The company has trained workers to use water to fight electrical switchgear fires if halon is not available, the report said, raising the risk of flooding in adjacent rooms
with electrical controls because flood doors have not been established.
Not exact matches
Ahern earned an
electrical engineering degree from University of Vermont and
with help from an unnamed angel investor who «bet on people heading in the right direction» started a company in 2002 — Industrial Defender, a cybersecurity firm that protects industrial
control systems for the
electrical grid, oil and gas, and chemical companies — which Lockheed Martin acquired in 2014.
Siemens was contracted in March 2011 to equip the refinery
with electrical and
control components.
Commissioners last week approved agreements
with the low bidders for site
electrical work, paving and concrete work, site plumbing and excavation and grading and erosion
control.
This amazing armband reads the
electrical activity of your muscles and the motion of your arm to let you wirelessly
control technology
with hand gestures.
To find out if that was the case, he teamed up
with John Goutsias, Ph.D., professor of
electrical and computer engineering at the Johns Hopkins Whiting School of Engineering, to find a way to measure this
controlled type of randomness, scientifically termed epigenetic stochasticity, by using the information - theoretic concept of Shannon entropy.
They managed to record the reactions at very high resolution, as the
electrical signals were carefully
controlled and could therefore be delivered multiple times
with exact reproducibility.
Other biomedical engineers are developing a new generation of prosthetic limbs that amputees can
control with neurosensors,
with assists from computer science, neuroscience, and
electrical and mechanical engineering, among other disciplines.
The team reported in Molecular and Cellular Proteomics that, compared
with controls, PGD mice were more forgetful, heavier and had less myelin (a fatty coating on nerves that allows
electrical signals to move quickly across nerve cells).
Functional materials are those
with controlled composition, size, and structure to facilitate desired interactions
with light,
electrical or magnetic fields, or chemical environment to provide unique functionality in a wide range of applications from energy to medicine.
With these molecular clusters, we have complete control over their structure with atomic precision and can change the elemental composition and structure in a controllable manner to elicit certain electrical response.&ra
With these molecular clusters, we have complete
control over their structure
with atomic precision and can change the elemental composition and structure in a controllable manner to elicit certain electrical response.&ra
with atomic precision and can change the elemental composition and structure in a controllable manner to elicit certain
electrical response.»
«
With our system, you can draw a polygon on the map and say, «I want this entire region to be controlled,»» says Jason Gao, a graduate student in electrical engineering and computer science who developed the new system together with his advisor, Professor of Electrical Engineering and Computer Science Li - Shiuan
With our system, you can draw a polygon on the map and say, «I want this entire region to be
controlled,»» says Jason Gao, a graduate student in
electrical engineering and computer science who developed the new system together with his advisor, Professor of Electrical Engineering and Computer Science Li - S
electrical engineering and computer science who developed the new system together
with his advisor, Professor of Electrical Engineering and Computer Science Li - Shiuan
with his advisor, Professor of
Electrical Engineering and Computer Science Li - S
Electrical Engineering and Computer Science Li - Shiuan Peh.
On June 18, neurosurgeons at the University of Alabama at Birmingham implanted a new type of
electrical stimulator to
control seizures in patients
with difficult - to -
control epilepsy.
Although the device has a diode - like structure, its light - emitting system is not based on a diode system, which are made from layers of semiconductors, materials that act like a cross between a conductor and an insulator, the
electrical properties of which can be
controlled with the addition of impurities called dopants.
We are also dedicated not only to enabling
control over computers or robotic assistive devices, but — for people
with spinal cord injury or stroke — working toward the goal of reconnecting brain to limb, allowing the powerful intracortical signals to activate fully implanted functional
electrical stimulation devices, and re-enabling intuitive movement of one's own arm and hand.»
«We're also interested in
controlling the charge transfer process
with external
electrical fields as a means of utilizing MX2 heterostructures in photovoltaic devices,» Wang says.
«In addition, our security algorithm can be incorporated directly into the code used to operate existing distributed
control systems,
with minor modifications,» says Dr. Mo - Yuen Chow, a professor of
electrical and computer engineering at NC State and co-author of a paper on the work.
By testing cycling time to task failure (TTF) in a group of 12 active participants in a placebo
controlled study, Dr Mauger discovered that stimulating the brain by passing a mild
electrical current (transcranial direct current stimulation or tDCS) over the scalp to stimulate it increased the activity of the area associated
with muscle contraction.
For the past several years, researchers at the University of Illinois at Urbana - Champaign have been developing a class of walking «bio-bots» powered by muscle cells and
controlled with electrical and optical pulses.
«It is important to understand the fundamental processes involved in the molecular
electrical doping of organic semiconductors more precisely,» explains Salzmann, continuing: «If we want to successfully employ these kinds of materials in applications, we need to be able to
control their electronic properties just as precisely as we customarily do today
with inorganic semiconductors.»
Now, in this follow - up study, Claudia Angeli, Ph.D., assistant professor at the University of Louisville's Kentucky Spinal Cord Injury Research Center and her research colleagues report that three additional patients
with paralysis have recovered voluntary muscle
control following
electrical stimulation of the spine.
Attempts to
control prostheses
with electrical sensors on the skin have not had much success, mainly because it is difficult to distinguish among the many
electrical changes that activate muscles.
Scientists at the Tokyo Institute of Technology reported in last week's Nature (4 February, p428) that they had developed a way of
controlling liquid - crystal screens
with laser light rather than
electrical signals.
Oligothiophene (4T) and polythiophene (P3HT), two typical organic semiconductors, can be doped
with a second type of molecule such as a strong electron acceptor (F4TCNQ) for example to
control the
electrical conductivity.
With their current work, the MIT researchers have enabled the
control of the phase and
electrical properties of this class of materials in a practical way, by applying an
electrical charge.
While we have demonstrated direct correlations between oxygen content, crystal structure, and
electrical resistance, the same ionotronic concept could be utilized to
control other material properties,» says Professor Sebastiaan van Dijken, who is a coauthor on the paper
with Yao.
The device is a pacemaker
with a tiny generator and a sensing lead, but instead of using
electrical pulses to
control abnormal heart rate, the device uses two wires to stimulate the tongue.
Redfield said that the best way to prevent such incidents is
with a battery management system that evenly distributes
electrical loads and
controls temperatures.
As for those patients whose brains are trapped in inanimate bodies, implants that pick up
electrical impulses can already translate neural signals to
control a cursor, move a wheelchair, or say hello, although they are not now suitable for people
with severe brain injuries.
These predictions, which were verified by comparisons
with high - resolution microscopic images of real molecules on metal surfaces, may lead to
controlled, large - scale fabrication of tiny
electrical wires and other nanomaterials for future devices.
With a remote
control, Darrel uses the stimulator for up to 45 minutes each day, applying different programs to transmit
electrical impulses into his spinal cord that mimic the same signals that would come from the brain.
«
Electrical efficiency by engineering warmer superconductors
with atom - by - atom
control.»
One reason multiferroics are so desirable is that their dual characteristics can be
controlled in combination
with each other, providing, for example, electrically
controlled magnetism or magnetically
controlled electrical properties.
Corresponding
electrical stimuli can then be transmitted from the prosthetic skin to the body to stimulate peripheral nerves via an ultrathin multi-electrode array, which is decorated
with ceria nanoparticles for inflammation
control.
These projects are two of several technology collaborations between Johnson
Controls and UW — Madison focused on optimizing battery system performance and interactions
with a vehicle's powertrain and
electrical architecture and on developing future stationary energy application
Susan Amara, USA - «Regulation of transporter function and trafficking by amphetamines, Structure - function relationships in excitatory amino acid transporters (EAATs), Modulation of dopamine transporters (DAT) by GPCRs, Genetics and functional analyses of human trace amine receptors» Tom I. Bonner, USA (Past Core Member)- Genomics, G protein coupled receptors Michel Bouvier, Canada - Molecular Pharmacology of G protein - Coupled Receptors; Molecular mechanisms
controlling the selectivity and efficacy of GPCR signalling Thomas Burris, USA - Nuclear Receptor Pharmacology and Drug Discovery William A. Catterall, USA (Past Core Member)- The Molecular Basis of
Electrical Excitability Steven Charlton, UK - Molecular Pharmacology and Drug Discovery Moses Chao, USA - Mechanisms of Neurotophin Receptor Signaling Mark Coles, UK - Cellular differentiation, human embryonic stem cells, stromal cells, haematopoietic stem cells, organogenesis, lymphoid microenvironments, develomental immunology Steven L. Colletti, USA Graham L Collingridge, UK Philippe Delerive, France - Metabolic Research (diabetes, obesity, non-alcoholic fatty liver, cardio - vascular diseases, nuclear hormone receptor, GPCRs, kinases) Sir Colin T. Dollery, UK (Founder and Past Core Member) Richard M. Eglen, UK Stephen M. Foord, UK David Gloriam, Denmark - GPCRs, databases, computational drug design, orphan recetpors Gillian Gray, UK Debbie Hay, New Zealand - G protein - coupled receptors, peptide receptors, CGRP, Amylin, Adrenomedullin, Migraine, Diabetes / obesity Allyn C. Howlett, USA Franz Hofmann, Germany - Voltage dependent calcium channels and the positive inotropic effect of beta adrenergic stimulation; cardiovascular function of cGMP protein kinase Yu Huang, Hong Kong - Endothelial and Metabolic Dysfunction, and Novel Biomarkers in Diabetes, Hypertension, Dyslipidemia and Estrogen Deficiency, Endothelium - derived Contracting Factors in the Regulation of Vascular Tone, Adipose Tissue Regulation of Vascular Function in Obesity, Diabetes and Hypertension, Pharmacological Characterization of New Anti-diabetic and Anti-hypertensive Drugs, Hypotensive and antioxidant Actions of Biologically Active Components of Traditional Chinese Herbs and Natural Plants including Polypehnols and Ginsenosides Adriaan P. IJzerman, The Netherlands - G protein - coupled receptors; allosteric modulation; binding kinetics Michael F Jarvis, USA - Purines and Purinergic Receptors and Voltage-gated ion channel (sodium and calcium) pharmacology Pain mechanisms Research Reproducibility Bong - Kiun Kaang, Korea - G protein - coupled receptors; Glutamate receptors; Neuropsychiatric disorders Eamonn Kelly, Prof, UK - Molecular Pharmacology of G protein - coupled receptors, in particular opioid receptors, regulation of GPCRs by kinasis and arrestins Terry Kenakin, USA - Drug receptor pharmacodynamics, receptor theory Janos Kiss, Hungary - Neurodegenerative disorders, Alzheimer's disease Stefan Knapp, Germany - Rational design of highly selective inhibitors (so call chemical probes) targeting protein kinases as well as protein interaction inhibitors of the bromodomain family Andrew Knight, UK Chris Langmead, Australia - Drug discovery, GPCRs, neuroscience and analytical pharmacology Vincent Laudet, France (Past Core Member)- Evolution of the Nuclear Receptor / Ligand couple Margaret R. MacLean, UK - Serotonin, endothelin, estrogen, microRNAs and pulmonary hyperten Neil Marrion, UK - Calcium - activated potassium channels, neuronal excitability Fiona Marshall, UK - GPCR molecular pharmacology, structure and drug discovery Alistair Mathie, UK - Ion channel structure, function and regulation, pain and the nervous system Ian McGrath, UK - Adrenoceptors; autonomic transmission; vascular pharmacology Graeme Milligan, UK - Structure, function and regulation of G protein - coupled receptors Richard Neubig, USA (Past Core Member)- G protein signaling; academic drug discovery Stefan Offermanns, Germany - G protein - coupled receptors, vascular / metabolic signaling Richard Olsen, USA - Structure and function of GABA - A receptors; mode of action of GABAergic drugs including general anesthetics and ethanol Jean - Philippe Pin, France (Past Core Member)- GPCR - mGLuR - GABAB - structure function relationship - pharmacology - biophysics Helgi Schiöth, Sweden David Searls, USA - Bioinformatics Graeme Semple, USA - GPCR Medicinal Chemistry Patrick M. Sexton, Australia - G protein - coupled receptors Roland Staal, USA - Microglia and neuroinflammation in neuropathic pain and neurological disorders Bart Staels, France - Nuclear receptor signaling in metabolic and cardiovascular diseases Katerina Tiligada, Greece - Immunopharmacology, histamine, histamine receptors, hypersensitivity, drug allergy, inflammation Georg Terstappen, Germany - Drug discovery for neurodegenerative diseases
with a focus on AD Mary Vore, USA - Activity and regulation of expression and function of the ATP - binding cassette (ABC) transporters
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