Kanaris Tsinganos: A Century of Cosmic Discoveries, Gebunden
A Century of Cosmic Discoveries
- Heliophysics and Space Physics, Astrophysics and Cosmology
(soweit verfügbar beim Lieferanten)
- Verlag:
- Springer, 07/2026
- Einband:
- Gebunden
- Sprache:
- Englisch
- ISBN-13:
- 9783032062819
- Artikelnummer:
- 12407285
- Umfang:
- 704 Seiten
- Gewicht:
- 1335 g
- Maße:
- 241 x 160 mm
- Stärke:
- 41 mm
- Erscheinungstermin:
- 3.7.2026
- Serie:
- Springer Praxis Books
- Hinweis
-
Achtung: Artikel ist nicht in deutscher Sprache!
Klappentext
This extended volume (in total 700+ pages, 124 b / w illustrations, 338 in colour) starts with an interesting Foreword entitled The Nature of beings and the Reasons of beings by the Rev. Dr. Nikolaos Chatzinikolaou Metropolitan of Mesogaia and Lavreotiki, a physics trained theologian and philosopher whom the author met while he was doing his postgraduate studies in the Department of Astronomy at Harvard University.
The Prologue briefly mentions the discoveries of some pioneering classical astronomers, who left their indelible marks on the evolution of early astronomy: Aristarchos of Samos (310--230 BC), the systematic proposer of the heliocentric system, the so-called Copernicus of antiquity, Eratosthenes of Cyrene (276--194 BC), who measured with admirable accuracy the circumference of the Earth and Hipparchos of Rhodes (190--120 BC), the prince of observational astronomers of antiquity, a classical astronomer. It also briefly mentions some other early mathematicians, astronomers and cosmic thinkers depicted in the well known fresco by Raphael, the School of Athens, painted between 1509 and 1511, at the Stanze di Raffaello in the Apostolic Palace in the Vatican City.
An extended Table provides a brief chronology of a selection of key astronomical discoveries, from the early 20th century, e. g., from Hale's discovery of magnetic fields in sunspots (1908) to the recent Proba-3 formation flying observations of the solar corona, (2026), including 20 Astrophysics-related Nobel prizes in physics.
Chapter 1, entitled The amazingly variable and active Sun, is extensive (144 pages) unfolding more than a century of great discoveries which led to the present understanding of our life-giving star, the Rosetta Stone of Astrophysics. Actually, this chapter's preface starts with what Gene Parker once said: "If it were not for its variable magnetic field, the Sun would have been a rather uninteresting star.." and, "out of the trillions of stars in our own Milky Way galaxy and those in the other trillions of galaxies -- in total about 10² stars - it is only our Sun that is resolved in great detail and also affects our technology in space via space weather and our lives here on Earth.". The periodical appearance of sunspots and solar cycle 1 (1755-1766) and the strongest solar flare ever recorded (1869) have been among the oldest indicators of solar activity, while recently we have observed unlucky exoplanets around wild flare stars. Actually, the closest known exoplanet to Earth orbits Proxima Centauri, a notorious red dwarf flare star, which was blasted by a massive superflare that increased the star's brightness by 1, 000 times in just 10 seconds, threatening the planet's atmosphere. The same year (1869) marks the emergence of Space Weather with solar effects on power grids and expensive blackouts, solar effects on satellites and navigation, communications & GPS, as well as effects of the Solar--Terrestrial interaction and solar variability on Earth's climate. The first discovery of strong magnetic fields in the Sun and of their dominant role in sunspots and the solar atmosphere was made by Hale (1908). The rise of magnetic flux tubes from the solar interior in the solar photosphere has been shown to be similar to the rise of air bubbles in an aquarium, or a swimming pool (1980). In 1961 the first theory of the solar dynamo was proposed and in 1962 Helioseismology allowed us to listen to the music and thus decipher the secrets of the solar interior, which led in 1980 to the discovery of the (invisible) internal rotation of the Sun, while since 2002 we similarly observe pulsations in other stars via asteroseismology. In 1968 the famous solar neutrino problem was realized and was eventually solved in 1999 (Physics Nobel prizes 2002, 2015). In 1970-1971 coronal mass ejections (elevating from the Sun the mass of a mountain range) and cor