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Q.Explain the principle and working of a nuclear reactor with the help of a labelled diagram. If one microgram of 235/92 U is completely destroyed in an atom bomb, how much energy will be released?

Telangana TsbieTelangana Board of Intermediate Education 2025Subjective· 8mImportance★★★★★
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Figure — Labelled schematic of a nuclear reactor
Figure — Labelled schematic of a nuclear reactor

A nuclear reactor controls a self-sustaining fission chain reaction using fuel, moderator, control rods and coolant to release nuclear energy steadily; using E = mc², complete destruction of 1 microgram of U-235 releases 9 × 10⁷ J.

Principle of a nuclear reactor

A nuclear reactor works on the principle of a controlled, self-sustained nuclear fission chain reaction. In fission, a heavy nucleus (like 92235U^{235}_{92}\text{U}) captures a slow (thermal) neutron and splits into two lighter nuclei, releasing 2-3 fast neutrons and a large amount of energy (~200 MeV per fission). If, on average, exactly one of the neutrons released goes on to cause another fission (multiplication factor k=1k=1), the reaction becomes self-sustaining but controlled, releasing energy at a steady, safe rate - if k>1k>1 the reaction would grow uncontrollably (as in a bomb), if k<1k<1 it would die out.

Working (main parts of a reactor):

  1. Fuel: Fissile material such as enriched Uranium-235 or Plutonium-239, formed into rods.
  2. Moderator: A material (heavy water, graphite, or ordinary water) surrounding the fuel rods. Fission releases fast neutrons, which are much less likely to cause further fission; the moderator slows ("thermalises") these fast neutrons through repeated collisions, increasing the probability of causing further fission.
  3. Control rods: Rods of neutron-absorbing material (cadmium or boron), inserted between the fuel rods. By inserting or withdrawing them, operators absorb a controllable fraction of the neutrons, precisely maintaining the multiplication factor at k=1k=1 for a steady reaction rate (or shutting the reactor down by fully inserting them).
  4. Coolant: A fluid (water, heavy water, or liquid sodium) circulated through the reactor core to carry away the heat generated by fission. This heat is used to convert water to high-pressure steam in a heat exchanger.
  5. Steam turbine and generator: The steam drives a turbine coupled to an electric generator, converting the nuclear energy into electrical energy - just like in a conventional thermal power station, except the "furnace" is the reactor core.
  6. Shielding: Thick concrete and lead shielding surrounds the reactor to absorb escaping radiation and protect personnel. …

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