Propeller | SKYbrary Aviation Safety (2024)

Airscrew

Description

An aircraft propeller is an aerodynamic device which converts rotational energy into propulsive force creating thrust which is approximately perpendicular to its plane of rotation. The rotational energy can be produced by a piston or gas turbine engine or, in limited applications, by an electric motor. A propeller can be attached directly to the crankshaft of a piston engine, as is the case in many light aircraft, or it might be powered through a reduction gear box (RGB) attached to a piston or jet engine. In this case, the RGB converts the high rotation speed of the engine to one that is more appropriate for propeller operation. Propellers have two or more blades spaced evenly around the hub and are available in fixed pitch or in variable pitch configurations. More sophisticated propeller designs include those of the constant speed, contra-rotating and counter-rotating types.

Propeller Design

The cross section of a propeller is similar to that of a low drag wing and is subject to the same aerodynamic issues such as angle of attack, stall, drag and transonic air flow. There is a twist along the length of a propeller blade because the blade speed is much higher at the tip than it is at the root. The twist is necessary to maintain a more or less constant angle of attack along the length of the blade. Like a wing, propeller performance is degraded when it is not at its optimum angle of attack. To overcome this deficiency, many propellers use a variable pitch mechanism to adjust the blade pitch angle as the engine speed and aircraft velocity change.

Propeller design considerations include the number and shape of the blades but compromises are required. As an example, increasing the aspect ratio of the blade will reduce drag. However, as the amount of thrust that is produced by a propeller is proportional to the blade area, increasing the aspect ratio means that either longer blades or more blades are required to maintain equivalent thrust. Longer blades will approach transonic tip speed at a lower RPM than shorter ones and increasing the number of blades also results in an increase in the blade to blade interference effects.

The performance of a propeller diminishes greatly as the blade nears transonic speed. The relative airspeed at any point on a propeller is a vector sum of the tangential rotational speed of the propeller and the aircraft speed. As a result, the propeller blade tip will reach transonic speed well before the aircraft. At the critical speed, shock waves result in a significant increase in both drag and noise. Swept back, scimitar shaped propellers are used in some installations to increase the critical propeller speed and to reduce shock wave formation.

Propeller | SKYbrary Aviation Safety (1)

RCAF C130J six-bladed turboprop engines

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Propeller | SKYbrary Aviation Safety (2024)

FAQs

What are the 4 propeller effects? ›

The propeller creates the thrust that makes our airplanes what they are, but it also creates four unwanted effects that must be recognized.
  • Torque. To a physicist, torque is a turning force about an axis. ...
  • Spiraling slipstream. ...
  • P-factor. ...
  • Gyroscopic precession.
Oct 5, 2014

What should be done before working on or around a propeller? ›

First and foremost, you should approach every propeller with the mindset that the Magnetos are HOT and the Ignition is ON. Never assume that this is not the case. Be aware that any movement of the propeller could cause the engine to start or to kick back with considerable force. Propeller Arc.

What is the propeller P-factor? ›

A tendency for an aircraft to yaw to the left due to the descending propeller blade on the right producing more thrust than the ascending blade on the left. This occurs when the aircraft's longitudinal axis is in a climbing attitude in relation to the relative wind.

How can propeller accidents be avoided? ›

Most propeller accidents can be prevented if operators follow a few simple safety practices. Turn off the engine when passengers are boarding or disembarking. Propellers should not be spinning when a passenger is in a vulnerable situation. Prevent passengers from being thrown overboard accidentally.

What are the hazardous propeller effects? ›

(1) The following are regarded as hazardous propeller effects: (i) The development of excessive drag. (ii) A significant thrust in the opposite direction to that commanded by the pilot. (iii) The release of the propeller or any major portion of the propeller.

What equipment is most important in protecting propeller strike injuries? ›

The most important piece of safety equipment for preventing propeller strike injuries is the ignition safety switch or engine cut-off switch. This switch shuts off the engine if the operator is thrown overboard or moves too far from the helm.

What is the best way to protect people from propeller strikes? ›

Fortunately, propeller strikes can be prevented. Wear your engine cut-off switch lanyard and your life jacket at all times. If the lanyard is removed from the switch, the engine will shut off. Assign a passenger to keep watch around your boat's propeller area when people are in the water.

What are the clearance rules for propellers? ›

There must be a clearance of at least seven inches (for each airplane with nose wheel landing gear) or nine inches (for each airplane with tail wheel landing gear) between each propeller and the ground with the landing gear statically deflected and in the level takeoff, or taxiing attitude, whichever is most critical.

Why do propeller planes pull to the left? ›

As the tail comes up, a force is applied to the top of the propeller. And since the propeller is spinning clockwise, that force is felt 90 degrees to the right. That forward-moving force, on the right side of the propeller, creates a yawing motion to the left.

Why do planes turn left after takeoff? ›

Aircraft usually turn after takeoff for several reasons, one is to follow a departure procedure, turning to avoid obstacles (buildings, mountains) or they can simply be turning in the direction of their destination.

What can damage a propeller? ›

One common cause of propeller damage is striking underwater objects, such as rocks, logs, or debris. This type of damage can range from small chips or scratches to major cracks or breaks, and can significantly affect the propeller's ability to function properly.

What precautions should be taken with a constant speed propeller? ›

The best precaution when operating an engine with a constant-speed propeller is to avoid high manifold pressure settings with low RPM to minimize the risk of engine damage.

What are the problems with propellers? ›

Difficulties you may be having with your propeller:
  • Propeller Induced Vibration: ...
  • Tip Erosion: ...
  • Propeller Cavitation: ...
  • Singing Propeller: ...
  • Propeller induced engine overload: ...
  • Propeller not loading the engine: ...
  • Propellers not synchronized: ...
  • Reversing problems:

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