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<dim:field authority="0000-0002-3829-4425" element="contributor" qualifier="author" confidence="ACCEPTED" language="es-ES" mdschema="dc">Morell Dameto, Nicolás</dim:field>
<dim:field authority="0000-0002-6528-1865" element="contributor" qualifier="author" confidence="ACCEPTED" language="es-ES" mdschema="dc">Chaves Ávila, José Pablo</dim:field>
<dim:field authority="0000-0001-5517-9587" element="contributor" qualifier="author" confidence="ACCEPTED" language="es-ES" mdschema="dc">Gómez San Román, Tomás</dim:field>
<dim:field authority="AEFE3BF5-97D6-41E1-94B2-781617E0C453" element="contributor" qualifier="author" confidence="ACCEPTED" language="es-ES" mdschema="dc">Schittekatte, Tim</dim:field>
<dim:field element="date" qualifier="accessioned" mdschema="dc">2025-09-26T17:46:34Z</dim:field>
<dim:field element="date" qualifier="available" mdschema="dc">2025-09-26T17:46:34Z</dim:field>
<dim:field element="date" qualifier="issued" language="es_ES" mdschema="dc">2024-09-01</dim:field>
<dim:field element="identifier" qualifier="uri" mdschema="dc">http://hdl.handle.net/11531/105263</dim:field>
<dim:field element="description" language="es_ES" mdschema="dc">Capítulos en libros</dim:field>
<dim:field element="description" qualifier="abstract" language="es-ES" mdschema="dc">Electricity network tariffs intend to recover network costs and adhere to economic efficiency and equity principles. Most network tariffs in real-world systems focus on cost recovery, implicitly assuming non-responsive customers. This article proposes a forward-looking dynamic network tariff that could be implemented in real-world electricity systems. First, when considering the entire network, consumers and generators must be clustered into subsystems by voltage levels, enabling the calculation of the network utilization levels; this is the so-called cascade model. After, per voltage level, the network tariff needs to be computed. The forward-looking tariff consists of a peak-coincident energy charge, which is symmetric for injections and withdrawals, a per-kWh component for energy losses, and a fixed residual network charge. This tariff design incentivizes shifting flexible loads to off-peak hours and aligns individual customer incentives with expected system benefits, reducing future network investments. In addition, the symmetric nature of the proposed tariff enables a level playing field for active customers providing flexible services. The Slovenian regulator has considered the designed tariff for future implementation. This article summarizes the findings of [1] by the same authors.</dim:field>
<dim:field element="description" qualifier="abstract" language="en-GB" mdschema="dc">Electricity network tariffs intend to recover network costs and adhere to economic efficiency and equity principles. Most network tariffs in real-world systems focus on cost recovery, implicitly assuming non-responsive customers. This article proposes a forward-looking dynamic network tariff that could be implemented in real-world electricity systems. First, when considering the entire network, consumers and generators must be clustered into subsystems by voltage levels, enabling the calculation of the network utilization levels; this is the so-called cascade model. After, per voltage level, the network tariff needs to be computed. The forward-looking tariff consists of a peak-coincident energy charge, which is symmetric for injections and withdrawals, a per-kWh component for energy losses, and a fixed residual network charge. This tariff design incentivizes shifting flexible loads to off-peak hours and aligns individual customer incentives with expected system benefits, reducing future network investments. In addition, the symmetric nature of the proposed tariff enables a level playing field for active customers providing flexible services. The Slovenian regulator has considered the designed tariff for future implementation. This article summarizes the findings of [1] by the same authors.</dim:field>
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<dim:field element="language" qualifier="iso" language="es_ES" mdschema="dc">en-GB</dim:field>
<dim:field element="publisher" language="es_ES" mdschema="dc">Danish Utility Regulator (Copenhague, Dinamarca)</dim:field>
<dim:field element="rights" language="es_ES" mdschema="dc"/>
<dim:field element="rights" qualifier="uri" language="es_ES" mdschema="dc"/>
<dim:field element="source" language="es_ES" mdschema="dc">Libro: Incentives and digitalization for flexibility in the green transition, Página inicial: 56, Página final: 62</dim:field>
<dim:field element="subject" qualifier="other" language="es_ES" mdschema="dc">Instituto de Investigación Tecnológica (IIT)</dim:field>
<dim:field element="title" language="es_ES" mdschema="dc">Forward-looking dynamic network tariffs: an efficient solution for price-responsive customers</dim:field>
<dim:field element="type" language="es_ES" mdschema="dc">info:eu-repo/semantics/bookPart</dim:field>
<dim:field element="description" qualifier="version" language="es_ES" mdschema="dc">info:eu-repo/semantics/publishedVersion</dim:field>
<dim:field element="rights" qualifier="accessRights" language="es_ES" mdschema="dc">info:eu-repo/semantics/restrictedAccess</dim:field>
<dim:field element="keywords" language="es-ES" mdschema="dc">Electricity tariffs, decarbonization, network tariffs, active customer response, distributed energy resources, long-term marginal costs, residual costs, electric vehicles</dim:field>
<dim:field element="keywords" language="en-GB" mdschema="dc">Electricity tariffs, decarbonization, network tariffs, active customer response, distributed energy resources, long-term marginal costs, residual costs, electric vehicles</dim:field>
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