Difference between revisions of "Nuclear fusion"

From Conservapedia
Jump to navigation Jump to search
(Scrapped previous article, rewrote in a more professional manner and corrected previous inaccuracies. Feel free to expand.)
m (Formatting)
 
(6 intermediate revisions by 6 users not shown)
Line 1: Line 1:
−
In chemistry and physics, '''Nuclear fusion''' is the reaction by which two or more nuclei fuse together to form a heavier nucleus, albeit one that is lighter than the sum of the constituent nuclei. The missing mass is converted to energy as per the famous <math>E=\frac{m}{c^2}</math> formula.
+
'''Nuclear fusion''' is the process by which two or more nuclei fuse to make a larger nucleus.<ref>Wile, Dr. Jay L. ''Exploring Creation With Physical Science''. Apologia Educational Ministries, Inc. 1999, 2000</ref>  The successful fusion of two light (lighter than iron) nuclei releases large amounts of [[energy]], but to start the reactions large amounts of energy must be input to overcome the repulsive electrostatic forces. The energy is released from the mass in accordance with [[e=mc^2|E=mc<sup>2</sup>]]. To conserve energy, the mass of the products is less than the reactants.
  
−
The fusion of nuclei lighter than iron, which has the highest binding energy alongside nickel, releases more energy than was used to start the process, while fusion of post-iron elements requires more energy than is released.
+
In the center of most stars, hydrogen fuses together to form helium. Fusion in stars releases so much heat that the process alone keeps their mass from collapsing in on itself due to [[gravity]]. It is the reason that stars are so stable as well. If the core of a star starts to collapse, more fusion reactions occur and it expands again from the heat. If the core expands too far, less fusion reactions occur and it collapses back down. This can repeat until iron 56 is reached, at which point it becomes energetically unfavorable to continue. It requires [[energy]] to advance further rather than energy being released.
  
−
Fusion occurs naturally in stars, where the process is started by gravitational contraction and the resulting heating. Once a threshold is reached in mass (roughly {{convert|0.08|solar mass|kg|abbr=on}}), a proton-proton reaction starts, due to the core reaching temperatures in excess of ten million Kelvins, and quickly becomes self-sustaining due to gravitational confinement.
+
Scientists here on earth are trying to make nuclear fusion in the laboratory a useful energy source. One example is the European Toroidal Reactor near Cambridge in England. If successful fusion would supply a vast amount of clean energy, as the fuel would be derived from seawater and the by-product would be helium. Uncontrolled fusion causes thermonuclear explosions, which are used in the [[hydrogen bomb]].  
  
−
Nuclear fusion was first observed by Mark Oliphant in 1932, building on experiments in nuclear transmutation by Ernest Rutherford. Currently, nuclear fusion is under research as an alternative energy source, with leading experiments in Europe.
+
==See also ==
−
 
 
−
 
 
−
==See Also ==
 
 
[[Nuclear fission]]
 
[[Nuclear fission]]
  
 
==References==
 
==References==
 
<references/>
 
<references/>
 +
*[http://apod.nasa.gov/apod/lib/glossary.html#fusion APOD Glossary]
  
−
[[category:physics]]
+
[[Category:Physics]]

Latest revision as of 14:38, September 7, 2016

Nuclear fusion is the process by which two or more nuclei fuse to make a larger nucleus.[1] The successful fusion of two light (lighter than iron) nuclei releases large amounts of energy, but to start the reactions large amounts of energy must be input to overcome the repulsive electrostatic forces. The energy is released from the mass in accordance with E=mc2. To conserve energy, the mass of the products is less than the reactants.

In the center of most stars, hydrogen fuses together to form helium. Fusion in stars releases so much heat that the process alone keeps their mass from collapsing in on itself due to gravity. It is the reason that stars are so stable as well. If the core of a star starts to collapse, more fusion reactions occur and it expands again from the heat. If the core expands too far, less fusion reactions occur and it collapses back down. This can repeat until iron 56 is reached, at which point it becomes energetically unfavorable to continue. It requires energy to advance further rather than energy being released.

Scientists here on earth are trying to make nuclear fusion in the laboratory a useful energy source. One example is the European Toroidal Reactor near Cambridge in England. If successful fusion would supply a vast amount of clean energy, as the fuel would be derived from seawater and the by-product would be helium. Uncontrolled fusion causes thermonuclear explosions, which are used in the hydrogen bomb.

See also

Nuclear fission

References

  1. ↑ Wile, Dr. Jay L. Exploring Creation With Physical Science. Apologia Educational Ministries, Inc. 1999, 2000