中英
hypervelocity
/ ˌhaɪpəvɪˈlɒsətɪ /
/ ˌhaɪpərvəˈlɑːsɪti /
  • 简明
  • n.极高速
    • 复数

      hypervelocities
  • 网络释义
  • 专业释义
  • 英英释义
  • 1

    [力] 超速

    ... HVHostVerification主机验证 HVHyperVelocity超速 hvdhighvoltagedifferential,高分差动 ...

  • 2

     超高速

    兵工学报 关键词 流体力学; 超高速; 弹箭; 外弹道; 烧蚀 [gap=1205]Key Words fluid mechanics; hypervelocity; projectile; exterior ballisitics; ablation

  • 3

     海波

    ... hypersynchronous高度渗透 hypertonia超高速 hypervelocity海波,五水合硫代亚硫酸钠 ...

短语
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  • 双语例句
  • 权威例句
  • 1
    By 2010 Brown and other astronomers had discovered 15 more of these hypervelocity stars.
    2010年,布朗和其他天文学家又发现了15颗这样极高速运行的恒星。
  • 2
    Skin of spacecraft is usually considered as the most basic shield structure against hypervelocity impact of space debris.
    航天器的蒙皮是抵御空间碎片超高速撞击的最基本防护结构。
  • 3
    Investigates the distribution characteristics of secondary debris clouds generated during a hypervelocity oblique impact.
    研究超高速斜碰撞所形成的二次碎片云的分布特性。
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  • 词源
1

hypervelocity:

hyper- +‎ velocity

FROM: wiktionary
  • 百科
  • Hypervelocity

    Hypervelocity is very high velocity, approximately over 3,000 meters per second (6,700 mph, 11,000 km/h, 10,000 ft/s, or Mach 8.8). In particular, hypervelocity is velocity so high that the strength of materials upon impact is very small compared to inertial stresses. Thus, even metals behave like fluids under hypervelocity impact. Extreme hypervelocity results in vaporization of the impactor and target. For structural metals, hypervelocity is generally considered to be over 2,500 m/s (5,600 mph, 9,000 km/h, 8,200 ft/s, or Mach 7.3). Meteorite craters are also examples of hypervelocity impacts.Hypervelocity refers to velocities in the range from a few kilometers per second to some tens of kilometers per second. This is especially relevant in the field of space exploration and military use of space, where hypervelocity impacts (e.g. by space debris or an attacking projectile) can result in anything from minor component degradation to the complete destruction of a spacecraft or missile. The impactor, as well as the surface it hits, can undergo temporary liquefaction. The impact process can generate plasma discharges, which can interfere with spacecraft electronics.Hypervelocity usually occurs during meteor showers and deep space reentries, as carried out during the Zond, Apollo and Luna programs. Given the intrinsic unpredictability of the timing and trajectories of meteors, space capsules are prime data gathering opportunities for the study of thermal protection materials at hypervelocity (in this context, hypervelocity is defined as greater than escape velocity). Given the rarity of such observation opportunities since the 1970s, the Genesis and Stardust Sample Return Capsule (SRC) reentries as well as the recent Hayabusa SRC reentry have spawned observation campaigns, most notably at NASA Ames Research Center.Hypervelocity collisions can be studied by examining the results of naturally-occurring collisions (between micrometeorites and spacecraft, or between meteorites and planetary bodies), or they may be performed in laboratories. Currently the primary tool for laboratory experiments is a light-gas gun, but some experiments have used linear motors to accelerate projectiles to hypervelocity. The properties of metals under hypervelocity have been integrated with weapons, such as explosively formed penetrator. The vaporization upon impact and liquefaction of surfaces allow metal projectiles formed under hypervelocity forces to penetrate vehicle armor better than conventional bullets.NASA studies the effects of simulated orbital debris at the White Sands Test Facility Remote Hypervelocity Test Laboratory (RHTL). Objects smaller than a softball cannot be detected on radar. This has prompted spacecraft designers to develop shields to protect spacecraft from unavoidable collisions. At RHTL, micrometeoroid and orbital debris (MMOD) impacts are simulated on spacecraft components and shields allowing designers to test threats posed by the growing orbital debris environment and evolve shield technology to stay one step ahead. At RHTL, four two-stage light-gas guns propel 0.05 mm to 22.2 mm diameter projectiles to velocities as fast as 8.5 km/s.

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