Robots are smart machines. 
Robots are smart machines. 

Parts of a robot help it work. Wheels help it roll. 
Robots use a brain made of code. This helps them decide what to do. They can follow a person's lead.
Robots help us in many ways. They can work in space. They can also help in a house.
Building robots is a big job. It is a great way to help people.
Robotics is the study of how to design and build robots. 
First, they need a power source. This can be a battery or wired electricity. 

Third, they need a control system. This uses electrical circuits to run the machine. Fourth, they need software. Software is a set of instructions. It helps the robot decide how to act. A robot can use artificial intelligence, or AI, to make choices. 
Robots help humans in many ways. They can work in space or in medicine. Some robots can even fly like birds. They can climb walls like a gecko. 
Robotics is the study of how to design and build machines called robots. 

To make a robot work, designers use four main parts. First, they need a power source to give the robot energy. This might be a battery or even solar power from the sun. 

Scientists have found many ways to make robots move. These moving parts are called actuators, which act like robot muscles. 

People have been building amazing robots for many years. In the 1980s, Marc Raibert worked at the MIT Leg Laboratory. He showed that a robot with one leg could stay upright by hopping. This is a lot like how a person uses a pogo stick. Later, robots were built that could run or even do somersaults. NASA has also sent robots into space, like the InSight lander. 

Robots can move in ways that look very much like living things. Some robots use wheels to travel across the ground quickly. Others use many legs to walk on bumpy paths. 

Robotics is an interdisciplinary field focused on the design, construction, operation, and use of robots. 

To function, a robot requires four essential design components working together. The first is a power source to provide energy. This can be wired electricity, petrol, or a battery. 

The third component is the control system, which uses electrical circuits to govern movement. These circuits utilize components like diodes and transistors to read sensors and manage motors. 
Movement in robots is driven by actuators, which act as artificial muscles by converting energy into motion. Most portable robots use electric motors, specifically brushed or brushless DC motors. Industrial robots often use AC motors for heavier rotational tasks. In contrast, linear actuators move in a straight line and are common in factory settings. These are often powered by electricity via a leadscrew or by compressed air. 
Researchers are also developing biomimetic materials to mimic biological muscles. Pneumatic artificial muscles, or air muscles, are tubes that expand up to 42% when filled with air. Shape memory alloys, called muscle wire, contract by less than 5% when electricity is applied. Even more advanced are electroactive polymers. These plastics can contract by as much as 380% and help humanoid robots move their faces or arms. 
Locomotion, or how a robot moves, varies greatly based on its environment. Some robots use a single wheel to balance, like the Ballbot from Carnegie Mellon University. Others use two wheels and a gyroscope to maintain balance through inverted pendulum dynamics. Many mobile robots use four or six wheels, or even continuous tracks for better grip on off-road terrain. Walking robots present a greater challenge. Some, like Honda's ASIMO, use the Zero Moment Point (ZMP) algorithm. This algorithm balances gravity and acceleration forces to prevent the robot from rotating or falling. 
History shows that walking robots have become increasingly dynamic over time. In the 1980s, Marc Raibert at the MIT Leg Laboratory demonstrated robots that could stay upright by hopping. This movement was similar to a person using a pogo stick. Later, researchers developed robots that could trot, run, or even perform somersaults. Modern approaches, such as passive dynamics, use the momentum of swinging limbs to walk. This method might be ten times more efficient than older algorithms. 
Robotics also extends into the air and onto vertical surfaces. Biomimetic flying robots (BFRs) take inspiration from birds, bats, or insects. Some use flapping wings to generate lift, which can be more efficient than propellers. 

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