فوق بنفسجي - перевод на Английский
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فوق بنفسجي - перевод на Английский

ELECTRIC MOTOR POWERED BY ULTRASONIC VIBRATION
Ultrasound motor; UltraSound Motor; Ultrasound Motor; Silent wave motor; Hyper Sonic Motor; Hyper Sonic Mortor; Ultrasonic motor drive; المحرك بالموجات فوق الصوتية; Ultrasonic drive; Sony DDSSM; Sony SSM; Konica Minolta SSM; Minolta SSM; Canon USM; Olympus SWD; Nikon SWM; Sigma HSM; Pentax SDM; Tamron PZD; Tamron USD; Panasonic XSM; DDSSM (Sony); DDSSM; SSM (Sony); SSM (Konica Minolta); SSM (Minolta); USM (Canon); SWD (Olympus); SWM (Nikon); XSM (Panasonic); HSM (Sigma); SDM (Pentax); PZD (Tamron); USD (Tamron); USM (lens motor); SSM (lens motor); DDSSM (lens motor); SWM (lens motor); SWD (lens motor); HSM (lens motor); SDM (lens motor); XSM (lens motor); PZD (lens motor); USD (lens motor)
  • Ultrasonic motor

فوق بنفسجي      
ultraviolet
ULTRAVIOLET         
  • Ultraviolet photons harm the [[DNA]] molecules of living organisms in different ways. In one common damage event, adjacent [[thymine]] bases bond with each other, instead of across the "ladder". This "[[thymine dimer]]" makes a bulge, and the distorted DNA molecule does not function properly.
  • Sunburn effect (as measured by the [[UV index]]) is the product of the sunlight spectrum (radiation intensity) and the erythemal action spectrum (skin sensitivity) across the range of UV wavelengths. Sunburn production per milliwatt of radiation intensity is increased by nearly a factor of 100 between the near UV‑B wavelengths of 315–295 nm
  • UV damaged [[polypropylene]] rope (left) and new rope (right)
  • A collection of mineral samples fluorescing brilliantly at various wavelengths as seen while being irradiated by UV light.
  • IR spectrum showing carbonyl absorption due to UV degradation of [[polyethylene]]
  • Aurora at [[Jupiter]]'s north pole as seen in ultraviolet light by the [[Hubble Space Telescope]].
  • DU/km]]) and blocking of different bands of ultraviolet radiation: In essence, all UVC is blocked by diatomic oxygen (100–200 nm) or by ozone (triatomic oxygen) (200–280 nm) in the atmosphere. The ozone layer then blocks most UVB. Meanwhile, UVA is hardly affected by ozone, and most of it reaches the ground. UVA makes up almost all UV light that penetrates the Earth's atmosphere.
  • A bird appears on many Visa credit cards when they are held under a UV light source
  • sterilizing]] microbiological contaminants from irradiated surfaces.
  • A 380 nanometer UV LED makes some common household items fluoresce.
  • A portrait taken using only UV light between the wavelengths of 335 and 365 nanometers.
  • Signs are often used to warn of the hazard of strong UV sources.
  • Demonstration of the effect of sunscreen. The man's face has sunscreen on his right side only. The left image is a regular photograph of his face; the right image is of reflected UV light. The side of the face with sunscreen is darker because the sunscreen absorbs the UV light.
  • Effects of UV on finished surfaces in 0, 20 and 43 hours.
  • After a training exercise involving fake [[body fluids]], a healthcare worker's [[personal protective equipment]] is checked with ultraviolet light to find invisible drops of fluids. These fluids could contain deadly viruses or other contamination.
FORM OF ELECTROMAGNETIC RADIATION
Ultra-violet radiation; Ultraviolet radiation; UV; Ultraviolet energy; Ultraviolet light; UV-A; UV-C; UV-B; UVB; UV radiation; Uv; Ultra-violet; Ultraviolet Light; Ultraviolet Rays; Ultraviolet Radiation; UV Radiation; Uv light; UV light; Near ultraviolet; Near UV; UVB radiation; UVA radiation; UV Light; Ultraviolet light absorber; Ultraviolet radiation (biology); Ultra violet; Ultraviolet lamp; Deep ultraviolet; Vacuum UV; Vacuum ultraviolet; Deep UV; Ultraviolet A; Ultraviolet a; Ultraviolet B; Ultraviolet b; Ultraviolet C; Ultraviolet c; Ultra-Violet; UV rays; Ultraviolet Light Absorber; Ultraviolet irradiation; Near-ultraviolet; Ultra-violet light; UV A; UV B; Bee's purple; Ultraviolet ray; UV-light; Ultraviolet-B; UV ray; Ultraviolet rays; UVA blocker; UV-radiation; Far-ultraviolet; Ultraviolet lighting; UV lamp; UV lamps; Far ultraviolet; Uv-B; Ultraviolet Lamp; Ultraviolet waves; Diurnal variation of ultraviolet light; Diurnal variation of ultaviolet light; UV protection; Ultraviolet a radiation; Ultraviolet b radiation; Ultraviolet c radiation; Ultraviolet type; U.V.; Thitonic rays; Chemical rays; UV light irradiation; NUV photons; VUV radition; VUV radiation; Pulsed ultraviolet light; UVR; Vaccum ultraviolet; Ultraviolet LED; Ultraviolet LEDs; UV-irradiation; Ultra violet rays; Hard ultraviolet; UV photon; Middle ultraviolet; Ultra violet light; Oxidizing rays; Tithonic rays; Hard UV; Soft ultraviolet; Soft UV; Dorno radiation; Middle UV; Far UV; UV C; Ultraviolet-A; Ultraviolet-C; H Lyman-α; Hydrogen Lyman-alpha; Hydrogen Lyman-alpha ultraviolet; H Lyman-α ultraviolet; Hydrogen Lyman-alpha radiation; H Lyman-α radiation; Far UV-C; Far UVC; UVB (radiation); UVA (radiation); UVC (radiation); NUV (radiation); MUV (radiation); FUV (radiation); VUV (radiation); Far-UVC; Far-UVC light; Far UV-C light; Dark tithonic rays; De-oxidizing rays; Deoxidizing rays; De-oxidising rays; Deoxidising rays; De-oxidierende Strahlen; Oxidising rays; Ultraviolet spectrum

ألاسم

إشعاع فوق بنفسجي

الصفة

فوق بنفسجي

ultraviolent         
  • Vanessa Claire Smith]] in [[Brad Mays]]' multi-media stage production of ''A Clockwork Orange'', 2003, Los Angeles. (photo: Peter Zuehlke)
  • Vanessa Claire Smith]], Sterling Wolfe, Michael Holmes, and Ricky Coates in [[Brad Mays]]' multi-media stage production of ''A Clockwork Orange'', 2003, Los Angeles. (photo: Peter Zuehlke)
  • Burgess in 1986
  • A Clockwork Orange]]'' (1971)
1962 NOVEL BY ANTHONY BURGESS
Ludovico technique; Yarbls; Droogism; Ultraviolent; Ludovico Technique; Otto Skadelig; The Ludovico Technique; Moloko Plus; Knifey moloko; A Clockwork Orange (book); Ludovico treatment; Ludovico therapy; A Clockwork Orange: A Play with Music; A Clockwork Orange (musical); Vellocet
فَوْقَ البَنَفْسَجِيّ

Википедия

Ultrasonic motor

An ultrasonic motor is a type of piezoelectric motor powered by the ultrasonic vibration of a component, the stator, placed against another component, the rotor or slider depending on the scheme of operation (rotation or linear translation). Ultrasonic motors differ from other piezoelectric motors in several ways, though both typically use some form of piezoelectric material, most often lead zirconate titanate and occasionally lithium niobate or other single-crystal materials. The most obvious difference is the use of resonance to amplify the vibration of the stator in contact with the rotor in ultrasonic motors. Ultrasonic motors also offer arbitrarily large rotation or sliding distances, while piezoelectric actuators are limited by the static strain that may be induced in the piezoelectric element.

One common application of ultrasonic motors is in camera lenses where they are used to move lens elements as part of the auto-focus system. Ultrasonic motors replace the noisier and often slower micro-motor in this application.