A diameter of 10 ⁇ 18 would make the electron about 1,000 times smaller than a proton. the size of an electron is not known for certain but scattering experiments indicate that electrons are smaller that 10 ⁇ 18 m, and some sources indicate that they may be point-like.the size of a proton is about 10 ⁇ 15 m.the size of the nucleus of a typical atom (such as sodium with 26 proton and 26 neutrons) is about 10 ⁇ 14 m or about ⁇ fraction (1/10,000) ⁇ the size of the atom. the size (distance across) of a typical atom is about 10 ⁇ 10 meter.When the term “electron” is used later in this specification, its meaning will be clear so long as the reader understands that the word has these two possible meanings. A positron has a mass equal to the mass of a negative electron and a charge opposite that of the negative electron but equal in magnitude. Another name for the negative electrons is “negatron”. Most of us are very familiar with negative electrons which orbit atomic nuclei. the word “electron” can be used to refer to only negative electrons or it can be used more generally to refer to either negative or positive electrons.scientists generally believe that substantially all of the hydrogen in the universe was created shortly after a “big bang” which occurred at the origin of the universe and that some helium was also created during this very early stage of the evolution of the universe by the fusion of hydrogen atoms.charge neutral atoms have a number of negative electrons surrounding the nucleus equal to the number of protons in the nucleus and that number determines to chemical properties of the atom.the nuclei of the H 2 and H 3 isotopes of hydrogen contain one and two neutrons respectively in addition to a single proton.G21K1/00- Arrangements for handling particles or ionising radiation, e.g.G21K- TECHNIQUES FOR HANDLING PARTICLES OR IONISING RADIATION NOT OTHERWISE PROVIDED FOR IRRADIATION DEVICES GAMMA RAY OR X-RAY MICROSCOPES.G21- NUCLEAR PHYSICS NUCLEAR ENGINEERING.Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.) Filing date Publication date Priority claimed from US10/161,823 external-priority patent/US20030103592A1/en Application filed by Individual filed Critical Individual Priority to US10/251,577 priority Critical patent/US20030053580A1/en Publication of US20030053580A1 publication Critical patent/US20030053580A1/en Priority to US10/655,817 priority patent/US20040059552A1/en Priority to US10/703,048 priority patent/US20040102939A1/en Priority to US11/108,938 priority patent/US20050182607A1/en Priority to US11/415,605 priority patent/US20060212280A1/en Priority to US12/455,989 priority patent/US20090254321A1/en Priority to US12/806,375 priority patent/US20110046928A1/en Status Abandoned legal-status Critical Current Links Original Assignee Individual Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.) Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.) Abandoned Application number US10/251,577 Inventor John Ross Current Assignee (The listed assignees may be inaccurate. Google Patents Process for modelling photons, protons, neutrons atoms and the universeĭownload PDF Info Publication number US20030053580A1 US20030053580A1 US10/251,577 US25157702A US2003053580A1 US 20030053580 A1 US20030053580 A1 US 20030053580A1 US 25157702 A US25157702 A US 25157702A US 2003053580 A1 US2003053580 A1 US 2003053580A1 Authority US United States Prior art keywords trons tron plus proton minus Prior art date Legal status (The legal status is an assumption and is not a legal conclusion. Google Patents US20030053580A1 - Process for modelling photons, protons, neutrons atoms and the universe US20030053580A1 - Process for modelling photons, protons, neutrons atoms and the universe
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