9798316179763 (3 résultats)
Edité par Amazon Digital Services LLC - Kdp, 2025
Vendeur : PBShop.store US, Wood Dale, IL, Etats-UnisPBShop.store US
Contacter le vendeurVendeur avec une évaluation de 5 étoilesEtat: Neuf
EUR 13,67
Frais de port gratuitsExpédition nationale : Etats-UnisQuantité disponible : Plus de 20 disponibles
PAP. Etat : New. New Book. Shipped from UK. Established seller since 2000.
Edité par Amazon Digital Services LLC - Kdp, 2025
Vendeur : PBShop.store UK, Fairford, GLOS, Royaume-UniPBShop.store UK
Contacter le vendeurVendeur avec une évaluation de 5 étoilesEtat: Neuf
EUR 13,57
EUR 3,84 expéditionExpédition depuis Royaume-Uni vers Etats-UnisQuantité disponible : Plus de 20 disponibles
PAP. Etat : New. New Book. Shipped from UK. Established seller since 2000.
Edité par Independently Published, 2025
- Couverture souple
- impression à la demande
Vendeur : CitiRetail, Stevenage, Royaume-UniCitiRetail
Contacter le vendeurVendeur avec une évaluation de 5 étoilesEtat: Neuf
EUR 16,83
EUR 43,22 expéditionExpédition depuis Royaume-Uni vers Etats-UnisQuantité disponible : 1 disponible(s)
Paperback. Etat : new. Paperback. The formation of the universe represents a profound chapter in the narrative of existence, offering insights that extend far beyond mere cosmic origins. Beginning with the Big Bang, approximately 13.8 billion years ago, the universe emerged from an infinitesimally small point, undergoing rapid e…xpansion and cooling. This initial event set the stage for the formation of fundamental particles, which eventually coalesced into atoms, primarily hydrogen and helium. The subsequent era of recombination allowed these atoms to form the first neutral hydrogen clouds, leading to the emergence of the first stars and galaxies. Understanding this process is essential for astrobiologists as it provides the foundational context for the chemical elements necessary for life. As stars formed and evolved, they became the crucibles for nucleosynthesis, creating heavier elements through fusion processes. These elements were then released into space when stars exploded as supernovae, enriching the interstellar medium with the building blocks of planets and, ultimately, life. The distribution of these elements across galaxies led to the formation of solar systems, including our own. The chemical complexity that arises from this stellar lifecycle is critical for astrobiology, as it not only shapes planetary atmospheres but also influences the potential for habitability on various celestial bodies. The formation of our own solar system provides a microcosm of these processes. The accretion of dust and gas in the protoplanetary disk around the young Sun resulted in the formation of planets, moons, and other celestial bodies. Water, likely delivered by icy comets and asteroids, played a pivotal role in creating environments conducive to life. The unique positioning of Earth within the habitable zone, where temperatures allow for liquid water, underscores the delicate balance required for life to thrive. Understanding these conditions aids in the search for similar environments on exoplanets and moons, as astrobiologists look for signs of habitability beyond our own planet. In addition to examining the physical formation of celestial bodies, the universe's evolution involves understanding cosmic phenomena that may impact the potential for life. Space weather, including solar flares and cosmic rays, can have significant effects on planetary atmospheres and surface conditions. For instance, the presence of a magnetic field can protect a planet's atmosphere from being stripped away, which is critical for maintaining conditions suitable for life. Comparative planetology allows scientists to assess how various planetary environments respond to such phenomena, offering insights into the resilience and adaptability of life in diverse conditions. Finally, the implications of the universe's formation extend into the philosophical realm, particularly in the context of extraterrestrial life. The vastness of the universe, with its billions of galaxies and potentially habitable planets, raises profound questions about our place in the cosmos. The potential discovery of microbial life on Mars or technosignatures from advanced civilizations would not only reshape our understanding of life itself but also challenge our perceptions of existence. By integrating findings from astrophysics, chemistry, and planetary science, we can begin to grasp the interconnectedness of cosmic events and the emergence of life, reinforcing the notion that the universe is a dynamic tapestry of processes that continue to evolve and inspire inquiry. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.
