Metal bars go inside concrete. 

Concrete is very strong when you push on it. 

Concrete is a very strong material. It can hold a lot of weight when you push on it. This is called compression. But concrete is weak when you pull on it. This pulling force is called tension. To make concrete stronger, builders add metal bars. We call these bars rebar. 
Rebar is often made of carbon steel. The bars have ribs or bumps on them. These ribs help the bar grip the concrete. This prevents the metal from slipping out. 
Steel and concrete are a good pair. They expand and shrink at similar rates when the temperature changes. This means they do not fight each other. Sometimes, builders use other materials for rebar. They might use stainless steel or even bamboo. 
In places with salt water, rebar can rust. Rust takes up more space than steel. This can cause the concrete to crack or break. To stop this, some bars have a special coating. This coating is called epoxy. It acts like a shield against rust. 
Rebar is a very important tool used in building. It is short for reinforcement bar or reinforcing bar. Builders add these bars to concrete to make it much stronger. Concrete is great at handling compression, which is a pushing force. However, concrete has low tensile strength, meaning it is weak when pulled. Rebar acts as a tension device to help the concrete. 
How does rebar work inside a structure? The bars are placed inside the concrete before it sets. Most rebar has ribs or bumps on its surface. These small bumps help the bar grip the concrete tightly. This prevents the metal from slipping out under heavy loads. To keep them even safer, builders might bend the ends into hooks. This locks the bar into place within the solid concrete. 
People have used metal rods to strengthen buildings for a long time. Ancient Romans used iron or wooden rods to build arches. In the 14th century, builders used 2,500 meters of rebar at Château de Vincennes. Later, the Leaning Tower of Nevyansk in Russia used high-quality wrought iron. In the 1850s, several people began developing modern reinforced concrete. Joseph Monier was a French gardener who patented reinforced concrete flowerpots in 1867. 
Many different types of rebar exist for special jobs. Most common is carbon steel, which is often hot-rolled. Some bars are made of stainless steel to prevent rust. Other types use glass fiber, carbon fiber, or basalt fiber. In the United States, engineers use specific rules called ASTM standards. These rules, like ASTM A615, tell builders how the bars should look. These standards help make sure every building is safe and strong. 
Rebar is a perfect partner for concrete because they behave similarly. When the weather gets hot, both materials expand at nearly the same rate. This is called having a similar coefficient of thermal expansion. If they did not match, the changing temperatures would cause stress. In salty areas, rust can cause a problem called oxide jacking. This happens when rust grows and pushes against the concrete from inside. To stop this, builders use coatings like epoxy or zinc. 
Rebar, short for reinforcement bar or reinforcing bar, is a critical tension device used in construction. It is added to concrete to create reinforced concrete or reinforced masonry structures. This addition is necessary because of how concrete behaves under different forces. Concrete is exceptionally strong under compression, which is a pushing force. However, concrete has very low tensile strength, meaning it is weak when pulled or stretched. Rebar provides the tensile strength that concrete lacks, allowing structures to support heavy loads without snapping. 
To work effectively, rebar must stay firmly attached to the concrete. Most rebar features a continuous series of ribs, lugs, or indentations on its surface. These deformations create a mechanical bond that prevents the bar from slipping through the concrete. Even with these ribs, high stresses can sometimes pull a bar out. To prevent this, engineers often embed the rebar deeply into adjacent members, usually 40 to 60 times the bar's diameter. They may also bend or hook the ends of the bars to lock them into the concrete using its high compressive strength. 
Engineers categorize reinforcement into two main types: primary and secondary. Primary reinforcement is the steel used to ensure the entire structure can resist its intended design loads. Secondary reinforcement, also called distribution or thermal reinforcement, serves different purposes. It is used for durability and aesthetics by limiting cracks caused by shrinkage or temperature changes. In masonry, rebar can be placed horizontally in mortar joints or vertically in the voids of cement blocks. This process transforms standard masonry into reinforced masonry, which can carry much higher tensile loads. 
History shows that humans have used reinforcing rods for thousands of years. Ancient Romans used iron or wooden rods to strengthen their arches. In the 14th century, the Château de Vincennes utilized 2,500 meters of rebar. During the 18th century, the Leaning Tower of Nevyansk in Russia was built using high-quality wrought iron. These bars remain free of corrosion today. Modern reinforced concrete truly emerged in the mid-19th century. In 1854, Joseph-Louis Lambot built reinforced concrete boats in Paris. Later, in 1867, a French gardener named Joseph Monier patented reinforced concrete flowerpots, eventually moving on to build bridges and water tanks. 
Innovation in rebar design has often been met with debate. In the late 1800s, Ernest Ransome invented twisted iron rebar. While some critics thought twisting would weaken the metal, Ransome used it to build the Alvord Lake Bridge in San Francisco. This was the first reinforced concrete bridge in the United States. Around the same time, Julius Kahn patented a rolled diamond-shaped rebar in 1902. Kahn believed this system would act like a Warren truss to provide shear reinforcement. However, other engineers like C.A.P. Turner warned it could cause brittle failures. After some building collapses in 1906, the industry moved toward more standardized systems. 
Material science plays a huge role in how rebar performs over time. Carbon steel is the most common material, but it is susceptible to rusting. Steel and concrete are a perfect match because they have similar coefficients of thermal expansion. This means they expand and contract at nearly the same rate when temperatures change, preventing internal stress. However, if salt penetrates the concrete, rust can cause a problem called oxide jacking. Because rust occupies more volume than the original steel, it creates intense internal pressure. This pressure leads to cracking, spalling, and eventually structural failure. 
To fight corrosion, especially in saltwater environments, builders use specialized materials. They may use stainless steel, or bars coated in zinc or epoxy resin. While epoxy-coated bars were used in over 70,000 US bridge decks, they were being phased out by 2005 due to performance issues. Other alternatives include composite bars made of glass, carbon, or basalt fiber. While these are more expensive, they are used in specialty construction where specific performance is required. Today, US construction follows strict standards, such as ASTM A615, to ensure the ribs and spacing of the steel meet safety requirements. 
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