also incorporates auxiliary sensors for measuring temperature from -40 to +120 F (-40 to +49 C), relative humidity from 0 to 100 percent, and atmospheric pressure from 846 to 1,084 millibar (85 to 108 kPa). Conventional cup-and-vane anemometers are highly susceptible to damage by both high wind forces and debris, due to their moving parts and large profiles. In addition, they exhibit slow recovery times contributing to an inaccurately high average-speed reading. Ultrasonic and hot-wire anemometers overcome some of the disadvantages of the cup and-vane anemometers, but they have other disadvantageous features, including limited dynamic range and susceptibility to errors caused by external acoustic noise and rain. In contrast, the novel 3D Venturi sensor is less vulnerable to wind damage because of its smaller profile and ruggedness. Since the sensor has no moving parts, it provides increased reliability and lower maintenance costs. It has faster response and recovery times to changing wind conditions than traditional systems. In addition, it offers wide dynamic range and is expected to be relatively insensitive to rain and acoustic energy. The Venturi effect in this sensor is achieved by the mirrored double-inflection curve, which is then rotated 360 to create the desired detection surfaces. The curve is optimized to provide a good balance of pressure difference between sensor ports and overall maximum fluid velocity while in the shape. Four posts are used to separate the two shapes, and their size and location were chosen to minimize effects on the pressure measurements. The 3D Venturi sensor has smart software algorithms to map the wind pressure exerted on the surfaces of the design. Using Bernoulli's equation, the speed of the wind is calculated from the differences among the pressure readings at the various ports. The direction of the wind is calculated from the spatial distribution and magnitude of the pressure readings. All of the pressure port sizes and locations have been optimized to minimize measurement errors and to reside in areas demonstrating a stable pressure reading proportional to the velocity range.
Document ID
20110023892
Acquisition Source
Kennedy Space Center
Document Type
Other - NASA Tech Brief
Authors
Zysko, Jan A.
(NASA Kennedy Space Center Cocoa Beach, FL, United States)
Perotti, Jose M.
(NASA Kennedy Space Center Cocoa Beach, FL, United States)
Amis, Christopher
(NASA Kennedy Space Center Cocoa Beach, FL, United States)
Randazzo, John
(DYNACS Engineering Co., Inc. Cocoa Beach, FL, United States)
Blalock, Norman
(DYNACS Engineering Co., Inc. Cocoa Beach, FL, United States)
Eckhoff, Anthony
(DYNACS Engineering Co., Inc. Cocoa Beach, FL, United States)
Date Acquired
August 25, 2013
Publication Date
September 1, 2003
Publication Information
Publication: NASA Tech Briefs, September 2003
Subject Category
Man/System Technology And Life Support
Report/Patent Number
KSC-12435
Distribution Limits
Public
Copyright
Public Use Permitted.
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