The Experts below are selected from a list of 123 Experts worldwide ranked by ideXlab platform

Gordon D. Pollard - One of the best experts on this subject based on the ideXlab platform.

  • Non-ozone depleting supercritical Cleaning fluids: Design, fabrication, and operation of first preproduction natural convection device. Final report, 15 November 1993-15 December 1995
    1995
    Co-Authors: Mary C. Marshall, W. T. Roberds, Gordon D. Pollard
    Abstract:

    Southwest Research Institute (SwRI) has developed the natural convection supercritical fluids (SCF) cleaner as a potential substitute for 1,1,1-trichloroethane and Freon 113. This cleaner offers the potential for reduced capital investment, lower, operating costs, and improved maintainability and reliability over the conventional SCF devices principally by eliminating the circulating SCF and the compressor requirement. To demonstrate the natural convection technology on a production scale and to provide a USAF with a useful tool for detailed assessments, this project`s objective was to construct a preproduction device which could clean 70% of all parts handled at WPAFB (Wright-Patterson Air Force Base) Aircraft Modification Directorate. A 10-inch diameter Cleaning Chamber was specified to handle parts weighing up to 70 pounds. The SwRI prototype was used for experimental studies for process design purposes and as a guide for scale-up.

  • Non-Ozone Depleting Supercritical Cleaning Fluids: Design, Fabrication, and Operation of First Preproduction Natural Convection Device.
    1995
    Co-Authors: Mary C. Marshall, W. T. Roberds, Gordon D. Pollard
    Abstract:

    Abstract : Southwest Research Institute (SwRI) has developed the natural convection supercritical fluids (SCF) cleaner as a potential substitute for 1,1,1-trichloroethane and Freon 113. This cleaner offers the potential for reduced capital investment, lower, operating costs, and improved maintainability and reliability over the conventional SCF devices principally by eliminating the circulating SCF and the compressor requirement. The first prototype cleaner (only 2 inches in diameter) was built in 1991 at SwRI on internal research and development funds. To demonstrate the natural convection technology on a production scale and to provide a USAF with a useful tool for detailed assessments, this project's objective was to construct a preproduction device which could clean 70% of all parts handled at WPAFB (Wright-Patterson Air Force Base) Aircraft Modification Directorate. A 10-inch diameter Cleaning Chamber was specified to handle parts weighing up to 70 pounds. The SwRI prototype was used for experimental studies for process design purposes and as a guide for scale-up.

D.e. Pierce - One of the best experts on this subject based on the ideXlab platform.

  • A temperature insensitive quartz microbalance
    IEEE Transactions on Ultrasonics Ferroelectrics and Frequency Control, 1998
    Co-Authors: D.e. Pierce
    Abstract:

    Mass deposition onto a microbalance is generally accompanied by a temperature change. By measuring a single frequency only, it is not possible to separate the frequency change due to mass change from that due to temperature change. In the temperature insensitive microbalance technique, measurements of two frequencies, the fundamental mode and third overtone frequencies of an SC-cut resonator, yield two equations with two unknowns. This allows the separation of mass change effects from temperature change effects. Dual mode excitation can be used for highly accurate resonator self-temperature sensing over wide temperature ranges. SC-cut resonators are also thermal transient compensated. These unique properties allowed the development of a temperature compensated microbalance that is highly sensitive to mass changes, which can be used in rapidly changing thermal environments, over wide temperature ranges, and which requires neither temperature control nor a thermometer other than the resonator. To demonstrate the performance of this microbalance, SC-cut resonators were coated with thin polymethylmethacrylate (PMMA) photoresist films then placed into a UV-ozone Cleaning Chamber that initially was at about 20/spl deg/C. When the UV lamp was turned on, the UV-ozone removed PMMA from the surfaces while the Chamber temperature rose to about 60/spl deg/C. The frequency changes due to mass changes could be accurately determined, independently of the frequency changes due to temperature changes.

  • A temperature insensitive quartz microbalance
    Proceedings of International Frequency Control Symposium, 1997
    Co-Authors: D.e. Pierce
    Abstract:

    Dual mode excitation of the fundamental mode and third overtone c-modes of an resonator allows highly accurate temperature sensing over wide temperature ranges. SC-cut resonators are also thermal transient compensated. These unique properties allowed the development of a temperature compensated microbalance which is highly sensitive to mass changes, which can be used in rapidly changing thermal environments, over wide temperature ranges, and which requires no temperature control. To demonstrate the performance of this microbalance, SC-cut resonators were coated with thin polymethylmethacrylate (PMMA) photoresist films and then placed into a UV-ozone Cleaning Chamber which was initially at about 20/spl deg/C. When the UV lamp was turned on, the UV-ozone removed PMMA from the surfaces while the Chamber temperature rose to about 60/spl deg/C. The frequency changes due to mass changes could be accurately determined, independently of the frequency changes due to temperature changes.

A. S. Terekhov - One of the best experts on this subject based on the ideXlab platform.

  • First Results from III-V Photocathode Preparation Facility for the ALICE ERL Photoinjector
    2010
    Co-Authors: Boris Militsyn, K. J. Middleman, I. Burrows, Ryan Cash, B. D. Fell, L. B. Jones, Julian Mckenzie, Heinrich Scheibler, A. S. Terekhov
    Abstract:

    Accelerators and Lasers In Combined Experiments (ALICE) is an Energy Recovery Linac (ERL) built at STFC Daresbury Laboratory to investigate the process of energy recovery [1]. The project is an accelerator research facility intended to develop the technology and expertise required to build new light sources in the UK based on of Free-Electron Lasers. The original design of the ALICE photoinjector derives from the Jefferson Laboratory IRFEL photocathode gun. In its current configuration, the ALICE gun accommodates only a single photocathode, and the system must be vented to atmospheric pressure to facilitate photocathode replacement. To meet the stringent vacuum demands for good photocathode lifetime, the system then requires baking for up to three weeks. A new load-lock photocathode preparation facility (PPF) has been designed as part of an upgrade to the ALICE photoinjector. The PPF can accommodate up to six photocathodes, and permits rapid transfer of photocathodes between the PPF activation Chamber and the ALICE gun, thus maintaining the integrity of the photoinjector vacuum system. The PPF was successfully commissioned with a GaAs photocathode in spring 2009, and has since permitted a quantum yield of 15 % to be achieved at a wavelength of 635 nm. Presently, a new photoinjector gun vessel and photocathode transport system is under design/manufacture, with a view to this being fully-installed on ALICE in spring 2011. ALICE PHOTOINJECTOR UPGRADE The whole ALICE photoinjector upgrade program includes: the development of photocathodes capable of delivering of 10-100 mA CW current; an integrated gun and PPF with a transfer system allowing for replacement of the photocathode in the gun within few hours; and a new gun vessel with improved pumping capabilities [2]. The current ALICE photocathode is a 25 mm O GaAs wafer activated in-situ and illuminated over a 4 mm O area by a 532 nm laser to drive electron emission [3]. The new photocathode assembly has been designed to accommodate a semiconductor heterostructure (1) with a 9.5 mm O active area, as shown in Fig. 1. As the laser only illuminates an area ~ 4 mm O, use of a smaller active area could help reduce the beam halo. The photocathode wafer is bound to 1.4 mm recess on the bottom of upturned 2 mm thick molybdenum “Petri dish” (2) with a diameter of 19 mm and a height of 6.5 mm. The polished surface of the cup (3) improves heat flow away from the photocathode surface when a high power laser is used to drive emission of high beam currents. The photocathode is retained in a transport holder (4) by a flat inconel spring (5). During preparation and operation, the photocathode is installed into a socket (6). Figure 1. GaAs photocathode in the mounting socket. The design of the three-Chamber extreme-high vacuum PPF has been described in detail [4]. It comprises a loading Chamber (LC), an atomic hydrogen Cleaning Chamber (HCC) and a preparation Chamber (PC) (Fig. 2). Photocathodes are transferred between the Chambers and also from the PPF into the photoinjector gun using magnetically-coupled linear manipulators. The proposed upgrade scheme permits usage of a variety of III-V photocathodes which may be activated with the PPF. The upgrade design will allow for the easy replacement of the III-V PPF with a facility for preparation or transport of a different type of photocathodes without venting the gun. One of the possible options under consideration is usage of ultra fast alkali antimonide-based photocathodes, which may operate at a wavelength of 532 nm with reasonably high levels of quantum efficiency. ___________________________________________ _____________ *boris.militsyn@stfc.ac.uk Proceedings of IPAC’10, Kyoto, Japan TUPE095 02 Synchrotron Light Sources and FELs A16 Energy Recovery Linacs 2347 Embodiment of the ALICE photoinjector upgrade is currently underway. The PPF has been constructed and commissioned in ‘stand-alone’ mode using GaAs heterostructures. A sophisticated side-load photocathode transport mechanism has been designed, and will be tested first in atmosphere, then in an extra-high vacuum facility which duplicates the vacuum conditions of the real gun. The test facility is now being commissioned. OPERATION OF THE III-V PPF IN STAND-ALONE COMMISIONING MODE In order to commission and to optimize our photocathode preparation procedure, the PPF has been operating in stand-alone mode. The vacuum port which will connect the PPF to the gun via an all-metal gate valve has been connected to a turbo vacuum pump which is used during the bake-out procedure. This solution will permit connection of the PPF to the operational gun without its ventilation. Originally, the III-V photocathode family (such as GaAs, GaAsP, InGaAsP, as grown) have a Positive Electron Affinity (PEA), which for GaAs is 4 eV. In order to make GaAs photocathodes able to emit electrons when illuminated by 532 nm light typical for ERL DC guns, the electron affinity should be lowered to less than 1 eV or even brought to a negative value. This process requires deposition on the atomically-clean photocathode surface of alternating thin layers of Cs and an oxidant, typically O2 or NF3, and is called activation. In the vacuum laboratory where the PPF is installed, O2 oxidant is used. Figure 2. III-V Photocathode Preparation Facility in the ASTeC vacuum laboratory. 1 – Loading Chamber (LC), 2 Atomic Hydrogen Cleaning Chamber (HCC), 3Preparation Chamber (PC), 4 magnetic manipulator, 5 hydrogen cylinder, 6 oxygen piezo-electric leak valve, 7 control rack An ideal photocathode preparation procedure includes chemical etching of the photocathode surface in hydrochloric acid to remove As and Ga oxides in a dedicated glove box under a pure nitrogen atmosphere. The photocathode is then transferred to the LC via a nitrogenfilled transport vessel to prevent the formation of new oxide species (see Fig. 2). The transport vessel can accommodate up to four samples simultaneously, though the full glove box procedure has not yet been implemented, so photocathodes are placed into the transport vessel as delivered rather than etched. The LC pumping system includes an oil-free preliminary pumping station, backed by an ion pump. During loading, the LC is vented to dry nitrogen gas. It is then pumped down to a typical pressure of 10 mbar, and then subjected to a short bake at a temperature of 120150 C in order to remove water from the samples. Once acceptable vacuum in the LC is established, the photocathode is transferred to the HCC for exposure to atomic hydrogen. Although it was originally implemented for rejuvenation of spent photocathodes, atomic hydrogen Cleaning is now used for initial photocathode Cleaning. TUPE095 Proceedings of IPAC’10, Kyoto, Japan 2348 02 Synchrotron Light Sources and FELs A16 Energy Recovery Linacs Typically, photocathodes are heated to 450 °C (measured with a pyrometer) and exposed to hydrogen at 2 × 10 mbar for 15 minutes. Cs-O activation of GaAs photocathode with "Yo-Yo" procedure

  • Photocathode Preparation System for the ALICE Photoinjector
    AIP Conference Proceedings, 2009
    Co-Authors: K. J. Middleman, I. Burrows, Ryan Cash, B. D. Fell, L. B. Jones, Julian Mckenzie, Boris Militsyn, A. S. Terekhov
    Abstract:

    ALICE—Accelerators and Lasers in Combined Experiments—is a relatively new accelerator built at Daresbury Laboratory that will demonstrate the process of energy recovery by the end of 2008. The project is a research facility to develop the technology required to build a New Light Source (NLS) in the UK. This paper details the current ALICE photoinjector design and highlights the limitations before focusing on a photoinjector upgrade. The key component of the upgrade is a three‐stage extreme high vacuum load‐lock system that will be incorporated into the ALICE photoinjector in 2010. The load‐lock system has de facto become a standard component of a type III–V semiconductor photocathode injector and comprises: 1) loading Chamber to allow new photocathodes to be introduced, 2) Cleaning Chamber for atomic hydrogen Cleaning of the photocathodes and, 3) a preparation and activation Chamber where the photocathodes will be activated to the NEA state ready for use on the ALICE accelerator. Once commissioned the loa...

Mary C. Marshall - One of the best experts on this subject based on the ideXlab platform.

  • Non-ozone depleting supercritical Cleaning fluids: Design, fabrication, and operation of first preproduction natural convection device. Final report, 15 November 1993-15 December 1995
    1995
    Co-Authors: Mary C. Marshall, W. T. Roberds, Gordon D. Pollard
    Abstract:

    Southwest Research Institute (SwRI) has developed the natural convection supercritical fluids (SCF) cleaner as a potential substitute for 1,1,1-trichloroethane and Freon 113. This cleaner offers the potential for reduced capital investment, lower, operating costs, and improved maintainability and reliability over the conventional SCF devices principally by eliminating the circulating SCF and the compressor requirement. To demonstrate the natural convection technology on a production scale and to provide a USAF with a useful tool for detailed assessments, this project`s objective was to construct a preproduction device which could clean 70% of all parts handled at WPAFB (Wright-Patterson Air Force Base) Aircraft Modification Directorate. A 10-inch diameter Cleaning Chamber was specified to handle parts weighing up to 70 pounds. The SwRI prototype was used for experimental studies for process design purposes and as a guide for scale-up.

  • Non-Ozone Depleting Supercritical Cleaning Fluids: Design, Fabrication, and Operation of First Preproduction Natural Convection Device.
    1995
    Co-Authors: Mary C. Marshall, W. T. Roberds, Gordon D. Pollard
    Abstract:

    Abstract : Southwest Research Institute (SwRI) has developed the natural convection supercritical fluids (SCF) cleaner as a potential substitute for 1,1,1-trichloroethane and Freon 113. This cleaner offers the potential for reduced capital investment, lower, operating costs, and improved maintainability and reliability over the conventional SCF devices principally by eliminating the circulating SCF and the compressor requirement. The first prototype cleaner (only 2 inches in diameter) was built in 1991 at SwRI on internal research and development funds. To demonstrate the natural convection technology on a production scale and to provide a USAF with a useful tool for detailed assessments, this project's objective was to construct a preproduction device which could clean 70% of all parts handled at WPAFB (Wright-Patterson Air Force Base) Aircraft Modification Directorate. A 10-inch diameter Cleaning Chamber was specified to handle parts weighing up to 70 pounds. The SwRI prototype was used for experimental studies for process design purposes and as a guide for scale-up.

Yun Zhao - One of the best experts on this subject based on the ideXlab platform.

  • Numerical Simulation and Experiment of Gas-solid Two-phase Flow in a Cross-flow Grain Cleaning Device
    2013 Kansas City Missouri July 21 - July 24 2013, 2013
    Co-Authors: Xiaoqiang Du, Kenan Ni, Jianneng Chen, Chuanyu Wu, Yun Zhao
    Abstract:

    Abstract. A cross-flow grain Cleaning device was designed by employing the cross-flow blower. Based on the standard K-Iµ turbulence model and particle discrete phase model, the characteristics of gas-solid two-phase flow in the developed Cleaning Chamber were numerically simulated. The distribution of airflow velocity and particle trajectory was obtained. The results indicate that the airflow in the Cleaning Chamber presented a certain delamination where the airflow near the top and bottom regions of the Chamber had lower velocity than that passing through the mid-Chamber and the airflow distribution in each layer was steady without obvious vortex. Each grain component had respective particle trajectory which was significantly different. The numerical simulation results were verified by the experiments conducted on the test rig of the cross-flow grain Cleaning device, which indicates that effective separation on each grain component could be achieved in the developed cross-flow grain Cleaning device.