A helicopter can fly in many ways. 

A helicopter uses spinning blades to fly. 

A helicopter is a type of aircraft that uses spinning rotors to fly. 
Most helicopters use one main rotor on top. They also use a small tail rotor. This tail rotor helps with anti-torque. Torque is a force that tries to spin the body of the craft. The tail rotor pushes against this force to keep the helicopter steady. 
An engine provides the power for flight. Many modern helicopters use a turboshaft engine. This is a type of turbine engine that drives a rotor. These engines are light and very strong. A transmission connects the engine to the rotors. It uses gears to change the speed of the engine. The engine spins very fast, but the rotors spin much slower. This system makes sure the rotors turn at the right speed to fly.
A helicopter is a special kind of rotorcraft. It uses horizontally spinning rotors to create lift and thrust. 
How does a helicopter stay steady while flying? Most models use one main rotor on top. This rotor provides the lift to go up. However, the spinning rotor creates a force called torque. Torque tries to spin the body of the craft in the opposite direction. 
People have been working on these machines for a long time. The Focke-Wulf Fw 61 was the first successful and controllable helicopter in 1936. 
Inside the machine, an engine provides all the power. Early engines were small, like rubber bands or steam engines. These were not strong enough to lift people. 
Today, you can see many different types of helicopters. Some are huge and carry many people. Others are small drones used for photography. 

A helicopter is a specialized type of rotorcraft. It uses one or more horizontally spinning rotors to provide both lift and thrust. 
The primary mechanism for flight is the rotor system. The rotor consists of a mast, a hub, and rotor blades. The mast is a metal cylindrical shaft that extends up from the transmission. At the top of this mast is the hub, which serves as the attachment point for the blades. As the engine spins the rotor, the blades create the lift needed to fly. There are three main ways these blades attach to the hub: hingeless, fully articulated, or teetering systems. 
One major challenge in helicopter design is managing torque. When the main rotor spins, it creates an aerodynamic drag that tries to spin the helicopter body in the opposite direction. To prevent this, most helicopters use an anti-torque system. The most common method is a vertical tail rotor located at the end of a tail boom. This small rotor pushes against the air to counteract the torque. 
Engineers have developed several different rotor configurations to solve these physics problems. While the single main rotor with a tail rotor is the most common, other types exist. Tandem rotor helicopters use two large rotors, one mounted behind the other. Coaxial rotors feature two rotors mounted one above the other on the same axis, spinning in opposite directions. Intermeshing rotors, or syncopters, use two rotors mounted at an angle so they can overlap without colliding.
The history of the helicopter is marked by several major breakthroughs. The Focke-Wulf Fw 61 was the first successful and fully controllable helicopter in 1936.
Powering these machines requires sophisticated engines and transmissions. Early attempts used rubber bands, spindles, or steam engines, but these lacked the power for human flight. The development of the internal combustion engine was a major turning point. Later, the introduction of the turboshaft engine in December 1951 revolutionized the industry. The Kaman K-225 was a pioneer in using this type of turbine engine. Turboshafts provide a high amount of power while remaining very light. 
The transmission is the mechanical heart that connects the engine to the rotors. It consists of gears, bearings, clutches, and shafts. The transmission must perform three vital tasks. First, it translates the alignment of the engine's drive shaft to match the rotor shafts. For example, it may turn a horizontal engine shaft into a vertical mast. Second, it reduces the high RPM of the engine to the much lower RPM required by the rotors. An engine might spin between 3,000 and 50,000 RPM, but a main rotor typically spins at only 300 to 600 RPM.
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