Log in Sign up
Back to Discover
💻

Ultracentrifuge

technology Maturity 11-13

This machine spins very fast.

Beckman-Coulter ultracentrifuge XL-100K -01.jpg
Beckman-Coulter ultracentrifuge XL-100K -01.jpg
It spins things in small tubes. The fast spin helps us see tiny parts. It helps us learn about life. It is very cool! Do you like fast things?

38 words

This machine spins very, very fast.

Beckman-Coulter ultracentrifuge XL-100K -01.jpg
Beckman-Coulter ultracentrifuge XL-100K -01.jpg
It uses a spinning part called a rotor. The rotor can hold many small tubes. These tubes hold tiny samples. The fast spin helps separate the tiny parts.
Beckman model e hm50tr96s.tiff
Beckman model e hm50tr96s.tiff
Some rotors hold tubes at an angle. Other rotors let tubes swing on hinges. This helps the tiny parts move. Scientists use these machines to study life. It is a very powerful tool!

75 words

An ultracentrifuge is a machine that spins very fast.

Beckman-Coulter ultracentrifuge XL-100K -01.jpg
Beckman-Coulter ultracentrifuge XL-100K -01.jpg
It spins a part called a rotor. This rotor can spin at very high speeds.

Scientists use these machines to study tiny things. They use them to study parts of cells. They also use them to study viruses. There are two main kinds of these machines. One kind is called a preparative ultracentrifuge. This kind is used as a workhorse in labs. The other kind is the analytical ultracentrifuge.

Different rotors help in different ways. Some rotors hold tubes on hinges. These are called swinging bucket rotors. Other rotors hold tubes at a set angle. These are fixed angle rotors. Some rotors hold a large amount of a sample. These are zonal rotors.

Spinning fast can be dangerous. The rotor has a lot of power while it spins. If a rotor breaks, it can explode. To stay safe, scientists use strong metals. They use aluminum or titanium. Some new rotors use carbon fiber. This material is very light. It also does not rust easily.

Beckman model e hm50tr96s.tiff
Beckman model e hm50tr96s.tiff

181 words

An ultracentrifuge is a special machine designed for spinning very fast. It spins a part called a rotor at incredibly high speeds. These machines are vital for science. They help experts study molecular biology and biochemistry. They also help people study polymer science. There are two main types of these machines. One type is the preparative ultracentrifuge. The other type is the analytical ultracentrifuge.

Beckman-Coulter ultracentrifuge XL-100K -01.jpg
Beckman-Coulter ultracentrifuge XL-100K -01.jpg

This machine works by using speed to separate tiny things. A rotor holds the samples inside tubes or cavities. When the rotor spins, it creates a strong force. This force pulls different parts of a sample to different spots. Scientists often use a gradient to help this process. A gradient is a liquid that gets thicker from top to bottom. You might use sucrose or caesium salts for this. These liquids help separate things like viruses or cell parts. The rotor then stops and the parts are pumped out.

Beckman model e hm50tr96s.tiff
Beckman model e hm50tr96s.tiff

People have been building these machines for a long time. Theodor Svedberg built an early version in 1924. His machine could spin at 12,000 rpm. He later built a better one in 1925 or 1926. That new machine could reach 42,000 rpm. Svedberg won a Nobel Prize in Chemistry in 1926. He won it for his work with proteins. Later, Émile Henriot used compressed air to spin a top. This helped people reach even higher speeds.

In 1935, Edward Greydon Pickels solved a big problem. His rotors used to get too hot from friction. He used a vacuum to keep the system cool. This vacuum also helped keep the temperature steady. In 1946, Pickels helped start a company called Spinco. They made many machines for laboratories. In 1949, Spinco made the Model L. It was the first preparative model to reach 40,000 rpm. Beckman Instruments bought the company in 1954.

Using these machines requires great care because they are powerful. The spinning rotor holds a huge amount of energy. If a rotor breaks, it can explode. Scientists use strong metals like aluminum or titanium for rotors. These metals help them stay safe during use. Some new rotors use carbon fiber composite material. This material is 60% lighter than metal. It also does not rust or corrode easily. This helps the machine work better and last longer.

387 words

An ultracentrifuge is a highly specialized machine designed to spin a component called a rotor at extremely high speeds. These instruments are essential tools in several scientific fields. They are used extensively in molecular biology, biochemistry, and polymer science. By spinning samples very quickly, they generate massive amounts of acceleration. This force allows scientists to separate the tiniest components of a substance.

Beckman-Coulter ultracentrifuge XL-100K -01.jpg
Beckman-Coulter ultracentrifuge XL-100K -01.jpg

To understand how they work, we must look at the process of sedimentation. A rotor holds the samples, which are usually placed inside small tubes or central cavities. As the rotor spins, it creates a powerful force that acts on the particles within the sample. This force pulls different parts of the sample toward different locations based on their properties. Scientists often use a gradient to assist this separation. A gradient is a solution that increases in density from the top to the bottom of the tube. For example, sucrose gradients are used to separate cellular organelles. Scientists also use gradients of caesium salts to separate nucleic acids. Once the spinning is complete, the rotor stops smoothly. The separated components are then gently pumped out of the tubes for study.

There are two primary classes of ultracentrifuges used in laboratories today. The first is the preparative ultracentrifuge. These are often called "workhorses" in biomedical labs because they are used to collect specific parts of a cell. They are used for pelleting fine particulate fractions like ribosomes, microsomes, or viruses. The second class is the analytical ultracentrifuge. These are used to observe the properties of the samples while they are spinning.

Beckman model e hm50tr96s.tiff
Beckman model e hm50tr96s.tiff

Different types of rotors are used depending on the specific needs of an experiment. Swinging bucket rotors feature tubes that hang on hinges. As the rotor accelerates, these tubes reorient themselves to a horizontal position. Fixed angle rotors are different because they are carved from a single block of material. These rotors hold tubes in cavities that are bored at a set, predetermined angle. There are also zonal rotors, which are designed to hold a large volume of sample in one central cavity. Some of these special rotors allow for dynamic loading and unloading while the rotor is still spinning at high speeds.

The history of this technology is marked by several major breakthroughs. In 1924, Theodor Svedberg built a centrifuge that could reach 12,000 rpm. This machine generated 7,000 g of acceleration. Between 1925 and 1926, Svedberg built a new version that reached 42,000 rpm. This allowed for fields as high as 100,000 g. Because of his research on proteins and colloids using this tool, Svedberg won the Nobel Prize in Chemistry in 1926. In the early 1930s, Émile Henriot developed a design using jets of compressed air to spin a bearingless top. This principle was later adapted by Jesse Beams at the University of Virginia.

Early high-speed machines faced a major problem with overheating. Jesse Beams found that his rotors consistently grew too hot during use. In 1935, his student Edward Greydon Pickels solved this by vacuumizing the system. This vacuum reduced the friction that was generated at high speeds. The vacuum also helped maintain a constant temperature across the sample. This was important because it stopped convection currents from interfering with the results. In 1946, Pickels cofounded Spinco to market these machines. In 1949, Spinco released the Model L, the first preparative ultracentrifuge to reach 40,000 rpm. Beckman Instruments eventually purchased the company in 1954.

Operating an ultracentrifuge requires extreme caution due to the physics involved. The spinning rotor possesses tremendous rotational kinetic energy. If a rotor suffers a catastrophic failure, it can explode spectacularly. To prevent this, rotors are traditionally made from high-strength metals like titanium or aluminum. However, chemicals and routine use can cause these metals to deteriorate or corrode over time. Modern science has introduced carbon fiber composite rotors to address these risks. These new rotors are up to 60% lighter than metal versions. This lighter weight allows for faster rates of acceleration and deceleration. They are also resistant to corrosion, which helps prevent rotor failure.

682 words
🖼️ Images & Media (2)
File:Beckman-Coulter ultracentrifuge XL-100K -01.jpg
Beckman-Coulter ultracentrifuge XL-100K -01.jpg
Beckman model e hm50tr96s.tiff
Up Next
💻
Centrifuge
Technology
More to explore

What is Nepedia?

A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.