← Volver a resultados
Ficha bibliográfica · Consulta y acceso
Artículo de revista

Stability enhancement via speed adaptation and efficiency improvement for induction machine

Lelisa Wogi et al · Nature Portfolio · 2026

Material complementario disponible
Lectura rápida. Revisá los datos básicos del recurso y luego accedé al contenido desde el botón principal. En esta ficha solo se muestra la información necesaria para identificar la obra, citarla y abrirla.
Publicación seriada

3D scan-based classification of Chinese young female hand morphology

Esta publicación seriada contiene 688 contenidos relacionados.

Acceso al recurso

Entrá al contenido desde la opción principal o elegí otra fuente disponible.

Acceso principal

Material complementario disponible

El enlace apunta a material asociado, anexos, tablas, datos o página complementaria. No se marca como libro/texto completo.
Abrir material

Resumen

Descripción general del contenido del recurso.

Abstract The primary characteristics of an electric drive include the ability to utilize the maximum torque throughout the speed range, minimal reliance on parameters, and, if feasible, the highest efficiency. This paper proposes a new speed observer and energy-saving control approach for induction motors (IMs) that exploits the advantages of Maximum Active Power per Flux Controlling Variable (MAPPFCV) for flux optimization. It employs an extended-speed observer to enhance the low-speed stability of sensorless IM and address the challenges, reducing the unstable area during low-speed operation. The proposed energy-saving approach, in real time, enables the algorithm to evaluate the optimal flux of the MAPPFCV, thereby enhancing efficiency. In a recent study on applying the loss model for flux optimization, the core loss resistance has been considered, as it increases the robustness and accuracy of the model. However, considering core resistance, complexity, and the flux optimization parameter dependence increases, resulting in significantly increased sensitivity. Thus, this paper proposes a model-based approach that considers core loss resistance for flux optimization, providing better performance while being less complex and robust to parameter variations. The advantages obtained, including simple and straightforward implementation; high dynamic performance; reduced stator current drawn by the drive; reduced power loss leading to improved efficiency, and reduced steady-state torque ripple, are presented in the article. The findings demonstrate that the proposed approach performs well across various operating conditions. Hardware results on a 5.5 kW IM are presented to validate the effectiveness and performance of the proposed approach.

Cómo citar

Elegí el formato que necesitás y copiá la referencia al portapapeles.

APA 7

al, L. W. E. (2026). Stability enhancement via speed adaptation and efficiency improvement for induction machine. https://doi.org/10.1038/s41598-026-44079-2

MLA

al, Lelisa Wogi et. "Stability enhancement via speed adaptation and efficiency improvement for induction machine." 2026. https://doi.org/10.1038/s41598-026-44079-2.

Chicago

al, Lelisa Wogi et. 2026. "Stability enhancement via speed adaptation and efficiency improvement for induction machine.". https://doi.org/10.1038/s41598-026-44079-2.

Harvard

al, L. W. E. 2026, Stability enhancement via speed adaptation and efficiency improvement for induction machine, Nature Portfolio, available at: https://doi.org/10.1038/s41598-026-44079-2 [Accessed 28 Jun. 2026].

Compartir e imprimir

Guardá la ficha, copiá su enlace permanente o imprimila como PDF.

Exportar referencia

Si usás un gestor bibliográfico, podés exportar el registro en los formatos más comunes.

Detalles del recurso

Información bibliográfica útil para confirmar que se trata del material correcto.

Título
Stability enhancement via speed adaptation and efficiency improvement for induction machine
Autor / colaboradores
Lelisa Wogi et al
Editorial
Nature Portfolio
Año de publicación
2026
ISSN
2045-2322
ISSN
2045-2322
Idioma
eng

Materias

Explorá otros recursos relacionados a partir de estas materias.

Copiado