It takes extremely high temperatures, around 15 million degrees Celsius (27 million degrees Fahrenheit), for nuclear fusion to occur in the Sun. At these temperatures, hydrogen nuclei can overcome their electrostatic repulsion and collide with enough energy to fuse into helium, releasing vast amounts of energy in the process. This fusion is the primary source of the Sun's energy, powering its light and heat.
Not nuclear, it takes an extremely hight temperature for Fusion to occur with in the sun or any other star. ADDED: Yes "nuclear". Fusion is one of the two type of nuclear reaction, the other being Fission.
Nuclear fusion in the sun requires extremely high temperatures, typically around 15 million degrees Celsius (27 million degrees Fahrenheit). At these temperatures, hydrogen nuclei have enough kinetic energy to overcome their electrostatic repulsion and collide to form helium, releasing vast amounts of energy in the process. This energy is what powers the sun and provides light and heat to our solar system.
Nuclear fusion occurs inside the sun when temperatures reach around 15 million degrees Celsius (27 million degrees Fahrenheit). At these extreme temperatures, hydrogen nuclei have enough kinetic energy to overcome their electrostatic repulsion and collide with sufficient force to fuse together, forming helium and releasing a tremendous amount of energy in the process. This energy powers the sun and allows it to radiate light and heat into space.
Fusion takes place in the core, where the temperature and pressure are the highest.
Hydrogen fusion occurs in the core of the sun, where hydrogen atoms combine to form helium through a series of nuclear reactions. This process releases a huge amount of energy in the form of light and heat.
Nuclear fusion reactions require extremely high temperatures, typically in the range of 100 million to 150 million degrees Celsius, in order to overcome the electrostatic repulsion between positively charged atomic nuclei and allow them to fuse together. This extreme heat is needed to create the conditions necessary for the fusion process to occur and release energy.
Not nuclear, it takes an extremely hight temperature for Fusion to occur with in the sun or any other star. ADDED: Yes "nuclear". Fusion is one of the two type of nuclear reaction, the other being Fission.
None.
Nuclear fusion is the type of nuclear reaction that occurs in stars. Older stars with a collapsing center can exceed a temperature of one hundred million Kelvin.
No. It takes a combination of pressure and temperature to liquefy some gases. Hydrogen and helium were the last gases to be liquefied and that was with pressure and extremely low temperature.
The nuclear takes care of the nucleus .
The nuclear takes care of the nucleus .
Nuclear fusion in the sun requires extremely high temperatures, around 15 million degrees Celsius (27 million degrees Fahrenheit), to overcome the electrostatic repulsion between positively charged protons. At these temperatures, hydrogen nuclei gain enough kinetic energy to collide with sufficient force to fuse together, forming helium and releasing vast amounts of energy in the process. This energy is what powers the sun and produces the light and heat we experience on Earth.
No. You can not light a Bunsen Burner by turning on gas and oxygen. It takes a spark. (Actually, it takes a certain temperature to get the reaction started. The spark simply brings the material extremely near the spark up to that temperature.)
Fusion takes place in the core, where the temperature and pressure are much higher, which is necessary for fusion.
Actually room temperature nuclear fusion has been verified by reputable scientists, but it only works with muonic-hydrogen. This is hydrogen with its electron replaced by a muon, a particle identical to the electron except that it weighs 200 times as much. Because of the extra mass the muon orbits the proton much closer than the electron does. This allows muonic-hydrogen nuclei to collide and fuse at room temperature. However it takes far more energy to make the muons and replace them for the electrons than can be obtained from the fusion.
Yes, it has been proven and tested that cockroaches will survive. Their resistances to radiation are extremely high, and that's one of the reasons they survived when the dinosaurs didn't.