The Alpha Sequence: Electromagnetic Origin of the Strong and Weak Nuclear Forces

★★★★★ 4.5 25 reviews

$46.56
Price when purchased online
Free shipping Free 30-day returns

Sold and shipped by conocii.com
We aim to show you accurate product information. Manufacturers, suppliers and others provide what you see here.
$46.56
Price when purchased online
Free shipping Free 30-day returns

How do you want your item?
You get 30 days free! Choose a plan at checkout.
Shipping
Arrives Jun 29
Free
Pickup
Check nearby
Delivery
Not available

Sold and shipped by conocii.com
Free 30-day returns Details

Product details

Management number 231888980 Release Date 2026/06/18 List Price $18.62 Model Number 231888980
Category

This book is centered on a surprising Tevatron and LHC experimental result, the accurate equality of gauge boson and top quark energy Ew + Ez = Et. The ramifications of this unanticipated result extend down to the lower energies, and lead to two new elementary particle paradigms. The first is the use of energies E rather than masses m for analysing particle excitation patterns, where E =mc2. The second is the recognition that ground-state particle energies are generated in the form of quantized energy packets that are produced in 'α-boost' energy excitations, where α-1 ~137 is the fine structure constant. Repeated α-boosts form a 'reservoir' of energy packets, which merge and reproduce the quantized energies of the various particle and quark ground-state configurations. An α-generated energy excitation path extends upward from the electron to the top quark t. The steps in this path, which contain two α-boosts, combine coherently to give the energy equation Eelectron x 18/α2 = Et, which is accurate to 0.3%. A branching energy path reproduces the energy of the bottom quark b to 0.1%.Particle energies and lifetimes are conjugate quantities, and the α-quantized particle energies are reflected in α-quantized particle mean lifetimes, as revealed by lifetime plots on a logarithmic α-spaced grid. The accurate factor-of-137 spacings between the classical electron radius, Compton radius, and Bohr orbit radius suggest introducing both a radial and a mass dependence into α, which leads to an equation for the transformation of Coulomb energy into electron non-electromagnetic mass. The electron spin and magnetic moment are reproduced by a Compton-sized relativistically spinning sphere (RSS). The anomalous electron magnetic moment is also accounted for by the RSS, in response to Richard Feynman's 1961 Challenge to provide such an explanation. The mathematics used here is straightforward, and the calculations are guided by fits to the elementary particle RPP energy and lifetime data bases, which are provided here in Appendices A and B.Contents:PrefaceThe Mysterious Fine Structure Constant α ~ 1/137The Experimental α-Quantization of Lepton, Quark and Particle Mean LifetimesThe Experimental α-Quantization of Elementary Particle Energies and Masses, Where E = mc2The Relativistically Spinning Sphere (RSS), Magnetic Size, and Magnetic Self-Energy of the ElectronThe Answer to Feynman's ChallengeFinal Editorial NotesAcknowledgments by Eleanor Mac GregorPostscript: A Profile of an Unconventional Thinker in PhysicsAppendices:Review of Particles (2018) LifetimeParticle Energy DatabaseMagnetic Moment Values of u, d, s Constituent-Quark EnergiesIndexReadership: Graduate students, academics, researchers, and all readers interested in Particle Physics. Read more

ASIN B0B753D3KQ
XRay Not Enabled
ISBN13 978-9811252341
Language English
File size 9.3 MB
Page Flip Enabled
Publisher World Scientific Publishing Company
Word Wise Not Enabled
Print length 155 pages
Accessibility Learn more
Publication date June 8, 2022
Enhanced typesetting Enabled

Correction of product information

If you notice any omissions or errors in the product information on this page, please use the correction request form below.

Correction Request Form

Customer ratings & reviews

4.5 out of 5
★★★★★
25 ratings | 10 reviews
How item rating is calculated
View all reviews
5 stars
83% (21)
4 stars
4% (1)
3 stars
2% (1)
2 stars
1% (0)
1 star
10% (3)
Sort by

There are currently no written reviews for this product.