Voltage and Frequency Control with XXXX Sample Clauses

Voltage and Frequency Control with XXXX. With the installation of a XXXX in a transformation station with high penetration from RES, the aim is to mitigates this effects, thus improving the quality of service of the electric power supply. Ultimately, we foresee three scenarios in which combining XXXX and DR algorithms should be able to mitigated these two issues: ● Voltage control; o Inject or consume reactive power up to rated power to keep the voltage close to nominal values; o When the voltage is less than 10% of the nominal voltage, inject as much reactive as possible (nominal). Voltage ride through capability.
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Voltage and Frequency Control with XXXX. Comparing to the European grid connected electrical systems, isolated electrical systems, such as Madeira Island, have higher limits concerning the RQS. Consequently, electrical quantities (voltage variations - dips and swells, frequency, harmonics, flicker etc.) are frequently monitored in random distribution substations (for a certain period of analysis) to ensure that the quality and safety of the electricity are according to the thresholds stipulated in Table 1.1. One of the main objectives of this pilot is to study a realm of new technologies with the expectation of replication throughout the low voltage distribution substations in the Island. With the installation of the XXXX system at the Fazendinha low voltage distribution substation, we expect to have a highly responsive storage backup to regulate events that may transcend some of the parameters described in Table 1.1. On an initial stage, the events that will be easier to control/regulate are mainly the voltage events, active and reactive power. Although frequency events can also be controlled by the XXXX, its influence will be not perceptible, due to the fact that the grid frequency in the island is imposed by the highest generation group. Nevertheless, if the system is replicated on a higher scale (i.e., more low voltage distribution substations) the contribution for frequency control will certainly be more substantial.

Related to Voltage and Frequency Control with XXXX

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  • Local Circuit Switching Capability, including Tandem Switching Capability 4.2.1 Local circuit switching capability is defined as: (A) line-side facilities, which include, but are not limited to, the connection between a loop termination at a main distribution frame and a switch line card; (B) trunk-side facilities, which include, but are not limited to, the connection between trunk termination at a trunk-side cross-connect panel and a switch trunk card; (C) switching provided by remote switching modules; and (D) all features, functions, and capabilities of the switch, which include, but are not limited to: (1) the basic switching function of connecting lines to lines, line to trunks, trunks to lines, and trunks to trunks, as well as the same basic capabilities made available to BellSouth’s customers, such as a telephone number, white page listings, and dial tone; and (2) all other features that the switch is capable of providing, including but not limited to customer calling, customer local area signaling service features, and Centrex, as well as any technically feasible customized routing functions provided by the switch. Any features that are not currently available but are technically feasible through the switch can be requested through the BFR/NBR process.

  • Technical Standards Applicable to a Wind Generating Plant i. Low Voltage Ride-Through (LVRT) Capability A wind generating plant shall be able to remain online during voltage disturbances up to the time periods and associated voltage levels set forth in the standard below. The LVRT standard provides for a transition period standard and a post-transition period standard.

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