Thursday, March 10, 2011

NASA's Fermi Catches Thunderstorms Hurling Antimatter into Space

How thunderstorms launch particle beams into space

Scientists using NASA's Fermi Gamma-ray Space Telescope have detected beams of antimatter produced above thunderstorms on Earth, a phenomenon never seen before.

Scientists think the antimatter particles were formed in a terrestrial gamma-ray flash (TGF), a brief burst produced inside thunderstorms and shown to be associated with lightning. It is estimated that about 500 TGFs occur daily worldwide, but most go undetected.

"These signals are the first direct evidence that thunderstorms make antimatter particle beams," said Michael Briggs, a member of Fermi's Gamma-ray Burst Monitor (GBM) team at the University of Alabama in Huntsville (UAH). He presented the findings Monday, during a news briefing at the American Astronomical Society meeting in Seattle.
See:NASA's Fermi Catches Thunderstorms Hurling Antimatter into Space

Wednesday, March 09, 2011

ICECUBE

 For me, the idea of a backdrop measure, as if Thomas Young experimentally fires his photon gun, the collision points at the LHC provide dimensional references(flight paths) to events that are measured  by comparison of LHC too,  muon detection facilitations as if,  Cosmic Rays collisions in faster then light medium of ice, resulting in ICECUBE data. Cerenkov. Muon detection scenarios are useful tools to speeds through earth and matters for  consideration anyway. Think of Volcano here or looking through pyramids.

That's the plan anyway right?
 
“IceCube: An instrument for neutrino astronomy,” by Francis Halzen and Spencer R. Klein
IceCube completed, University of Wisconsin press release
Ice Cube completed, Berkeley Lab press release
IceCube website

Are There Extra Dimensions of Space?

Are there Extra Dimensions of Space?

A QGP is formed at the collision point of two relativistically accelerated gold ions in the center of the STAR detector at the relativistic heavy ion collider at the Brookhaven national laboratory.

Some of these issues in relation to the LHC are what I tried to explain to Searosa.


Brookhaven National Laboratory

HOT A computer rendition of 4-trillion-degree Celsius quark-gluon plasma created in a demonstration of what scientists suspect shaped cosmic history.

Here's what has to be considered. There is a calculated energy value to the collision process. You add that up as all the constituents of that process, and what's left is,  so much energy left to be discerned as particulate expressions as beyond that collision point. This may not be truly an accurate portrayal yet it is one that allows perspective to consider the spaces at such microscopic levels for consideration.

The perspective of valuations with regard to the LHC is whether or not there is sufficient energy within the confines of LHC experiments in which to satisfy the questions about extra those dimensions. It seems the parameters of those decisions seem to be sufficient?


Author(s)
Alex Buche-University of Western Ontario / Perimeter Institute

Robert Myers-Perimeter Institute
Aninda Sinha-Perimeter Institute

 

It is believed that in the first few microseconds after the Big Bang, our universe was dominated by a strongly interacting phase of nuclear matter at extreme temperatures. An impressive experimental program at the Brookhaven National Laboratory on Long Island has been studying the properties of this nuclear plasma with some rather surprising results. We outline how there may be a deep connection between extra-dimensional gravity of String Theory and the fundamental theories of subatomic particles can solve the mystery of the near-ideal fluid properties of the strongly coupled nuclear plasma.

The QGP has directed attention to a method of expression with regard to that collision point.


First direct observation of jet quenching.

 

At the recent seminar, the LHC’s dedicated heavy-ion experiment, ALICE, confirmed that QGP behaves like an ideal liquid, a phenomenon earlier observed at the US Brookhaven Laboratory’s RHIC facility. This question was indeed one of the main points of this first phase of data analysis, which also included the analysis of secondary particles produced in the lead-lead collisions. ALICE's results already rule out many of the existing theoretical models describing the physics of heavy-ions.

See: 2010 ion run: completed!


The equations of string theory specify the arrangement of the manifold configuration, along with their associated branes (green) and lines of force known as flux lines (orange). The physics that is observed in the three large dimensions depends on the size and the structure of the manifold: how many doughnut-like "handles" it has, the length and circumference of each handle, the number and locations of its branes, and the number of flux lines wrapped around each doughnut.

Early on looking at spaces, it was a struggle for me to understand how extra dimensions would be explained. It was easy using a coordinated frame of reference as x,y,z, yet,  how much did you have to go toward seeing that rotation around each of those arrows of direction would add greater depth of perception about such spaces?

It's easier if you just draw the picture.

A section of the quintic Calabi–Yau three-fold (3D projection)

In superstring theory the extra dimensions of spacetime are sometimes conjectured to take the form of a 6-dimensional Calabi–Yau manifold, which led to the idea of mirror symmetry.

 

The benefit of phenomenological approaches in experimental processes to attempt to answer these theoretical points of views.

 

The first results on supersymmetry from the Large Hadron Collider (LHC) have been analysed by physicists and some are suggesting that the theory may be in trouble. Data from proton collisions in both the Compact Muon Solenoid (CMS) and ATLAS experiments have shown no evidence for supersymmetric particles – or sparticles – that are predicted by this extension to the Standard Model of particle physics. Will the LHC find supersymmetry Kate McAlpine ?


Thank you Tommaso Dorigo

 

Also see:

 

Beautiful theory collides with smashing particle data."

Implications of Initial LHC Searches for Supersymmetry"

More SUSY limits"

Saturday, March 05, 2011

Novum Organum

The frontispiece of Novum Organum by Francis Bacon



The Novum Organum is a philosophical work by Francis Bacon published in 1620. The title translates as "new instrument". This is a reference to Aristotle's work Organon, which was his treatise on logic and syllogism. In Novum Organum, Bacon details a new system of logic he believes to be superior to the old ways of syllogism. This is now known as the Baconian method.

For Bacon, finding the essence of a thing was a simple process of reduction, and the use of inductive reasoning. In finding the cause of a phenomenal nature such as heat, one must list all of the situations where heat is found. Then another list should be drawn up, listing situations that are similar to those of the first list except for the lack of heat. A third table lists situations where heat can vary. The form nature, or cause, of heat must be that which is common to all instances in the first table, is lacking from all instances of the second table and varies by degree in instances of the third table.

The title page of Novum Organum depicts a galleon passing between the mythical Pillars of Hercules that stand either side of the Strait of Gibraltar, marking the exit from the well-charted waters of the Mediterranean into the Atlantic Ocean. The Pillars, as the boundary of the Mediterranean, have been smashed through opening a new world to exploration. Bacon hopes that empirical investigation will, similarly, smash the old scientific ideas and lead to greater understanding of the world and heavens.

The Latin tag across the bottom is taken from the Book of Daniel 12:4. It means: "Many will travel and knowledge will be increased".

Contents

Bacon and the Scientific Method

Many argue that Bacon's work was instrumental in the historical development of the scientific method. Association of Bacon's name and the modern conception of the scientific method is, however, to be treated with caution. No where in Novum Organum does Bacon even use the word "method" to describe his prescription for the exercise of natural philosophy.[1] That being said, it is undeniable that his technique bears a resemblance to the modern formulation of the scientific method in the sense that it is centered on experimental research. Bacon's emphasis on the use of artificial experiments to provide additional observances of a phenomena can often support the conclusion that Bacon's process and the scientific method are one, but Bacon himself should not be considered "the Father of the Experimental Philosophy (such expressions are egregiously outmoded)..." [1]

Preface

Bacon begins the work with a rejection of pure a priori deduction for the uses of discovering truth in natural philosophy. Of his philosophy, he states:

"Now my plan is as easy to describe as it is difficult to effect. For it is to establish degrees of certainty, take care of the sense by a kind of reduction, but to reject for the most part the work of the mind that follows upon sense; in fact I mean to open up and lay down a new and certain pathway from the perceptions of the senses themselves to the mind."

The emphasis on beginning with observation pervades the entire work. In fact, it is in the concept that the natural philosophy must begin from the senses that we find a revolutionary quality of Bacon’s philosophy, and its consequent philosophical method, eliminative induction, is one of Bacon's most lasting contributions to science and philosophy.

Instauratio Magna

Novum organum was actually published as part of a much larger work, Instauratio magna. Originally intending Instauratio magna to contain six parts (of which Novum organum constituted the second), Bacon did not come close to completing his metawork, as parts V and VI were never written at all. Novum organum, written in Latin and consisting of two books of aphorisms, was included in the volume that Bacon published in 1620; however, it was also unfinished, as Bacon promised several additions to its content which ultimately remained unprinted.

Book I

(Bacon titled this first book Aphorisms Concerning the Interpretation of Nature, and the Kingdom of Man)

In the first book of aphorisms, Bacon criticizes the current state of natural philosophy. The object of his assault consists largely in the syllogism, a method that he believes to be completely inadequate in comparison to what Bacon calls “true Induction:”

“The syllogism is made up of propositions, propositions of words, and words are markers of notions. Thus if the notions themselves (and this is the heart of the matter) are confused, and recklessly abstracted from things, nothing built on them is sound. The only hope therefore lies in true Induction.” (aph. 14)
In many of his aphorisms, Bacon reiterates the importance of inductive reasoning. Induction, methodologically opposed to deduction, entails beginning with particular cases observed by the senses and then attempting to discover the general axioms from those observations. In other words, induction presupposes nothing. Deduction, on the other hand, begins with general axioms, or first principles, by which the truth of particular cases is extrapolated. Bacon emphasizes the strength of the gradual process that is inherent in induction:
“There are and can only be two ways of investigating and discovering truth. The one rushes up from the sense and particulars to axioms of the highest generality and, from these principles and their indubitable truth, goes on to infer and discover middle axioms; and this is the way in current use. The other way draws axioms from the sense and particulars by climbing steadily and by degrees so that it reaches the ones of highest generality last of all; and this is the true but still untrodden way.” (aph. 19)

After many similar aphoristic reiterations of these important concepts, Bacon presents his famous Idols.

The Idols

Novum organum, as suggested by its name, is focused just as much on a rejection of received doctrine as it is on a forward-looking progression. In Bacon's Idols are found his most critical examination of man-made impediments which mislead the mind's objective reasoning. They appear in previous works but were never fully fleshed out until their formulation in Novum organum:
Idols of the Tribe

“Idols of the Tribe are rooted in human nature itself and in the very tribe or race of men. For people falsely claim that human sense is the measure of things, whereas in fact all perceptions of sense and mind are built to the scale of man and not the universe.” (aph. 41)

Bacon includes in this the idol the predilection of the human imagination to presuppose otherwise unsubstantiated regularities in nature. An example might be the common historical astronomical assumption that planets move in perfect circles.

Idols of the Cave

“Idols of the Cave belong to the particular individual. For everyone has (besides vagaries of human nature in general) his own special cave or den which scatters and discolours the light of nature. Now this comes either of his own unique and singular nature; or his education and association with others, or the books he reads and the several authorities of those whom he cultivates and admires, or the difference impressions as they meet in the soul, be the soul possessed and prejudiced, or steady and setteled, or the like; so that the human spirit (as it is allotted to particular individuals) is evidently a variable thing, all muddled, and so to speak a creature of chance...” (aph. 42)

This idol stems from the particular life experiences of the individual. Variable educations can lead the individual to a preference for specific concepts or methods, which then corrupt their subsequent philosophies. Bacon himself gives the example of Aristotle, “who made his natural philosophy a mere slave to his logic.” (Aph. 54)

Idols of the Market

“There are also Idols, derived as if from the mutual agreement and association of the human race, which I call Idols of the Market on account of men's commerce and partnerships. For men associate through conversation, but words are applied according to the capacity of ordinary people. Therefore shoddy and inept application of words lays siege to the intellect in wondrous ways.” (aph. 43)

Bacon considered these “the greatest nuisances of the lot” (aph. 59). Because humans reason through the use of words, they are particularly dangerous because the received definitions of words, which are often falsely derived, can cause confusion. He outlines two subsets of this kind of idol and provides examples (aph 60).

First, there are those words which spring from fallacious theories, such as the element of fire or the concept of a first mover. These are easy to dismantle because their inadequacy can be traced back to the fault of their derivation in a faulty theory. Second, there are those words that are the result of imprecise abstraction. Earth, for example, is a vague term that may include many different substances the commonality of which is questionable. These are terms are often used elliptically, or from a lack of information or definition of the term.

Idols of the Theatre

“Lastly, there are the Idols which have misguided into men's souls from the dogmas of the philosophers and misguided laws of demonstration as well; I call these Idols of the Theatre, for in my eyes the philsophies received and discovered are so many stories made up and acted out stories which have created sham worlds worth of the stage.” (aph. 44)

These idols manifest in the unwise acceptance of certain philosophical dogmas, namely Aristotle's sophistical natural philosophy (aph. 63) which was corrupt by his passion for logic, and Plato's superstitious philosophy, which relied too heavily on theological principles.

Book II

After enumerating the shortcomings of the current and past natural philosophies, Bacon can now present his own philosophy and methods. Bacon retains the Aristotelian causes, but redefines them in interesting ways. While traditionally the final cause was held as most important among the four ( material, formal, efficient, and final), Bacon claims that it is the least helpful and in some cases actually detrimental to the sciences(aph. 2). For Bacon, it is the formal cause which is both the most illusive and most valuable, although each of the causes provides certain practical devices. By forms and formal causes, Bacon means the universal laws of nature. To these Bacon attaches an almost occult like power:

“But he who knows forms grasps the unity of nature beneath the surface of materials which are very unlike. Thus is he able to identify and bring about things that have never been done before, things of the kind which neither the vicissitudes of nature, nor hard experimenting, nor pure accident could ever have actualised, or human thought dreamed of. And thus from the discovery of the forms flows true speculation and unrestricted operation” (aph. 3).

In this second book, Bacon offers an example of the process that of what he calls true induction. In this example, Bacon attempts to grasp the form of heat.

The first step he takes is the surveying of all known instances where the nature of heat appears to exist. To this compilation of observational data Bacon gives the name Table of Essence and Presence. The next table, the Table of Absence in Proximity, is essentially the opposite—a compilation of all the instances in which the nature of heat is not present. Because these are so numerous, Bacon enumerates only the most relevant cases. Lastly, Bacon attempts to categorize the instances of the nature of heat into various degrees of intensity in his Table of Degrees. The aim of this final table is to eliminate certain instances of heat which might be said to be the form of heat, and thus get closer to an approximation of the true form of heat. Such elimination occurs through comparison. For example, the observation that both a fire and boiling water are instances of heat allows us to exclude light as the true form of heat, because light is present in the case of the fire but not in the case of the boiling water. Through this comparative analysis, Bacon intends to eventually extrapolate the true from of heat, although it is clear that such a goal is only gradually approachable by degrees. Indeed, the hypothesis that is derived from this eliminative induction, which Bacon names The First Vintage, is only the starting point from which additional empirical evidence and experimental analysis can refine our conception of a formal cause.

The "Baconian method" does not end at the First Vintage. Bacon described numerous classes of Instances with Special Powers, cases in which the phenomena one is attempting to explain is particularly relevant. These instances, of which Bacon describes 27 in Novum Organum, aid and accelerate the process of induction. They are “labour-saving devices or shortcuts intended to accelerate or make more rigorous the search for forms by providing logical reinforcement to induction.” [1]

Aside from the First Vintage and the Instances with Special Powers, Bacon enumerates additional "aids to the intellect" which presumably are the next steps in his "method." In Aphorism 21 of Book II, Bacon lays out the subsequent series of steps in proper induction: including Supports to Induction, Rectification of Induction, Varying the Inquiry according to the Nature of the Subject, Natures with Special Powers, Ends of Inquiry, Bringing Things down to Practice, Preparatives to Inquiry, and Ascending and Descending Scale of Axioms. These additional aids, however, were never explained beyond their initial limited appearance in Novum Organum. It is likely that Bacon intended them to be included in later parts of Instauratio magna and simply never got to writing about them.

As mentioned above, this second book of Novum organum was far from complete and indeed was only a small part of a massive, also unfinished work, the Instauratio magna.

Bacon and Descartes

Bacon is often studied through a comparison to his contemporary RenĂ© Descartes. Both thinkers were, in a sense, some of the first to question the philosophical authority of the ancient Greeks. Bacon and Descartes both believed that a critique of preexisting natural philosophy was necessary, but their respective critiques proposed radically different approaches to natural philosophy. While “one was rational and theoretical in approach and was headed by Rene Descartes; the other was practical and empirical and was led by Francis Bacon.” [2] They were both profoundly concerned with the extent to which human’s can come to knowledge, and yet their methods of doing so projected diverging paths.

On the one hand, Descartes’ begins with a doubt of anything which cannot be known with absolute certainty and includes in this realm of doubt the impressions of sense perception, and thus, “all sciences of corporal things, such as physics and astronomy." [2] He thus attempts to provide a metaphysical principle (this becomes the Cogito) which cannot be doubted, on which further truths must be deduced. In this method of deduction, the philosopher begins by examining the most general axioms (such as the Cogito), and then proceeds to determine the truth about particulars from an understanding of those general axioms.
Conversely, Bacon endorsed the opposite method of Induction, in which the particulars are first examined, and only then is there a gradual ascent to the most general axioms. While Descartes doubts the ability of the senses to provide us with accurate information, Bacon doubts the ability of the mind to deduce truths by itself as it is subjected to so many intellectual obfuscations, Bacon's “Idols.” In his first aphorism of New organum, Bacon states:

“Man, the servant and interpreter of nature, does and understands only as much as he has observed, by fact or mental activity, concerning the order of nature; beyond that he has neither knowledge nor power.” (aph. 1)

So, in a basic sense the central difference between the philosophical methods of Descartes and those of Bacon can be reduced to an argument between deductive and inductive reasoning and whether to trust or doubt the senses. However, there is another profound difference between the two thinkers' positions on the accessibility of Truth. Descartes was obsessed with absolute Truth—indeed it seems to be the object of his aims. It is slightly ambiguous whether Bacon believed such a Truth can be achieved. In his opening remarks, he proposes “to establish progressive stages of certainty.” For Bacon, a measure of truth was its power to allow predictions of natural phenomena (although Bacon's forms come close to what we might call "Truth," because they are universal, immutable laws of nature).

Original Contributions

An interesting characteristic of Bacon's apparently scientific tract was that, although he amassed an overwhelming body of empirical data, he did not make any original discoveries. Indeed, that was never his intention, and such an evaluation of Bacon's legacy may wrongfully lead to an unjust comparison with Newton. Bacon never claimed to have brilliantly revealed new unshakable truths about nature—in fact, he believed that such an endeavor is not the work of single minds but that of whole generations by gradual degrees toward reliable knowledge.[1]

In many ways, Bacon's contribution to the advancement of human knowledge lies not in the fruit of his scientific research but in the reinterpretation of the methods of natural philosophy. His undeniable innovation is best encapsulated in The Oxford Francis Bacon:

“Before Bacon where else does one find a meticulously articulated view of natural philosophy as an enterprise of instruments and experiment, and enterprise designed to restrain discursive reason and make good the defects of the senses? Where else in the literature before Bacon does one come across a stripped-down natural-historical programme of such enormous scope and scrupulous precision, and designed to serve as the basis for a complete reconstruction of human knowledge which would generate new, vastly productive sciences through a form o eliminative induction supported by various other procedures including deduction? Where else does one find a concept of scientific research which implies an institutional framework of such proportions that it required generations of permanent state funding to sustain it? And all this accompanied by a thorough, searching, and devastating attack on ancient and not-so-ancient philosophies, and by a provisional natural philosophy anticipating the results of the new philosophy?”[1]

External links

References

  1. ^ a b c d e Rees, Graham and Maria Wakely The Instauratio magna Part II: Novum organum and Associated Texts. Oxford: Clarendon, 2004. Print
  2. ^ a b Cantor, Norman F., and Peter L. Klein. Seventeenth-Century Rationalsim: Bacon and Descartes. Massachusetts: Blaisdell, 1969. Print
***


In center, while Plato - with the philosophy of the ideas and theoretical models, he indicates the sky, Aristotle - considered the father of Science, with the philosophy of the forms and the observation of the nature indicates the Earth. Many historians of the Art in the face correspondence of Plato with Leonardo, Heraclitus with Miguel Angel, and Euclides with Twine agree.

See Also:

Inside Out

Thursday, February 24, 2011

Shape as Memory : A Geometric Theory of Architecture

I have yet to read the book.

What came to mind as I was looking at this has to do with the landscape of ideas.

It has to do with what is lying in those valleys. This may supply some understanding of how something can evolve from symmetry, as an expression of asymmetry geometrical objects. Pebbles on the side of mountains. So the idea then is that the memory is a form of geometrical expression of the energy. The object itself contains the information.

How do buildings store information and experience in their shape and form? Michael Leyton has attracted considerable attention with his interpretation of geometrical form as a medium for the storage of information and memory. In this publication he draws specific conclusions for the field of architecture and construction, attaching fundamental importance to the complex relationship between symmetry and asymmetry.


LIST OF CONTENT


1. Geometry and Memory 8
1.1 Introduction 8
1.2 Conventional Geometry: Euclid to Einstein 8
1.3 Special and General Relativity 10
1.4 New Foundations to Geometry 12
1.5 The Memory Roles of Symmetry and Asymmetry 15
1.6 Basic Procedure for Recovering the Past 18
1.7 Architecture 21

2. A Process-Grammar for Shape 24
2.1 Curvature as Memory Storage 24
2.2 General Symmetry Axes 25
2.3 Symmetry-Curvature Duality 26
2.4 The Interaction Principle 27
2.5 Undoing Curvature Variation 28
2.6 Extensive Application 29
2.7 A Grammatical Decomposition of the Asymmetry Principle 31
2.8 Process-Grammar and Asymmetry Principle 35
2.9 Scientific Applications of the Process-Grammar 36
2.10 Artistic Applications of the Process-Grammar 40
2.11 Architectural Applications of the Process-Grammar 41

3. Architecture as Maximal Memory Storage 54
3.1 Introduction 54
3.2 The Two Fundamental Principles 54
3.3 Groups 55
3.4 Generating a Shape by Transfer 56
3.5 Fiber and Control 58
3.6 Projection as Memory 59
3.7 Regularity in Classical Architecture 62
3.8 Breaking the Iso-Regularity 69
3.9 Reference Frames 70
3.10 New Theory of Symmetry-Breaking 70
3.11 Maximizing Memory Storage 72
3.12 Theory of Unfolding 75

4. Architecture and Computation 86
4.1 Introduction 86
4.2 New Foundations for Science 86
4.3 New Foundations for Art 89
4.4 New Foundations for Computation 90
4.5 What is a Building? 91

Tuesday, February 22, 2011

Keeping it Real


The first results on supersymmetry from the Large Hadron Collider (LHC) have been analysed by physicists and some are suggesting that the theory may be in trouble. Data from proton collisions in both the Compact Muon Solenoid (CMS) and ATLAS experiments have shown no evidence for supersymmetric particles – or sparticles – that are predicted by this extension to the Standard Model of particle physics. Will the LHC find supersymmetry Kate McAlpine ?

Thank you Tommaso Dorigo

If such propositions are ever moved to the project of LHC confirmations then the ideals of those who proposed should never be conceived as rats as a commentator writes. It's just not polite.

I would comment at your blog article but like Cosmic Variance I have been blocked. Oh well:)

This information is a form of responsible action toward experimental fundamentalism we take as one moves forward.

Atlas Experiment

Link on Title and internal "color reference links" will highlight links to subject locations. Well worth the visit.

 The ATLAS detector consists of four major components
(place your cursor over the links below to identify the location of the components):
  • inner detector (yellow) - measures the momentum of each charged particle
  • calorimeter (orange and green) - measures the energies carried by the particles
  • muon spectrometer (blue) - identifies and measures muons
  • magnet system (grey) - bending charged particles for momentum measurement
The interactions in the ATLAS detectors will create an enormous dataflow. To digest this data we need:

Thursday, February 10, 2011

New View of Family Life in the North American Nebula

This swirling landscape of stars is known as the North American nebula. In visible light, the region resembles North America, but in this new infrared view from NASA's Spitzer Space Telescope, the continent disappears. Image credit: NASA/JPL-Caltech


See: New View of Family Life in the North American Nebula


See Explanation.  Clicking on the picture will download 
 the highest resolution version available.
The North America Nebula
Credit & Copyright: Jason Ware

Explanation: Here's a familiar shape in an unfamiliar location! This emission nebula is famous partly because it resembles Earth's continent of North America. To the right of the North America Nebula, cataloged as NGC 7000, is a less luminous Pelican Nebula. The two emission nebula measure about 50 light-years across, are located about 1500 light-years away, and are separated by a dark absorption cloud. The nebulae can be seen with binoculars from a dark location. Look for a small nebular patch north-east of bright star Deneb in the constellation of Cygnus. It is still unknown which star or stars ionize the red-glowing hydrogen gas.

Wednesday, February 09, 2011

Quark Soup: Applied Superstring Theory

Author(s)
Alex Buche-University of Western Ontario / Perimeter Institute
Robert Myers-Perimeter Institute
Aninda Sinha-Perimeter Institute

It is believed that in the first few microseconds after the Big Bang, our universe was dominated by a strongly interacting phase of nuclear matter at extreme temperatures. An impressive experimental program at the Brookhaven National Laboratory on Long Island has been studying the properties of this nuclear plasma with some rather surprising results. We outline how there may be a deep connection between extra-dimensional gravity of String Theory and the fundamental theories of subatomic particles can solve the mystery of the near-ideal fluid properties of the strongly coupled nuclear plasma.

See Also:

Canadian Association of Physicists

***
Part of the understanding of the research goes back to the beginning of this QGP endeavor that brings us to today's level of understanding  enhanced by phenomenological positions now that allows us to move forward in our predictions and speculations. 

The Phenix


PHENIX, the Pioneering High Energy Nuclear Interaction eXperiment, is an exploratory experiment for the investigation of high energy collisions of heavy ions and protons. PHENIX is designed specifically to measure direct probes of the collisions such as electrons, muons, and photons. The primary goal of PHENIX is to discover and study a new state of matter called the Quark-Gluon Plasma.




Back in 2005, what is it we saw and what we building along the way experimentally had constraints which lead our birdseye view of the process  as if from a distance looking toward the specifics of collision processes,  allowed us to be taken ever closer to the beginnings of the universe in expression.

***
In summary, experiments at RHIC have shown that a very dense QCD medium is formed in high-energy heavy-ion collisions. Other measurements, namely elliptic flow and baryon-to-meson ratios, indicate that this medium is characterized by partonic degrees offreedom and that its expansion and cooling is well described by hydrodynamical models with high viscosity. Thus, this medium is more similar to a liquid than to a gas of gluons and quarks.Review on Heavy-Ion Physics

Triggering a Wave of Star Formation.

Arp 147 contains a spiral galaxy (right) that collided with an elliptical galaxy (left), triggering a wave of star formation. Credit: X-ray: NASA/CXC/MIT/S.Rappaport et al, Optical: NASA/STScI   

See:Triggering a Wave of Star Formation.