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  • 匿名
关注:1 2013-05-23 12:21

求翻译:首先在导体内产生与电流的方向一致的强磁场,然后以某个特定的频率向导体输送电流,使载荷电子与磁场电子产生相位共振,这时的电流输送将不受导体电阻的限制,可能以某种非常低的电阻输送强大的电流;如果栽荷电子与磁场电子的相位处于一致,电阻将降为零。但是,这个系统还将受磁场强度、电流强度、外界温度、材料等因素的影响,还需要经过大量细致深入的研究,才能建立一套可靠的实验数据。是什么意思?

待解决 悬赏分:1 - 离问题结束还有
首先在导体内产生与电流的方向一致的强磁场,然后以某个特定的频率向导体输送电流,使载荷电子与磁场电子产生相位共振,这时的电流输送将不受导体电阻的限制,可能以某种非常低的电阻输送强大的电流;如果栽荷电子与磁场电子的相位处于一致,电阻将降为零。但是,这个系统还将受磁场强度、电流强度、外界温度、材料等因素的影响,还需要经过大量细致深入的研究,才能建立一套可靠的实验数据。
问题补充:

  • 匿名
2013-05-23 12:21:38
First produced in the conductor and the current direction of the strong magnetic field, and then to a particular frequency guide body transport current, the load phase electron resonance with the electrons in the magnetic field, when the current transmission will not limit the conductor resistance m
  • 匿名
2013-05-23 12:23:18
first produced in a conductor in the direction of the current strong magnetic field, and then with a specific frequency to a conductor, the current transmission to load electronic and magnetic resonance, electronic generated at this phase will not be affected by the current transmission conductor re
  • 匿名
2013-05-23 12:24:58
First produces in the conductor with the electric current direction consistent strong magnetic field, then by some specific frequency to the conductor transportation electric current, causes the load electron and the magnetic field electron has phase resonating, by now electric current transportatio
  • 匿名
2013-05-23 12:26:38
First in conductor within produced and current of direction consistent of strong magnetic field, then to a specific of frequency Wizard body conveying current, makes load electronic and magnetic field electronic produced phase resonance, then of current conveying will does not by conductor resistanc
  • 匿名
2013-05-23 12:28:18
Produce the strong magnetic field of keeping the same with direction of the current in the conductor at first, then transport the current with some piece of particular frequency guide's body, make loaded electron and magnetic field electron produce the resonance of phase place, the current at this m
 
 
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