Instructions d’installation

INVERSION DE LA PORTE

REMARQUES IMPORTANTES

Pour inverser la porte :

Lisez bien toutes les instructions avant de commencer.

Manipulez les pièces avec précaution pour éviter de rayer la peinture.

Posez les vis à côté des pièces auxquelles elles correspondent pour éviter de les utiliser au mauvais endroit.

Aménagez un espace qui ne présente aucun risque de rayure pour les portes.

IMPORTANT : Une fois l’inversion commencée, ne déplacez pas la caisse jusqu’à ce que l’inversion soit terminée.

Ces instructions indiquent comment changer les charnières de côté (de la droite vers la gauche) — si vous souhaitez remettre les charnières du côté droit, suivez les mêmes instructions en inversant toutes les références faites aux côtés droit et gauche.

Débranchez le réfrigérateur de la prise murale.

Videz tous les balconnets.

OUTILS NÉCESSAIRES

1

DÉPOSE DE LA PORTE DU COMPARTIMENT CONGÉLATEUR

Retirez le couvre-charnière, les vis (certains modèles disposent de rondelles de blocage), la charnière supérieure et la cale (le cas échéant).

Posez la porte, face extérieure vers le haut, sur une surface qui ne risque pas de la rayer.

REMARQUE : Lorsque vous retirez la porte de certains modèles, faites attention aux rondelles qui se trouvent entre la charnière centrale et le bas de la porte du congélateur, car celles-ci pourraient coller à la porte. Ne les perdez pas.

ATTENTION : Ne laissez pas la porte tomber sur le sol. Cela pourrait endommager la butée de porte.

Tournevis à douille de 5/16 po

Tournevis fin

 

 

 

 

 

 

Tournevis Phillips

Ruban-cache

26

Page 26
Image 26
GE GTR12 owner manual Inversion DE LA Porte

GTR12 specifications

The General Electric (GE) GTR12 and GTR10 gas turbines represent a significant advancement in turbine technology, designed for power generation with an emphasis on efficiency and reliability. These turbines are engineered to meet the growing demand for clean and effective energy solutions in the industrial sector.

The GTR12 is particularly known for its high efficiency ratings and modular design, which allows for easier maintenance and upgrades. It can adapt to varying load demands, making it an ideal option for both peak and baseload power generation. One of its standout features is the advanced materials and coatings used in the turbine blades, enabling it to withstand higher temperatures and improve overall performance. Additionally, the GTR12 incorporates GE’s state-of-the-art aerodynamic design, which enhances its output while minimizing fuel consumption.

On the other hand, the GTR10 is designed for smaller scale operations, providing an effective solution for distributed power generation. This turbine also features an efficient combustion system that optimizes fuel usage while reducing emissions. The compact design of the GTR10 makes it suitable for installations where space is at a premium. It is versatile enough to be used in various configurations, including simple cycle, combined cycle, and cogeneration applications.

Both the GTR12 and GTR10 utilize advanced digital controls and monitoring systems. GE's Digital Wind Farm technology leverages data analytics and real-time monitoring to maximize efficiency and uptime. This means that operators can predict maintenance needs before issues arise, reducing downtime and maintenance costs.

In terms of characteristics, both turbines boast a robust design that ensures reliability even in challenging operating conditions. They are engineered to comply with stringent environmental regulations, thus supporting the global shift toward cleaner energy solutions.

To sum up, GE's GTR12 and GTR10 gas turbines are exemplary models of modern engineering, emphasizing efficiency, reliability, and adaptability. With advanced features such as high-performance materials, digital controls, and versatile design options, these turbines serve as integral components in the sustainable energy landscape. Their ability to integrate with renewable energy sources further solidifies their role in shaping the future of power generation. These turbines not only meet today's energy demands but also pave the way for a more sustainable and efficient energy future.