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N82CR North American Sabreliner 65
Rockwell Collins avionics testbed, seen at Rockwell's hanger at Cedar Rapids Airport (CID) , June 1999.
The Multi-Radar Multi-Sensor (MRMS) Hydrometeorology Testbed - Hydro (hereafter denoted as HMT-Hydro) experiment is a part of the United States Weather Research Program (USWRP) through the Hydrometeorology Testbed (HMT) that runs from 24 June to 19 July 2019. During the HMT-Hydro experiment, forecasters and hydrologists from the National Weather Service (NWS) will work with National Severe Storms Laboratory (NSSL) research scientists to explore new technology and techniques to improve the prediction and warning of flash flooding. In particular, NWS participants will evaluate new probabilistic hydrologic modeling concepts and output within the Flooded Locations and Simulated Hydrographs (FLASH) system that could help convey the uncertainty of the flash flood threat. NWS participants will also evaluate high resolution precipitation forecasts from the NSSL Warn-on-Forecast (WoF) project and the addition of these forecasts into the FLASH system. Feedback from participants will allow NSSL research scientists to identify how these high spatio-temporal resolution precipitation forecasts could influence the warning decision making process, including the potential for increased warning lead time. Evaluations of the various probabilistic data sets will provide further understanding on the usability and effectiveness of these products, as well as guide future efforts of the Forecasting A Continuum of Environmental Threats (FACETs) project for flooding hazards. The HMT-Hydro experiment runs in conjunction with the Flash Flood and Intense Rainfall (FFaIR) experiment at the Weather Prediction Center (WPC) to collaborate on the short-term forecasting of flash flooding for both a national and regional scale.
The Multi-Radar Multi-Sensor (MRMS) Hydrometeorology Testbed - Hydro (hereafter denoted as HMT-Hydro) experiment is a part of the United States Weather Research Program (USWRP) through the Hydrometeorology Testbed (HMT) that runs from 24 June to 19 July 2019. During the HMT-Hydro experiment, forecasters and hydrologists from the National Weather Service (NWS) will work with National Severe Storms Laboratory (NSSL) research scientists to explore new technology and techniques to improve the prediction and warning of flash flooding. In particular, NWS participants will evaluate new probabilistic hydrologic modeling concepts and output within the Flooded Locations and Simulated Hydrographs (FLASH) system that could help convey the uncertainty of the flash flood threat. NWS participants will also evaluate high resolution precipitation forecasts from the NSSL Warn-on-Forecast (WoF) project and the addition of these forecasts into the FLASH system. Feedback from participants will allow NSSL research scientists to identify how these high spatio-temporal resolution precipitation forecasts could influence the warning decision making process, including the potential for increased warning lead time. Evaluations of the various probabilistic data sets will provide further understanding on the usability and effectiveness of these products, as well as guide future efforts of the Forecasting A Continuum of Environmental Threats (FACETs) project for flooding hazards. The HMT-Hydro experiment runs in conjunction with the Flash Flood and Intense Rainfall (FFaIR) experiment at the Weather Prediction Center (WPC) to collaborate on the short-term forecasting of flash flooding for both a national and regional scale.
The Multi-Radar Multi-Sensor (MRMS) Hydrometeorology Testbed - Hydro (hereafter denoted as HMT-Hydro) experiment is a part of the United States Weather Research Program (USWRP) through the Hydrometeorology Testbed (HMT) that runs from 24 June to 19 July 2019. During the HMT-Hydro experiment, forecasters and hydrologists from the National Weather Service (NWS) will work with National Severe Storms Laboratory (NSSL) research scientists to explore new technology and techniques to improve the prediction and warning of flash flooding. In particular, NWS participants will evaluate new probabilistic hydrologic modeling concepts and output within the Flooded Locations and Simulated Hydrographs (FLASH) system that could help convey the uncertainty of the flash flood threat. NWS participants will also evaluate high resolution precipitation forecasts from the NSSL Warn-on-Forecast (WoF) project and the addition of these forecasts into the FLASH system. Feedback from participants will allow NSSL research scientists to identify how these high spatio-temporal resolution precipitation forecasts could influence the warning decision making process, including the potential for increased warning lead time. Evaluations of the various probabilistic data sets will provide further understanding on the usability and effectiveness of these products, as well as guide future efforts of the Forecasting A Continuum of Environmental Threats (FACETs) project for flooding hazards. The HMT-Hydro experiment runs in conjunction with the Flash Flood and Intense Rainfall (FFaIR) experiment at the Weather Prediction Center (WPC) to collaborate on the short-term forecasting of flash flooding for both a national and regional scale.
The Multi-Radar Multi-Sensor (MRMS) Hydrometeorology Testbed - Hydro (hereafter denoted as HMT-Hydro) experiment is a part of the United States Weather Research Program (USWRP) through the Hydrometeorology Testbed (HMT) that runs from 24 June to 19 July 2019. During the HMT-Hydro experiment, forecasters and hydrologists from the National Weather Service (NWS) will work with National Severe Storms Laboratory (NSSL) research scientists to explore new technology and techniques to improve the prediction and warning of flash flooding. In particular, NWS participants will evaluate new probabilistic hydrologic modeling concepts and output within the Flooded Locations and Simulated Hydrographs (FLASH) system that could help convey the uncertainty of the flash flood threat. NWS participants will also evaluate high resolution precipitation forecasts from the NSSL Warn-on-Forecast (WoF) project and the addition of these forecasts into the FLASH system. Feedback from participants will allow NSSL research scientists to identify how these high spatio-temporal resolution precipitation forecasts could influence the warning decision making process, including the potential for increased warning lead time. Evaluations of the various probabilistic data sets will provide further understanding on the usability and effectiveness of these products, as well as guide future efforts of the Forecasting A Continuum of Environmental Threats (FACETs) project for flooding hazards. The HMT-Hydro experiment runs in conjunction with the Flash Flood and Intense Rainfall (FFaIR) experiment at the Weather Prediction Center (WPC) to collaborate on the short-term forecasting of flash flooding for both a national and regional scale.
Zero 2000勝手に改蔵改造機体。
Zero 2000 pinhole camera modified with shutter unit.
Test unit X-4a: Focal length is about 42mm.
Performance
Sphæræ at EAPlab
For the whole month of June the mobile multi-dome structure for immersive and synaesthetic experiences designed by Cocky Eek (FoAM) was the testbed for a range of artists invited by iii to experiment and develop new artworks for the venue, with a main focus on the in-depth exploration of the unique auditive, visual and spatial affordances of Sphæræ.
A number of the artists participating in the residency present their results – ranging from fundamental experimentation to full-fledged new works. You are cordially invited to join this event and experience disorienting acoustic explorations, morphing and breathing architectures and pulsating audiovisual fields piercing Sphæræ’s ethereal atmosphere.
The Multi-Radar Multi-Sensor (MRMS) Hydrometeorology Testbed - Hydro (hereafter denoted as HMT-Hydro) experiment is a part of the United States Weather Research Program (USWRP) through the Hydrometeorology Testbed (HMT) that runs from 24 June to 19 July 2019. During the HMT-Hydro experiment, forecasters and hydrologists from the National Weather Service (NWS) will work with National Severe Storms Laboratory (NSSL) research scientists to explore new technology and techniques to improve the prediction and warning of flash flooding. In particular, NWS participants will evaluate new probabilistic hydrologic modeling concepts and output within the Flooded Locations and Simulated Hydrographs (FLASH) system that could help convey the uncertainty of the flash flood threat. NWS participants will also evaluate high resolution precipitation forecasts from the NSSL Warn-on-Forecast (WoF) project and the addition of these forecasts into the FLASH system. Feedback from participants will allow NSSL research scientists to identify how these high spatio-temporal resolution precipitation forecasts could influence the warning decision making process, including the potential for increased warning lead time. Evaluations of the various probabilistic data sets will provide further understanding on the usability and effectiveness of these products, as well as guide future efforts of the Forecasting A Continuum of Environmental Threats (FACETs) project for flooding hazards. The HMT-Hydro experiment runs in conjunction with the Flash Flood and Intense Rainfall (FFaIR) experiment at the Weather Prediction Center (WPC) to collaborate on the short-term forecasting of flash flooding for both a national and regional scale.
“A Direct-reversing 8000 b.h.p. NEM Doxford turbo-charged, opposed piston 2-cycle marine engine.”
From Sandy Ratcliffe's collection
The Multi-Radar Multi-Sensor (MRMS) Hydrometeorology Testbed - Hydro (hereafter denoted as HMT-Hydro) experiment is a part of the United States Weather Research Program (USWRP) through the Hydrometeorology Testbed (HMT) that runs from 24 June to 19 July 2019. During the HMT-Hydro experiment, forecasters and hydrologists from the National Weather Service (NWS) will work with National Severe Storms Laboratory (NSSL) research scientists to explore new technology and techniques to improve the prediction and warning of flash flooding. In particular, NWS participants will evaluate new probabilistic hydrologic modeling concepts and output within the Flooded Locations and Simulated Hydrographs (FLASH) system that could help convey the uncertainty of the flash flood threat. NWS participants will also evaluate high resolution precipitation forecasts from the NSSL Warn-on-Forecast (WoF) project and the addition of these forecasts into the FLASH system. Feedback from participants will allow NSSL research scientists to identify how these high spatio-temporal resolution precipitation forecasts could influence the warning decision making process, including the potential for increased warning lead time. Evaluations of the various probabilistic data sets will provide further understanding on the usability and effectiveness of these products, as well as guide future efforts of the Forecasting A Continuum of Environmental Threats (FACETs) project for flooding hazards. The HMT-Hydro experiment runs in conjunction with the Flash Flood and Intense Rainfall (FFaIR) experiment at the Weather Prediction Center (WPC) to collaborate on the short-term forecasting of flash flooding for both a national and regional scale.
The Multi-Radar Multi-Sensor (MRMS) Hydrometeorology Testbed - Hydro (hereafter denoted as HMT-Hydro) experiment is a part of the United States Weather Research Program (USWRP) through the Hydrometeorology Testbed (HMT) that runs from 24 June to 19 July 2019. During the HMT-Hydro experiment, forecasters and hydrologists from the National Weather Service (NWS) will work with National Severe Storms Laboratory (NSSL) research scientists to explore new technology and techniques to improve the prediction and warning of flash flooding. In particular, NWS participants will evaluate new probabilistic hydrologic modeling concepts and output within the Flooded Locations and Simulated Hydrographs (FLASH) system that could help convey the uncertainty of the flash flood threat. NWS participants will also evaluate high resolution precipitation forecasts from the NSSL Warn-on-Forecast (WoF) project and the addition of these forecasts into the FLASH system. Feedback from participants will allow NSSL research scientists to identify how these high spatio-temporal resolution precipitation forecasts could influence the warning decision making process, including the potential for increased warning lead time. Evaluations of the various probabilistic data sets will provide further understanding on the usability and effectiveness of these products, as well as guide future efforts of the Forecasting A Continuum of Environmental Threats (FACETs) project for flooding hazards. The HMT-Hydro experiment runs in conjunction with the Flash Flood and Intense Rainfall (FFaIR) experiment at the Weather Prediction Center (WPC) to collaborate on the short-term forecasting of flash flooding for both a national and regional scale.
Gov. Inslee with leadership from the University of Washington, during a panel discussion on innovation in batteries and clean technology.
A long-term trials and navigation testbed (30 years) for the Royal Air Force and the Royal Aircraft Establishment at Boscombe Down. Built in 1963, it was the last Comet to remain operational, flying until 1997. The final flight was from Boscombe Down to Bruntingthorpe in 1997 where it was the last surviving Comet capable of running under its own power. Registered as G-CPDA in 2000.
The Multi-Radar Multi-Sensor (MRMS) Hydrometeorology Testbed - Hydro (hereafter denoted as HMT-Hydro) experiment is a part of the United States Weather Research Program (USWRP) through the Hydrometeorology Testbed (HMT) that runs from 24 June to 19 July 2019. During the HMT-Hydro experiment, forecasters and hydrologists from the National Weather Service (NWS) will work with National Severe Storms Laboratory (NSSL) research scientists to explore new technology and techniques to improve the prediction and warning of flash flooding. In particular, NWS participants will evaluate new probabilistic hydrologic modeling concepts and output within the Flooded Locations and Simulated Hydrographs (FLASH) system that could help convey the uncertainty of the flash flood threat. NWS participants will also evaluate high resolution precipitation forecasts from the NSSL Warn-on-Forecast (WoF) project and the addition of these forecasts into the FLASH system. Feedback from participants will allow NSSL research scientists to identify how these high spatio-temporal resolution precipitation forecasts could influence the warning decision making process, including the potential for increased warning lead time. Evaluations of the various probabilistic data sets will provide further understanding on the usability and effectiveness of these products, as well as guide future efforts of the Forecasting A Continuum of Environmental Threats (FACETs) project for flooding hazards. The HMT-Hydro experiment runs in conjunction with the Flash Flood and Intense Rainfall (FFaIR) experiment at the Weather Prediction Center (WPC) to collaborate on the short-term forecasting of flash flooding for both a national and regional scale.
F-111 AFTI testbed for NASA. The Hasegawa kit contained beautiful decals, but the wing was a standard F-111F requiring extensive modification, including an additional chord section
(1.72 scale)
The Multi-Radar Multi-Sensor (MRMS) Hydrometeorology Testbed - Hydro (hereafter denoted as HMT-Hydro) experiment is a part of the United States Weather Research Program (USWRP) through the Hydrometeorology Testbed (HMT) that runs from 24 June to 19 July 2019. During the HMT-Hydro experiment, forecasters and hydrologists from the National Weather Service (NWS) will work with National Severe Storms Laboratory (NSSL) research scientists to explore new technology and techniques to improve the prediction and warning of flash flooding. In particular, NWS participants will evaluate new probabilistic hydrologic modeling concepts and output within the Flooded Locations and Simulated Hydrographs (FLASH) system that could help convey the uncertainty of the flash flood threat. NWS participants will also evaluate high resolution precipitation forecasts from the NSSL Warn-on-Forecast (WoF) project and the addition of these forecasts into the FLASH system. Feedback from participants will allow NSSL research scientists to identify how these high spatio-temporal resolution precipitation forecasts could influence the warning decision making process, including the potential for increased warning lead time. Evaluations of the various probabilistic data sets will provide further understanding on the usability and effectiveness of these products, as well as guide future efforts of the Forecasting A Continuum of Environmental Threats (FACETs) project for flooding hazards. The HMT-Hydro experiment runs in conjunction with the Flash Flood and Intense Rainfall (FFaIR) experiment at the Weather Prediction Center (WPC) to collaborate on the short-term forecasting of flash flooding for both a national and regional scale.
Airbus A380-841
MSN 001
F-WWOW '001 GD' [Prototype/Testbed]
Airbus S.A.S.
Copyright © 2011 A380spotter. All rights reserved.
Boeing 748 testbed being cooked on the ramp at Phoenix-Mesa Gateway Airport. According to the test team members we spoke with, the cabin temperature should peak at around 150º F.
The XK120 was launched in roadster form at the 1948 London Motor Show as a testbed and show car for the new Jaguar XK engine. It caused a sensation, which persuaded William Lyons to put it into production.
The 120 in its name referred to its 120 mph top speed (faster with the windscreen removed), which made the XK120 the world's fastest standard production car at the time of its launch.
It was available in two convertible versions — first as the roadster, then and as a closed, or "fixed-head" coupé (FHC) from 1951 and also as a drophead coupé, or DHC, from 1953 — . The DHC was a more deluxe model, featuring a beautiful wood dashboard and wood features on the door interiors.
The roadster version was successful in racing.
The first 242 cars, all roadsters hand-built between late 1948 and early 1950, had aluminium bodies on ash frames. To meet demand it was necessary for the mass-production versions, beginning with the 1950 model year, to have pressed-steel bodies. They retained aluminium doors, bonnet, and boot lid.
With alloy cylinder head and twin side draft SU carburettors, the dual overhead-cam 3.4 L straight-6 XK engine was comparatively advanced for a mass-produced unit of the time. With standard 8:1 compression ratio it developed 160 bhp. A 7:1 low compression version was also available to cope with low quality fuel. This same basic design of the XK engine, later modified into 3.8L and 4.2L versions, survived into the late 1980s.
All XK120s had independent torsion bar front suspension, semi-elliptic leaf springs at the rear, recirculating-ball steering, telescopically adjustable steering column, and all-round drum brakes. Some cars were fitted with Alfin brake drums to help overcome brake fade.
The roadster's lightweight canvas top and detachable sidescreens stowed out of sight behind the seats, and its barchetta-style doors had no external handles; instead there was an interior pull-cord which was accessible through a flap in the sidescreens when the weather equipment was in place. The windscreen could be removed for aeroscreens to be fitted.
The drophead coupé had a padded canvas top, which folded onto the rear deck behind the seats when not in use, and roll-up windows. The windscreen was fixed. Dashboards and door caps in both the FHC and DHC were wood-veneered, whereas the roadster's were leather-trimmed. All models had removable spats covering the rear wheel arches, which enhanced the streamlined look. On cars fitted with optional centre-lock wire wheels (available from 1951), the spats were omitted as they gave insufficient clearance for the two-eared Rudge-Whitworth knockoff hubs.
In addition to wire wheels, upgrades on the Special Equipment, or SE, version included increased power, stiffer suspension and dual exhaust system.
Project: Tiny TIM (Threats-In-Motion)
Location: NOAA Hazardous Weather Testbed / National Weather Center (Norman, OK)
Date: Feb 15, 2023
Photographer: James Murnan / NOAA NSSL
This experiment brings together NWS forecasters and researchers to evaluate and provide feedback on the concept of allowing warnings to be extended in time and area, a first step towards Threats-In-Motion (TIM) for severe weather warnings for hail, wind, and tornadoes. To facilitate this evaluation, forecasters use Hazard Services Convective to create and manage TIM warnings. The concept and software is tested on several archived cases.
Project: Tiny TIM (Threats-In-Motion)
Location: NOAA Hazardous Weather Testbed / National Weather Center (Norman, OK)
Date: Feb 14, 2023
Photographer: James Murnan / NOAA NSSL
This experiment brings together NWS forecasters and researchers to evaluate and provide feedback on the concept of allowing warnings to be extended in time and area, a first step towards Threats-In-Motion (TIM) for severe weather warnings for hail, wind, and tornadoes. To facilitate this evaluation, forecasters use Hazard Services Convective to create and manage TIM warnings. The concept and software is tested on several archived cases.
General Electric's engine testbed aircraft was retired and has been donated to the Pima Air and Space Museum. Here it is seen being prepared for outside display. The reg is so perfect for this aircraft.
Airbus A380-841
MSN 001
F-WWOW '001 GD' [Prototype/Rolls-Royce Trent testbed]
Airbus S.A.S.
Copyright © 2014 A380spotter. All rights reserved.
GE's Bldg. 1864 facility and its last two Edwards-based testbed aircraft: B-52 and B-47. In the background is Bldg. 4906, which was one of the 2 original GE test hangars at South Base. It was moved to its current location and became a parts warehouse. Thanks Tony for helping me find the original location of this building!
61-2776 NC-141A 412th TW
Mildenhall 23/5/98
12776 was the second Lifter off the production line, and the last unstretched variant in service. She served as a testbed for numerous modifications, including electrically operated flight controls. Retired to AMARC in 1998 and scrapped in 2003.
The In-Situ Instrument Laboratory (ISIL) is where engineers test spacecraft in a simulated Mars environment. See a model of NASA's Mars lander, InSight, and a Mars 2020 testbed.
This is a testbed of sorts as the piece used for the head comes in a Printed version in a different color and I wanted to see how it would look on a Generic body.
The Multi-Radar Multi-Sensor (MRMS) Hydrometeorology Testbed - Hydro (hereafter denoted as HMT-Hydro) experiment is a part of the United States Weather Research Program (USWRP) through the Hydrometeorology Testbed (HMT) that runs from 24 June to 19 July 2019. During the HMT-Hydro experiment, forecasters and hydrologists from the National Weather Service (NWS) will work with National Severe Storms Laboratory (NSSL) research scientists to explore new technology and techniques to improve the prediction and warning of flash flooding. In particular, NWS participants will evaluate new probabilistic hydrologic modeling concepts and output within the Flooded Locations and Simulated Hydrographs (FLASH) system that could help convey the uncertainty of the flash flood threat. NWS participants will also evaluate high resolution precipitation forecasts from the NSSL Warn-on-Forecast (WoF) project and the addition of these forecasts into the FLASH system. Feedback from participants will allow NSSL research scientists to identify how these high spatio-temporal resolution precipitation forecasts could influence the warning decision making process, including the potential for increased warning lead time. Evaluations of the various probabilistic data sets will provide further understanding on the usability and effectiveness of these products, as well as guide future efforts of the Forecasting A Continuum of Environmental Threats (FACETs) project for flooding hazards. The HMT-Hydro experiment runs in conjunction with the Flash Flood and Intense Rainfall (FFaIR) experiment at the Weather Prediction Center (WPC) to collaborate on the short-term forecasting of flash flooding for both a national and regional scale.
Thursday, October 18th. Dual-Polarized
Phased Array Radar
National Weather Radar Testbed Advanced Technology
Demonstrator tour, ribbon cutting and reception.
Project: Tiny TIM (Threats-In-Motion)
Location: NOAA Hazardous Weather Testbed / National Weather Center (Norman, OK)
Date: March 1, 2023
Photographer: James Murnan / NOAA NSSL
This experiment brings together NWS forecasters and researchers to evaluate and provide feedback on the concept of allowing warnings to be extended in time and area, a first step towards Threats-In-Motion (TIM) for severe weather warnings for hail, wind, and tornadoes. To facilitate this evaluation, forecasters use Hazard Services Convective to create and manage TIM warnings. The concept and software is tested on several archived cases.