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Bauman Moscow State Technical University

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Bauman Moscow State Technical University
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Motto:
?????????, ????, ???? ? ????????!?
Established:
1830
Type:
Public
Rector:
I.B. Fedorov
Faculty:
3,500
Students:
18,000
Postgraduates:
1,000
Location:
Moscow, Russia
Campus:
Urban
Website:
www.bmstu.ru
The Bauman Moscow State Technical University, Bauman MSTU (Russian: ?????????? ??????????????? ??????????? ??????????? ??. ?. ?. ??????? (???? ??. ?. ?. ???????)), sometimes colloquially referred to as the Bauman School or Baumanka (Russian: ?????????) is a public university located in Moscow, Russia. Bauman MSTU is one of the oldest and largest Russian technical university offering B.S., M.S. and Ph.D. degrees in various engineering fields and applied sciences.
Contents
1 University Today
2 History
3 Faculties and their Departments
3.1 Special Facuties
4 Famous Faculty and Alumni
5 External links
//
University Today
Founded in 1830 as an Emperor's Vocational School and located almost in the heart of Russia's capital, Moscow State Technical University n.a. N.E. Bauman (MSTU) was always known as an Engineering University of educational excellence, having a potential for real greatness. A long-term history of University provides many examples of creating a number of the world-known scientific schools which contributed to developing in different fields such as space engineering, heating engineering, biophysics, aerodynamics, radio physics, radio electronics, optics, laser technology, dynamics and strength of machines. The University has an outstanding faculty of 3500 men and women, many of whom are recognized for their scholarship. It numbers 350 Doctors of Science and 1800 Ph.D.s. Presently there are approximately 18000 students, concentrating their studies in science and engineering, and 1000 post graduates, working on their Ph.D. thesises at MSTU. The most-stated reason for them to enter here was the University's academic reputation. The University provides close co-operation activities with Russian Academy of Sciences and Industry. Opportunities offered by MSTU attracted more than 300 international students from 20 countries all over the world. According to MSTU curriculum, its academic offerings are: bachelor's degree programs, master's programs, Ph.D. programs, pre-University programs, and internship. All training programs meet state educational standards and carry national accreditation. Graduates of all degrees earn appropriate certificates. MSTU curriculum offers a distinctive approach to education by combining the academic studies with fundamental and applied researches and design and experimental works, using a potential of appropriate Research Institutes set up for each Faculty of the University. The oldest Russian Technical University, one of to-day's leading centers of higher education invites you to study and offers a mutually advantageous cooperation in many fields of science and technology. From 1918 to 2007 more than 140,000 students graduated with different engineering degrees. Most of them chose to become scientists or engineers in the leading research centers, Universities, private and government owned companies. Some of the specialized departments of BMSTU are located outside Moscow in cities of Moscow County: Krasnogorsk (Russian: ???????????), Reutov (Russian: ??????), Korolev (Russian: ???????). There is also a largest branch of the University in Kaluga (Russian: ??????).
History
The university was established in 1830 as Imperial Vocational School (Russian: ??????????? ???????, Remeslennoe Uchilische) by a decree of Emperor Nicholas I. It was renamed in 1868 as Imperial Moscow Technical School, then after the 1917 revolution to Moscow Highest Technical School (MHTS). A number of research institutes such as TsAGI were created from laboratories and departments of MHTS in 1930. The remaining school was named Bauman Moscow Mechanical and Machine Construction Institute. The name MHTS was revived in 1943. The current name was given in 1989.

Fountain in the inner courtyard of the main building of BMSTU
Faculties and their Departments
RADIOELECTRONICS AND LASER TECHNOLOGY
Bioengineering and Medical Equipment and Systems;
Opto-Electronic Equipment and Systems;
Radioelectronic Systems.
FUNDAMENTAL SCIENCES
Applied mathematics.
Applied physics.
MATERIALS AND TECHNOLOGY
Manufacturing Engineering;
Machine Tools;
Casting Technology and Equipment;
Metal Pressing and Forging Engineering and Equipment;
Welding Technology and Equipment;
Advanced Processing Machines and Technology;
Material Science in Mechanical Engineering;
Metallurgical...(and so on)

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Tactical High Energy Laser

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THEL/ACTD
The Tactical High-Energy Laser, or THEL, is a laser developed for military use, also known as the Nautilus laser system. The mobile version is the Mobile Tactical High-Energy Laser, or MTHEL.
Contents
1 Demonstrator
2 Countermeasures
3 Further Countermeasures
4 See also
4.1 Lasers
4.2 Laser weapons
5 External links
//
Demonstrator
The cooperative Tactical High Energy Laser (THEL) Demonstrator ACTD was initiated by a memorandum of agreement between the United States and the Government of Israel on July 18, 1996. The THEL is a high-energy laser weapon system that uses proven laser beam generation technologies, proven beam-pointing technologies, and existing sensors and communication networks to provide a new active defense capability in counter air missions. The goal of THEL is to provide a different solution than other systems or technologies for the acquisition and close-in engagement problems associated with short- to medium-range threats, thereby significantly enhancing coverage of combat forces and theater-level assets. The THEL's low cost-per-kill (about $3,000 per kill, as opposed to the $444,000 cost of a Rolling Airframe Missile) could also provide a cost-effective defense against low-cost air threats. It features up to 60 shots without reloading and, if it meets design goals, a probability of kill of nearly 100% at a range of 5 km.
An Israeli designed, U.S funded program has been initiated to develop a THEL demonstrator using deuterium fluoride laser (chemical laser) technologies. Israeli THEL team members have completed a Concept Design Review in Israel for the demonstrator. Approximately 21 months will be required to design and build the system, followed by 12 to 18 months of field testing at the High Energy Laser Systems Test Facility in Israel. This program will deliver a THEL Demonstrator by March 1998 with a limited operational capability to defend against short-range rockets. The THEL weapon system concept definition studies using advanced technologies were awarded to four contractors on September 30, 1996. The prime contractor for THEL is Northrop Grumman (formerly TRW.)
THEL conducted test firing in FY1998, and Initial Operating Capability (IOC) was planned in FY1999. However this has been significantly delayed due to reorienting the project as a mobile, not fixed design, called Mobile Tactical High Energy Laser (MTHEL). The original fixed location design eliminates most weight, size and power restrictions, but is not compatible with the fluid, mobile nature of modern combat. The initial MTHEL goal was a mobile version the size of three large semi trailers. Ideally it would be further downsized to a single semi trailer size. However doing this while maintaining the original performance characteristics is difficult. Furthermore the Israeli government which had been providing significant funding decreased their financial support in 2004, stretching out the IOC date to at least 2010.
In 2000 and 2001 THEL shot down 28 Katyusha artillery rockets and 5 artillery shells.
On November 4, 2002, THEL shot down an incoming artillery shell. A mobile version has completed successful testing. During a test conducted on August 24, 2004 the system successfully shot down multiple mortar rounds. The test represented actual mortar threat scenarios. Targets were intercepted by the THEL testbed and destroyed; both single mortar rounds and salvo were tested.
Even though military experts such as the former head of the Administration for the Development of Weapons and the Technological Industry, Aluf Yitzhak Ben Yisrael, were calling for the implementation of the THEL, the project was discontinued. During the 2006 Israel-Lebanon conflict, Ben Yisrael, currently the chairman of the Israeli Space Agency, renewed his calls to implement the THEL against high-trajectory fire.
Countermeasures
In theory certain countermeasures could reduce the effectiveness of THEL. These could include heat hardening and reflective coating of the projectiles, which would increase the necessary laser exposure time. However THEL has primarily been developed to intercept relatively primitive threats such as homemade Qassam rockets and World War II-era Katyusha rockets, which thus far have not incorporated sophisticated countermeasures.
A review of the types of technologically feasible countermeasures would include (though not be limited to) the following:
Reflective coatings which attempt to reflect a large proportion of the incident radiation which is incident upon the aimed projectiles. This would not necessarily reduce the absorbed incident radiation to such an extent that the projectile is not destroyed - but in combination with other types of countermeasure, reflective coatings would feasibly ensure that target kill is achieved despite the use of THEL.
Modification...(and so on)

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Laser microtome

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The laser microtome is an instrument used for non-contact sectioning of biological tissues or materials. It was developed by the Rowiak GmbH, a spin-off of the Laser Centre Hannover.
In contrast to mechanically working microtomes, the laser microtome does not require sample preparation techniques such as freezing, dehydration or embedding. It has the ability to slice tissue in its native state. Depending on the material being processed, slice thicknesses of 10 to 100 ?m are feasible.
Principle
The cutting process is performed by a femtosecond laser, emitting radiation in the near-infrared range. Within this wavelength range, the laser is able to penetrate the tissue up to a certain depth without causing thermal damage. By tight focussing the laser radiation, intensities over 1 TW/cm2 (1 TW = 1012 watts) arise inside the laser focus. These extreme intensities induce nonlinear effects and optical breakdown occurs. This causes the disruption of the material, limited to the focal point. The process is known as photodisruption.
Due to the ultra short pulse duration of only a few femtoseconds (1 fs = 10-15 seconds) there is only very low energy of a few nanojoules (1 nJ = 10-9 joules) per laser pulse deposits into the tissue. This limits the interaction range to diameters below one micrometer (1 ?m = 10-6 meters). Out of this range there is no thermal damage.
Moved by a fast scanner, the laser beam writes a cutting plane into the sample. A positioning unit moves the sample simultaneously, so that the sample can be processed within a short time.
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