Science and a Christian World View A Christian View
... Since we see a large number of galaxies in all directions, and these are all moving away from us are we at the center of the universe (a very special place)? A fundamental assumption in the study of cosmology is that we are not located in a unique region within the universe – this is the “Copernican ...
... Since we see a large number of galaxies in all directions, and these are all moving away from us are we at the center of the universe (a very special place)? A fundamental assumption in the study of cosmology is that we are not located in a unique region within the universe – this is the “Copernican ...
Cosmic Times - Klenk Astronomy
... • Albert Einstein’s Theory of Relativity and Law of Gravitation was confirmed when the light from stars was bent around the sun • Einstein’s model also predicted that the universe is either expanding or contracting • He didn’t like this so he added a universal (or cosmological ...
... • Albert Einstein’s Theory of Relativity and Law of Gravitation was confirmed when the light from stars was bent around the sun • Einstein’s model also predicted that the universe is either expanding or contracting • He didn’t like this so he added a universal (or cosmological ...
Big Bang and Steady State Theories
... red-shift and CMBR give supporting evidence for the Big Bang theory, e.g. light was seen to be shifted towards a longer wavelength. This means that the galaxies are moving away from each other so the Universe must be expanding. This is evidence for the Big Bang theory. Cosmic Background Radiation co ...
... red-shift and CMBR give supporting evidence for the Big Bang theory, e.g. light was seen to be shifted towards a longer wavelength. This means that the galaxies are moving away from each other so the Universe must be expanding. This is evidence for the Big Bang theory. Cosmic Background Radiation co ...
How Do Astronomers Gather Information About
... How Do Astronomers Gather Information About Space? Most of the information we have about the universe comes from ____________. Objects in the universe, such as _____________________, emit radiation. This radiation travels in the form of ____________. Different kinds of radiation have differing _____ ...
... How Do Astronomers Gather Information About Space? Most of the information we have about the universe comes from ____________. Objects in the universe, such as _____________________, emit radiation. This radiation travels in the form of ____________. Different kinds of radiation have differing _____ ...
Theories
... THE BIG BANG THEORY The most commonly accepted theory today of the formation of the universe is the Big Bang Theory. The theory states that the universe originated sometime between 10 billion and 20 billion years ago from an enormous explosion of a small volume of matter at extremely high density a ...
... THE BIG BANG THEORY The most commonly accepted theory today of the formation of the universe is the Big Bang Theory. The theory states that the universe originated sometime between 10 billion and 20 billion years ago from an enormous explosion of a small volume of matter at extremely high density a ...
What is the dark matter?
... me, I’ll know it… Cryogenic Dark Matter Search detector element in deep freeze (0.1 K), ½-mile underground in Soudan, MN This experiment has not seen WIMPS yet, but has placed the best current limits on their properties if they exist. See Technology Review May/June 2009! ...
... me, I’ll know it… Cryogenic Dark Matter Search detector element in deep freeze (0.1 K), ½-mile underground in Soudan, MN This experiment has not seen WIMPS yet, but has placed the best current limits on their properties if they exist. See Technology Review May/June 2009! ...
PDF - Current Science
... in truth pictures of our distant past. Accelerated expansion in our knowledge of cosmology was made in the last 20 years or so thanks to COBE, WMAP and more recently the Planck satellite, which are all technological marvels of imaginative designs that have provided incredibly precise pictures of the ...
... in truth pictures of our distant past. Accelerated expansion in our knowledge of cosmology was made in the last 20 years or so thanks to COBE, WMAP and more recently the Planck satellite, which are all technological marvels of imaginative designs that have provided incredibly precise pictures of the ...
Where is the rest of the universe?
... Where is the rest of the Universe? If we can only “see” 4.9% of the universe, where is the other 95%? Dark matter Dark matter does not give off observable energy in any EM wavelength, but can be detected by watching the behavior of space objects. A few examples are: • The stars in the outer reaches ...
... Where is the rest of the Universe? If we can only “see” 4.9% of the universe, where is the other 95%? Dark matter Dark matter does not give off observable energy in any EM wavelength, but can be detected by watching the behavior of space objects. A few examples are: • The stars in the outer reaches ...
slides - CAASTRO
... 1.282 seconds ago › We see the Sun from 8 minutes ago › We see the centre of our Galaxy from 27,200 years ago ...
... 1.282 seconds ago › We see the Sun from 8 minutes ago › We see the centre of our Galaxy from 27,200 years ago ...
Unit 3 - Section 9.7 Stellar Spectra, Dark Matter0
... OR combined with protons to make deuterium (an isotope of hydrogen). As it continued to cool, the Universe eventually reached the temperature where electrons combined with nuclei to form neutral atoms….and so it began Is this possible? Well in 1929, Edwin Hubble taught us the Universe is expanding. ...
... OR combined with protons to make deuterium (an isotope of hydrogen). As it continued to cool, the Universe eventually reached the temperature where electrons combined with nuclei to form neutral atoms….and so it began Is this possible? Well in 1929, Edwin Hubble taught us the Universe is expanding. ...
Word
... (may) dominates the mass in the Universe lead to different predictions for the strength of the density fluctuations on different scales. These predictions can in principle be tested and the current "bestbet" (though I wouldn't put money on it) is known as Cold Dark Matter. We can now begin to test ...
... (may) dominates the mass in the Universe lead to different predictions for the strength of the density fluctuations on different scales. These predictions can in principle be tested and the current "bestbet" (though I wouldn't put money on it) is known as Cold Dark Matter. We can now begin to test ...
Inflation and the cosmological constant problem
... Only this model of inflation can explain why the observable part of the universe is so homogeneous, but from it also follows exponentially many have bigger φ0. that on a much larger scale the universe is extremely inhomogeneous. Moreover, realistic models of elementary particles consider many kinds ...
... Only this model of inflation can explain why the observable part of the universe is so homogeneous, but from it also follows exponentially many have bigger φ0. that on a much larger scale the universe is extremely inhomogeneous. Moreover, realistic models of elementary particles consider many kinds ...
Word
... Arno Penzias and Robert Wilson discovered the cosmic microwave background radiation. It is understood as the cooled-down relic of hot radiation which once filled the Universe. The Cosmic Background Explorer satellite launched in 1989 very accurately mapped out the microwave background radiation. The ...
... Arno Penzias and Robert Wilson discovered the cosmic microwave background radiation. It is understood as the cooled-down relic of hot radiation which once filled the Universe. The Cosmic Background Explorer satellite launched in 1989 very accurately mapped out the microwave background radiation. The ...
Post-class version
... we give it a name anyway: dark energy. Dark energy is a property of space itself, even in vacuum. If we assume the dark energy has certain properties, then it has the equivalent of enough mass to bring the average density of the universe up to the critical value. (Remember ...
... we give it a name anyway: dark energy. Dark energy is a property of space itself, even in vacuum. If we assume the dark energy has certain properties, then it has the equivalent of enough mass to bring the average density of the universe up to the critical value. (Remember ...
The Expanding Universe
... The universe started with a sudden appearance of energy which consequently became matter and is now everything around us. There were two theories regarding the universe The Steady State Universe: where the universe had always been and would always continue to be in ...
... The universe started with a sudden appearance of energy which consequently became matter and is now everything around us. There were two theories regarding the universe The Steady State Universe: where the universe had always been and would always continue to be in ...
transparencies - Rencontres de Moriond
... Galactic Centre at GHz and Optical Frequencies • A two element interferometer is being designed jointly by Birmingham and Jodrell Bank ...
... Galactic Centre at GHz and Optical Frequencies • A two element interferometer is being designed jointly by Birmingham and Jodrell Bank ...
Lecture 24 Early Universe - University of Maryland
... – There should be no object in the Universe that is older than 14 Gyr. – This agrees with what’s seen! – This was a big problem with old cosmological models that didn’t include dark energy: • e.g age of the universe in M =1, k =0, =0 model is 9 billion years • But there are globular star cluster ...
... – There should be no object in the Universe that is older than 14 Gyr. – This agrees with what’s seen! – This was a big problem with old cosmological models that didn’t include dark energy: • e.g age of the universe in M =1, k =0, =0 model is 9 billion years • But there are globular star cluster ...
Theory of the Infinite Universe
... composition of the massive star is converted into helium. The nucleosynthesis, or fusion of lighter elements into heavier ones, continues to produce other elements moving up the periodic table until it ...
... composition of the massive star is converted into helium. The nucleosynthesis, or fusion of lighter elements into heavier ones, continues to produce other elements moving up the periodic table until it ...
What could it be?: the nature of dark matter
... -studying the surface of spots (thermal fluctuations) in «photons», comparing to distance they travelled when they escaped and their initial surface (conclusion of Boomerang : Balloon observation of millimetric extragalactic radiation and geophysics, 1998)… if ever you want to know more… ...
... -studying the surface of spots (thermal fluctuations) in «photons», comparing to distance they travelled when they escaped and their initial surface (conclusion of Boomerang : Balloon observation of millimetric extragalactic radiation and geophysics, 1998)… if ever you want to know more… ...
Nucleosynthesis in the Early Universe.
... From the way galaxies rotate we also have evidence that there is a large amount of matter we cannot see--Dark Matter. This raises the value of to 0.2 or so.This value has a large uncertainty but it is remarkable that it is so close to a Flat Universe. Problem:-There is nothing in the model to sugg ...
... From the way galaxies rotate we also have evidence that there is a large amount of matter we cannot see--Dark Matter. This raises the value of to 0.2 or so.This value has a large uncertainty but it is remarkable that it is so close to a Flat Universe. Problem:-There is nothing in the model to sugg ...
Cardassian Expansion - University of Michigan
... Light elements are made: Helium, Deterium, Lithium are made three minutes after the Big Bang Getting the right abundances of these elements implies a universe that is made of only 4% ordinary atoms! Heavy elements are made much later, in stars ...
... Light elements are made: Helium, Deterium, Lithium are made three minutes after the Big Bang Getting the right abundances of these elements implies a universe that is made of only 4% ordinary atoms! Heavy elements are made much later, in stars ...
AST101_lect_25
... Olber’s Paradox Suppose the universe is infinite • In whatever direction you look, you will see a star • The brightness of an individual star falls by the inverse square law: I ~ d-2 • The number of stars increases as d2 The night sky should be as bright as the surface of the Sun! ...
... Olber’s Paradox Suppose the universe is infinite • In whatever direction you look, you will see a star • The brightness of an individual star falls by the inverse square law: I ~ d-2 • The number of stars increases as d2 The night sky should be as bright as the surface of the Sun! ...
Cosmic microwave background
The cosmic microwave background (CMB) is the thermal radiation left over from the time of recombination in Big Bang cosmology. In older literature, the CMB is also variously known as cosmic microwave background radiation (CMBR) or ""relic radiation."" The CMB is a cosmic background radiation that is fundamental to observational cosmology because it is the oldest light in the universe, dating to the epoch of recombination. With a traditional optical telescope, the space between stars and galaxies (the background) is completely dark. However, a sufficiently sensitive radio telescope shows a faint background glow, almost exactly the same in all directions, that is not associated with any star, galaxy, or other object. This glow is strongest in the microwave region of the radio spectrum. The accidental discovery of CMB in 1964 by American radio astronomers Arno Penzias and Robert Wilson was the culmination of work initiated in the 1940s, and earned the discoverers the 1978 Nobel Prize.The CMB is a snapshot of the oldest light in our Universe, imprinted on the sky when the Universe was just 380,000 years old. It shows tiny temperature fluctuations that correspond to regions of slightly different densities, representing the seeds of all future structure: the stars and galaxies of today.The CMB is well explained as radiation left over from an early stage in the development of the universe, and its discovery is considered a landmark test of the Big Bang model of the universe. When the universe was young, before the formation of stars and planets, it was denser, much hotter, and filled with a uniform glow from a white-hot fog of hydrogen plasma. As the universe expanded, both the plasma and the radiation filling it grew cooler. When the universe cooled enough, protons and electrons combined to form neutral atoms. These atoms could no longer absorb the thermal radiation, and so the universe became transparent instead of being an opaque fog. Cosmologists refer to the time period when neutral atoms first formed as the recombination epoch, and the event shortly afterwards when photons started to travel freely through space rather than constantly being scattered by electrons and protons in plasma is referred to as photon decoupling. The photons that existed at the time of photon decoupling have been propagating ever since, though growing fainter and less energetic, since the expansion of space causes their wavelength to increase over time (and wavelength is inversely proportional to energy according to Planck's relation). This is the source of the alternative term relic radiation. The surface of last scattering refers to the set of points in space at the right distance from us so that we are now receiving photons originally emitted from those points at the time of photon decoupling.Precise measurements of the CMB are critical to cosmology, since any proposed model of the universe must explain this radiation. The CMB has a thermal black body spectrum at a temperature of 7000272548000000000♠2.72548±0.00057 K. The spectral radiance dEν/dν peaks at 160.2 GHz, in the microwave range of frequencies. (Alternatively if spectral radiance is defined as dEλ/dλ then the peak wavelength is 1.063 mm.) The glow is very nearly uniform in all directions, but the tiny residual variations show a very specific pattern, the same as that expected of a fairly uniformly distributed hot gas that has expanded to the current size of the universe. In particular, the spectral radiance at different angles of observation in the sky contains small anisotropies, or irregularities, which vary with the size of the region examined. They have been measured in detail, and match what would be expected if small thermal variations, generated by quantum fluctuations of matter in a very tiny space, had expanded to the size of the observable universe we see today. This is a very active field of study, with scientists seeking both better data (for example, the Planck spacecraft) and better interpretations of the initial conditions of expansion. Although many different processes might produce the general form of a black body spectrum, no model other than the Big Bang has yet explained the fluctuations. As a result, most cosmologists consider the Big Bang model of the universe to be the best explanation for the CMB.The high degree of uniformity throughout the observable universe and its faint but measured anisotropy lend strong support for the Big Bang model in general and the ΛCDM (""Lambda Cold Dark Matter"") model in particular. Moreover, the fluctuations are coherent on angular scales that are larger than the apparent cosmological horizon at recombination. Either such coherence is acausally fine-tuned, or cosmic inflation occurred.