Apr 8, 2010

جلسه‌ي دوم هندسه در فيزيك


 با سلام خدمت دوستان گرامي
جلسه‌ي دوم هندسه در فيزيك با موضوع پايه‌هاي هندسه و معرفي توپولوژي شنبه ساعت 5 تا 7 برگزار خواهد شد. با همكاري انجمن فيزيك برآن هستم ساعت سمينارها را به زمان مناسب‌تري تغيير دهم تا دوستان علاقه‌مند بتوانند شركت كنند. 
قابل ذكر است با پيش فرض‌هاي اين جلسه از جلسه‌ي 3 وارد مباحث رياضي‌فيزيك خواهيم شد. لذا دوستان گرامي كه جلسات بعدي خواهند آمد بايد قبلاً با بعضي اصطلاحات آشنا باشند. منابع هر جلسه اعلام مي‌شود.
با سپاس
فرهاد ذكاوت

Apr 4, 2010

The First LHC Collisions at 7 TeV

30 March 2010

CERN has announced that on March 30th it will attempt the first 7 TeV collisions at its Large Hadron Collider (LHC). This very important event, in fact marks, the beginning of LHC's physics programme to test and explore the Standard Model of particle physics, looking for its missing pieces (Higgs boson) or for evidence showing the way for going beyond this model. So far the highest energy achieved in particle collisions has been that of FermiLab accelerator at 1.9 TeV, and a 7 TeV collision by itself constitutes a landmark in the history of high energy experiments. Each of the 3.5 TeV beams were already successfully circulated around the 27 km circumference of LHC on March 19th.


The Particles and Accelerators department of IPM is one of the 35 institutes around the world which are marking this event by taking part in its live broadcast. The broadcast will take place in the CMS room of IPM's Larak campus through direct connection to CERN. The live broadcast will start at 11 AM local time.

Source: IPM>Cern

On the threshold of new territory

13 March 2010

Geneva March 9, The LHC is already over a week into its 2010 run, and the start of physics at 7 TeV is just around the corner. Last week, participants at the annual La Thuile workshop in Italy had the chance to take stock of what lies in store for the LHC’s first physics run. They learned that there’s a great sense of anticipation here at CERN and at particle physics labs around the globe, and for good reason – we’re about to open up the biggest range of potential new discovery that particle physics has seen in over a decade.

Our objective over the next 18 to 24 months is to deliver one inverse femtobarn of data to the experiments. In other words, enough data to make significant advances across a wide range of physics channels.

Take supersymmetry. ATLAS and CMS will each have enough data to significantly extend today’s sensitivity to new discoveries. Experiments today are sensitive to some supersymmetric particles with masses up to about 400 GeV. An inverse femtobarn at the LHC pushes that up to about 800 GeV. This means that in the next two years, the experiments at the LHC will explore as much territory in their quest for SUSY as has been covered in the history of particle physics to date. In other words, the LHC has a real chance over the next two years of discovering supersymmetric particles, possibly elucidating the nature of the dark matter that accounts for about a quarter of the mass and energy of the Universe.

The Higgs particle is another example. The last word that CERN had to say on the matter came from LEP almost ten years ago. In the last year of LEP running there were tantalising signs that the Higgs might have made an appearance but all we could say for sure was that the Higgs must have a mass above about 115 GeV. Since then, the Tevatron has done great work towards ruling out some of the mass range that the Higgs could inhabit. With an inverse femtobarn of data from the LHC, the combined analyses of ATLAS and CMS will be able to explore a wide mass range, and there’s even a chance of discovery if the particle has a mass near 160 GeV.

At the more exotic end of the potential discovery spectrum, LHC experiments will be sensitive to new massive particles that could herald the presence of extra dimensions. Discoveries up to masses of 2 TeV will be possible, whereas today’s reach is around 1 TeV.

All this makes now a very good time to be a particle physicist, and in particular a student of particle physics. Some 2500 graduate students are eagerly awaiting data from all the LHC experiments, ALICE, ATLAS, CMS, LHCb, LHCf and TOTEM. They’re a privileged group, set to produce the first PhD theses at the new high-energy frontier.

Two years of continuous running is a tall order both for the LHC operators and the experiments, but it will be well worth the effort. By abandoning CERN’s traditional annual operational cycle we’re increasing the overall running time and discovery potential over the next three years. This run will be followed by preparations for 14 TeV collisions in a single shutdown and another major advance into new territory as great as the one we are on the threshold of achieving.

Source: IPM>Cern

Mar 11, 2010

Particles, Geometry and Generl Relativity

دوره‌ي هندسه، نسبيت و ذرات بنيادي به صورت هفتگي از شنبه 22 اسفند ماه هر هفته تا خرداد ماه 1389 برگزار مي‌شود. در اين جلسات توپولوژي در هندسه از ابتدا معرفي شده و در حين جلسات با مثالهاي مختلف به مباحث فيزيك خواهيم پرداخت. فايبرباندل-منيفلد- جبر لي و مشتقات لي و ارتباط در نسبيت و نظريه‌ي‌ پيمانه‌اي معرفي مي‌شود. چند جلسه به طور خاص ساختار نسبيت عام خواهد بود و ذرات بنيادي به صورت عام مورد بررسي قرار مي گيرد.
جلسات بدون محدوديت بوده و علاقه مندان مي‌توانند در اين جلسات حضور پيدا كنند. ريز مطالب در جلسه‌ي اول و سپس در وبلاگ ذرات به آدرس فوق قرار داده خواهد شد.
 


Mar 10, 2010

آغاز دوباره و قطعي سمينارهاي هندسه و فيزيك

سمينارهاي فيزيك ذرات، توپولوژي و نسبيت عام بزودي از تاريخ 21 اسنفد ماه 1388 به مدت 2 ساعت در هر جلسه تا 11 جلسه ادامه خواهد داشت. اميد از براي دانشجويان و علاقه‌مندان مفيد واقع شود. اين سمينارها توسط خود (فرهاد ذكاوت) ارائه مي‌شود و اميدوارم بتوانيم به شيوه ي فعال، يعني گروهي و مباحثه بحثها را تا پايان پيش ببريم. 

Feb 9, 2010

LHC Run in 2010


Geneva February 3, Last week, the Chamonix workshop once again proved its worth as a place where all the stakeholders in the LHC can come together, take difficult decisions and reach a consensus on important issues for the future of particle physics. The most important decision we reached last week is to run the LHC for 18 to 24 months at a collision energy of 7 TeV (3.5 TeV per beam). After that, we’ll go into a long shutdown in which we’ll do all the necessary work to allow us to reach the LHC’s design collision energy of 14 TeV for the next run. This means that when beams go back into the LHC later this month, we’ll be entering the longest phase of accelerator operation in CERN’s history, scheduled to take us into summer or autumn 2011.
What led us to this conclusion? Firstly, the LHC is unlike any previous CERN machine. Because it is a cryogenic facility, each run is accompanied by lengthy cool-down and warm-up phases. For that reason, CERN’s traditional ‘run through summer and shutdown for ]winter’ operational model had already been brought into question. Furthermore, we’ve known for some time that work is needed to prepare the LHC for running at energies significantly higher than the 7 TeV collision energy we’ve chosen for the first physics run. The latest data show that while we can run the LHC at 7 TeV without risk to the machine, running it at higher energy would require more work in the tunnel. These facts led us to a simple choice: run for a few months now and programme successive short shutdowns to step up in energy, or run for a long time now and schedule a single long shutdown before allowing 14 TeV (7 TeV per beam). 
A long run now is the right decision for the LHC and for the experiments. It gives the machine people the time necessary to prepare carefully for the work that’s needed before allowing 14 TeV. And for the experiments, 18 to 24 months will bring enough data across all the potential discovery areas to firmly establish the LHC as the world’s foremost facility for high-energy particle physics.


source: IPM&CERN