Showing posts with label kinetic energy. Show all posts
Showing posts with label kinetic energy. Show all posts

Friday, 5 August 2022

Fundamental Physics in Anaesthesia | Chapter 4 | New Trends in Physical Science Research Vol.7

 

 For a safe anaesthesia outcome, anesthesiologists oversee and manage the administration of several anaesthetic agents, including volatile liquids and gases, to the patient using various delivery methods. The behaviour of these gases and liquids might vary depending on the kind of atmosphere. Anesthesiologists should also have a thorough understanding of the physics involved with delivery or safety equipment. No gadget is fail-proof, and this understanding may be very helpful in resolving issues when a device fails. By avoiding the introduction of hypoxic gas in an emergency, this information can also save lives. Therefore, it is important to thoroughly study the physics of the various drugs utilised by anesthesiologists.

Author(s) Details:

Anshul Goyal,
Maulana Azad Medical College, New Delhi, India.

Lalit Gupta,
Maulana Azad Medical College, New Delhi, India.

Shikha Modi,
Maulana Azad Medical College, New Delhi, India.

Rohit Priyadarshi,
Jamia Milia Islamia, New Delhi, India.

Please see the link here: https://stm.bookpi.org/NTPSR-V7/article/view/7780

Wednesday, 23 June 2021

De Broglie’s Double-Particle Photon | Chapter 3 | Newest Updates in Physical Science Research Vol. 4

 The analysis of kinetic energy circulation within the energy structure of the doubleparticle photon that Louis de Broglie hypothesized in the early 1930s resulted in the establishment of an LC equation and a local fields equation describing permanently localized photons. Among other things,

 These equations give a mechanical explanation for the localized photon properties of self-propelling at the speed of light and self-guiding in a straight line when no external interaction tends to deflect its trajectory. From a trispatial geometry standpoint, this paper summarizes the seminal considerations that led to the establishment of mechanical conversion processes involving electromagnetic energy and mass from electromagnetic photon emission to nucleon construction.

Author (S) Details

André Michaud

Service de Recherche Pédagogique, Canada.

View Book  :- https://stm.bookpi.org/NUPSR-V4/article/view/1642

On Adiabatic Processes at the Subatomic Level | Chapter 2 | Newest Updates in Physical Science Research Vol. 4

 Analyses of adiabatic processes involving elementary electromagnetic particles at the subatomic level, as well as how these processes correlate with the principles of energy conservation, least action, stationary action, and entropy. The initial irreversible adiabatic acceleration sequence of newly created elementary electromagnetic particles, as well as its relationship to these principles, are examined. Exploration of the implications if the first initial adiabatic acceleration sequence is not subject to the conservation principle.


Author (s) Details

André Michaud
SRP Inc Educational Research Service Quebec, Canada.

View Book :- https://stm.bookpi.org/NUPSR-V4/article/view/1641

Tuesday, 8 June 2021

Doubly-charged Negative Ion of C60 Molecule | Chapter 10 | Newest Updates in Physical Science Research Vol. 5

 An electronic structure of the doubly-charged negative ion is depicted in the Dirac- and Lorentz-bubble potential models C60 A variational method was used to investigate it. The overall energy of the system is negative even in the first approximation of this method when a trial wave function of the two electrons is represented as a product of one-electron functions, indicating the existence of a stable state of the doubly-charged negative ion in these models. According to estimates, C60 second electron affinity is around ε2 ≈ 1 eV. This ion's photodetachment cross sections σ(ω) have also been determined. Near the threshold σ(ω), strange and intriguing behaviour is observed. Near the process threshold, the first cross section accompanied by the transition of the doubly-charged negative ion into a singly-charged one is exponentially small. The photodetachment of a singly-charged ion is represented by the second cross section, which increases as a power function of the photoelectron's kinetic energy near the threshold. The photodetachment cross sections of atomic ions with the same electron affinity are of the same order as these cross sections.

Author (s) Details

A. S. Baltenkov
Arifov Institute of Ion-Plasma and Laser Technologies Tashkent, 100125, Uzbekistan.

A. Z. Msezane
Center for Theoretical Studies of Physical Systems, Clark Atlanta University, Atlanta, Georgia 30314, USA.

View Book :- https://stm.bookpi.org/NUPSR-V5/article/view/1405