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Turboprop

technology Maturity 11-13

A turboprop is a plane engine.

Lockheed C-130 Hercules.jpg
Lockheed C-130 Hercules.jpg
It uses a big fan to move. This fan helps the plane fly. It works well when planes go slow. This helps save fuel. Do you like planes?

40 words

A turboprop is a special plane engine.

Turboprop operation-en.svg
Turboprop operation-en.svg
It uses a big propeller to move the plane.

First, the engine takes in air. It squeezes the air tight. Then, it adds fuel to the air. The fuel burns to make heat.

This heat makes the engine spin. Most of that power turns the propeller. The propeller pushes a lot of air. This helps the plane fly.

These engines work well at slow speeds. They help planes save fuel. They are very useful for many planes.

Lockheed C-130 Hercules.jpg
Lockheed C-130 Hercules.jpg

Some propellers can even spin backward. This helps the plane stop on the ground. It is a very smart engine.

111 words

A turboprop is a type of engine for airplanes.

Turboprop operation-en.svg
Turboprop operation-en.svg
It uses a gas turbine to spin a large propeller. Most of the engine's power goes to that propeller. This helps the plane move through the air.

Inside the engine, air enters through an intake. A compressor squeezes the air tight. Next, fuel is added to the air in a combustor. The fuel burns to make hot gases. These gases rush through a turbine, which is a set of spinning blades. This spinning creates power. A gearbox then changes that power so the propeller can spin correctly.

Turboprops are very good at low speeds. They move a large amount of air to create thrust. This helps the plane use less fuel. However, they do not work well at very high speeds.

Some propellers are very smart. They have variable pitch. This means the angle of the blades can change. This helps the plane fly better at different speeds. It also lets the propeller spin backward. This helps the plane slow down quickly on the ground.

Lockheed C-130 Hercules.jpg
Lockheed C-130 Hercules.jpg

190 words

A turboprop is a special kind of engine used to power airplanes. It uses a gas turbine to create energy, but it uses that energy in a unique way. Instead of using the exhaust to push the plane forward, it uses most of its power to spin a large propeller.

Turboprop operation-en.svg
Turboprop operation-en.svg
This makes the engine very efficient at lower speeds. It is great for moving a huge amount of air to create thrust. Because it moves so much air, it can use less fuel than other engines.
Propulsive efficiency for different engine types and Mach numbers.png
Propulsive efficiency for different engine types and Mach numbers.png

The way it works follows a steady path of steps. First, air enters through an intake and moves into a compressor. The compressor squeezes the air very tight. Next, jet fuel is added to this compressed air in a part called the combustor. The fuel and air mix and burn together. This creates hot gases that expand through the turbine stages. These spinning turbines create power to run the compressor and an electric generator. Some of this power goes to a reduction gearbox. This gearbox turns high speed, low torque power into low speed, high torque power for the propeller.

History shows us that many people worked to make this engine a reality. A Hungarian engineer named György Jendrassik designed the first working turboprop. He published his idea in 1928 and got a patent in 1929. He even built a small experimental engine in 1938. Later, he worked on the larger Jendrassik Cs-1 engine in Budapest. This engine was meant to power the Varga RMI-1 X/H, which was the first turboprop aircraft.

Varga RMI-1 3-view (2).svg
Varga RMI-1 3-view (2).svg
Sadly, that aircraft was destroyed in a bombing raid before it could fly.

Other famous engines helped shape the world of flight. In 1945, the Rolls-Royce RB.50 Trent became the first British turboprop to fly. This engine was used on a test plane called the Gloster Meteor EE227. Rolls-Royce later made the Dart engine, which was very reliable. The Vickers Viscount was the first turboprop plane to be sold in large numbers. In the Soviet Union, the Kuznetsov NK-12 was built. This was a very powerful engine used on the Tupolev Tu-95 Bear.

Kuznetsov NK-12M turboprop on Tu-95.jpg
Kuznetsov NK-12M turboprop on Tu-95.jpg
It used contra-rotating propellers to fly very fast.

You can see these engines working on many different types of planes today. Some planes, like the Lockheed C-130 Hercules, use them for heavy lifting.

Lockheed C-130 Hercules.jpg
Lockheed C-130 Hercules.jpg
Other smaller planes, like the Beech King Air, use them for traveling.
Svensk flygambulans97.jpg
Svensk flygambulans97.jpg
The propellers are very smart because they have variable pitch. This means the angle of the blades can change as the plane flies. This helps the plane stay efficient. It also allows for reverse thrust to help the plane stop quickly on a runway.

467 words

A turboprop is a specialized gas-turbine engine designed to drive an aircraft propeller. While jet engines like turbojets use exhaust gases for thrust, a turboprop uses most of its energy to turn a shaft. This shaft connects to a propeller, which moves a large volume of air to create propulsion. Because the propeller moves so much air at lower speeds, the engine is highly efficient for certain types of flight. In fact, the exhaust gas in a turboprop provides only about 10% of the total thrust. The rest of the power is extracted from the turbine to drive the propeller.

Turboprop operation-en.svg
Turboprop operation-en.svg

The mechanism of a turboprop follows a specific sequence of physical processes. First, air enters through an intake and moves into a compressor. The compressor squeezes the air to increase its pressure. Next, jet fuel is injected into this compressed air within the combustor. The fuel-air mixture ignites, creating high-energy combustion gases. These hot gases expand rapidly as they pass through the turbine stages. This expansion generates power at the point of exhaust. Some of this power drives the compressor and an electric generator, while the rest is sent to the propeller via a gearbox.

A critical component is the reduction gearbox. The turbine spins at very high revolutions per minute (RPM) but with low torque. A propeller, however, requires low RPM and high torque to function effectively. The gearbox converts these high-speed, low-torque outputs into the low-speed, high-torque rotation needed for the propeller. There are two primary designs for this connection: fixed-shaft and free-turbine. In a fixed-shaft engine, such as the Honeywell TPE331, the gearbox, turbine, and gas generator are all connected on a single shared shaft. In a free-turbine engine, like the Pratt & Whitney Canada PT6, the turbine is connected to the propeller while the rest of the gas generator spins independently. This design allows the power section to be replaced easily if the propeller is damaged.

Turboprop operation-en.svg
Turboprop operation-en.svg

Propellers used in these engines are typically constant-speed, or variable-pitch, types. This means the angle of the blades, known as the pitch, can change during flight. This adjustment is necessary because turbine engines can respond slowly to power changes at low speeds. Pilots use two main modes for the propeller: Alpha and Beta. The Alpha mode is used for all standard flight operations, including takeoff. The Beta mode is used for ground operations and can produce zero or even negative thrust. Beta is further divided into "Beta for taxi," which produces very little thrust, and "Beta plus power," which produces reverse thrust. Reverse thrust is helpful for stopping quickly on short runways.

Propulsive efficiency for different engine types and Mach numbers.png
Propulsive efficiency for different engine types and Mach numbers.png

The history of the turboprop began with early research into compressor and turbine designs. In 1928, Hungarian engineer György Jendrassik published the first turboprop idea. He patented his invention in 1929 and built a small 100 Hp experimental turbine in 1938. His larger Cs-1 engine was tested in Budapest between 1937 and 1941. Although it was intended for the Varga RMI-1 X/H fighter-bomber, the aircraft was destroyed in a bombing raid before its first flight.

Varga RMI-1 3-view (2).svg
Varga RMI-1 3-view (2).svg
Later, the Rolls-Royce RB.50 Trent became the first British turboprop to fly in September 1945. This led to the development of the highly reliable Rolls-Royce Dart engine. The Dart powered the Vickers Viscount, which was the first turboprop aircraft to enter mass production.

Some turboprops are designed for extreme performance and speed. The Soviet Union developed the Kuznetsov NK-12, a massive engine used on the Tupolev Tu-95 Bear. This aircraft used eight contra-rotating propellers to achieve cruise speeds exceeding 575 mph. This speed is comparable to many early jet aircraft. While most turboprops are not used for speeds above 0.6 or 0.7 Mach, the Tu-95 proved that specialized designs could push these limits.

Kuznetsov NK-12M turboprop on Tu-95.jpg
Kuznetsov NK-12M turboprop on Tu-95.jpg
Modern turboprops continue to serve various roles, from heavy military transport to small civilian aircraft. For example, the Lockheed C-130 Hercules uses them for heavy lifting.
Lockheed C-130 Hercules.jpg
Lockheed C-130 Hercules.jpg
Meanwhile, the Beech King Air uses them for efficient regional travel.
Svensk flygambulans97.jpg
Svensk flygambulans97.jpg

Understanding the turboprop requires looking at the relationship between air velocity and thrust. A large-diameter propeller accelerates a massive volume of air by a small amount. This is more efficient at low speeds than a small fan accelerating a small amount of air by a large amount. This concept is known as low disc loading, which helps reduce fuel consumption. However, as an aircraft approaches the speed of sound at the blade tips, propeller efficiency drops significantly. To manage this, pilots can use the "feathering" function. Feathering turns the propeller blades edge-on into the wind. This minimizes drag if an engine fails during flight.

790 words
🖼️ Images & Media (8)
File:JMSDF P-2J T64-IHI-10E turboprop engine left side view at Kanoya Naval Air Base Museum April 29, 2017.jpg
JMSDF P-2J T64-IHI-10E turboprop engine...
File:Turboprop operation-en.svg
Turboprop operation-en.svg
File:Propulsive efficiency for different engine types and Mach numbers.png
Propulsive efficiency for different...
File:Varga RMI-1 3-view (2).svg
Varga RMI-1 3-view (2).svg
File:Rolls-Royce RB50 Trent Turboprop On Test Rig At Hucknall.jpg
Rolls-Royce RB50 Trent Turboprop On Test...
File:Kuznetsov NK-12M turboprop on Tu-95.jpg
Kuznetsov NK-12M turboprop on Tu-95.jpg
File:Lockheed C-130 Hercules.jpg
Lockheed C-130 Hercules.jpg
File:Svensk flygambulans97.jpg
Svensk flygambulans97.jpg
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