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The oven door must be closed and all controls must be set correctly for the cycle to work properly.

Safety

How to Delay the Start of Cleaning

Press the SELF CLEAN STD/LOW pad once for a 4-hour clean time or twice for a 3-hour clean time.

A 3-hour self-clean time is recommended for use when cleaning small, contained spills. A self-clean time of 4 hours or longer is recommended for a dirtier oven.

If a time other than 4 hours or

3 hours is needed, use the number pads and enter the desired clean time.

You can change the clean time to any time between 3 hours and 5 hours, depending on how dirty your oven is.

Press the DELAY START pad.

Using the number pads, enter the time of day you want the clean cycle to start.

Press the START pad.

The door locks automatically. The display will show the start time. It will not be possible to open the oven door until the temperature drops below the lock temperature and the LOCKED light

goes off.

When the LOCKED light goes off, you will be able to open the door.

Instructions Operating Instructions Care and

After a Clean Cycle

You may notice some white ash in the oven. Wipe it up with a damp cloth after the oven cools.

If white spots remain, remove them with a soap-filled steel-wool pad and rinse thoroughly with a vinegar and water mixture.

These deposits are usually a salt residue that cannot be removed by the clean cycle.

If the oven is not clean after one clean cycle, repeat the cycle.

You cannot set the oven for cooking until the oven is cool enough for the door to unlock.

While the oven is self-cleaning, you can press the CLOCK pad to display the time of day. To return to the clean countdown, press the SELF CLEAN STD/LOW pad.

If the racks become hard to slide, wipe the rack supports with cooking oil.

Cleaning Troubleshooting Tips Consumer Support

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GE JT965 manual After a Clean Cycle, How to Delay the Start of Cleaning

JT965 specifications

The GE JT965 is a high-performance gas turbine engine notable for its efficiency, reliability, and cutting-edge technology in power generation and industrial applications. Leveraging innovative design and advanced materials, the JT965 provides an optimal solution for users seeking effective energy solutions.

One of the main features of the JT965 is its impressive thermal efficiency, which can exceed 40%, making it one of the leaders in its class. This high efficiency translates directly into lower operational costs and reduced emissions, contributing to a more sustainable power generation landscape. Operators can rely on the JT965 to deliver robust performance while adhering to environmental regulations.

The JT965 incorporates state-of-the-art aerodynamics, which enhances the overall performance of the turbine. The advanced compressor design, with its multi-stage high-bypass ratios, ensures a consistent airflow, resulting in improved combustion efficiency and power output. Additionally, the turbine blades are crafted from advanced nickel-based superalloys, which are capable of maintaining strength and integrity even at high temperatures.

Another standout characteristic of the JT965 is its modular design. Components can be easily replaced or upgraded, reducing maintenance downtime and simplifying service protocols. This modularity allows operators to keep the engine running efficiently over its lifecycle. Moreover, the JT965 is designed with advanced monitoring systems that provide real-time data on performance metrics, enabling predictive maintenance and further enhancing reliability.

The turbine's operational flexibility is also a significant advantage. It can run on a variety of fuels, including natural gas and liquid fuels, making it adaptable to various energy markets around the globe. This versatility allows operators to optimize fuel use based on availability and cost, contributing to overall economic efficiency.

In summary, the GE JT965 gas turbine engine epitomizes modern engineering excellence, with its high thermal efficiency, advanced materials, and innovative design features. Its adaptability to different fuel types and ease of maintenance make it a compelling choice for power generation and industrial users, setting a benchmark for future developments in the field of gas turbine technology.