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section 260573 - electrical systems analysis
section 260573 - electrical systems analysis

... The power flow study shall define load MW and MVAR flows, voltage drop, overload and voltage violations, losses, and other steady state parameters. ...
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Switching the Neutral Conductor
Switching the Neutral Conductor

... generator can be grounded without compromising the NEC. That is, the gen set can be wired as a separately derived system by grounding the neutral at the gen set as long as the neutral is no longer solid through the transfer switch. This of course infers that neutral be switched at the same time as t ...
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... In an SRAM circuit, the leakage currents on the bit lines are getting more and more prominent with the dwindling of transistors’ threshold voltages as the technology scales down to 90 nm or below. Excessive bit-line leakage current not only results in slower read operations but also could lead to fu ...
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Manual for 3620.50/51 Power Supply
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... This laboratory power supply can supply both direct and alternating current from 0 to 24 volts. The AC and DC sections are galvanically separated and can both be used at the same time. The supply adheres to CE-standards and is supplied with a safety transformer fulfilling EN 60742, and provided that ...
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... wires (active and neutral) in a cord wears through and the two bare wires touch each other. Alternatively, a bare active wire may touch a metal component on an appliance, which is earthed, and hence cause a “short circuit’. Many appliances have the two wires providing the circuit and a green-yellow ...
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Earthing system

In electricity supply systems, an earthing system or grounding system is circuitry which connects parts of the electric circuit with the ground, thus defining the electric potential of the conductors relative to the Earth's conductive surface. The choice of earthing system can affect the safety and electromagnetic compatibility of the power supply. In particular, it affects the magnitude and distribution of short circuit currents through the system, and the effects it creates on equipment and people in the proximity of the circuit. If a fault within an electrical device connects a live supply conductor to an exposed conductive surface, anyone touching it while electrically connected to the earth will complete a circuit back to the earthed supply conductor and receive an electric shock.A protective earth (PE), known as an equipment grounding conductor in the US National Electrical Code, avoids this hazard by keeping the exposed conductive surfaces of a device at earth potential. To avoid possible voltage drop no current is allowed to flow in this conductor under normal circumstances. In the event of a fault, currents will flow that should trip or blow the fuse or circuit breaker protecting the circuit. A high impedance line-to-ground fault insufficient to trip the overcurrent protection may still trip a residual-current device (ground fault circuit interrupter or GFCI in North America) if one is present. This disconnection in the event of a dangerous condition before someone receives a shock, is a fundamental tenet of modern wiring practice and in many documents is referred to as automatic disconnection of supply (ADS). The alternative is defence in depth, where multiple independent failures must occur to expose a dangerous condition - reinforced or double insulation come into this latter category.In contrast, a functional earth connection serves a purpose other than shock protection, and may normally carry current. The most important example of a functional earth is the neutral in an electrical supply system. It is a current-carrying conductor connected to earth, often, but not always, at only one point to avoid flow of currents through the earth. The NEC calls it a groundED supply conductor to distinguish it from the equipment groundING conductor. Other examples of devices that use functional earth connections include surge suppressors and electromagnetic interference filters, certain antennas and measurement instruments.Regulations for earthing system vary considerably among countries and among different parts of electric systems. Most low voltage systems connect one supply conductor to the earth (ground).People use an earthing system mainly for these applications: To protect a structure from lightning strike, directing the lightning through the earthing system and into the ground rod rather than passing through the structure. Part of the safety system of mains electricity, preventing problems associated with floating ground and sky voltage. The most common ground plane for large monopole antenna and some other kinds of radio antenna.Other, less common applications of earthing systems include: single-wire earth return. part of a system that powers small devices from sky voltage. one at each end of a ground dipole ELF antenna.
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