Freq(Hz) Ampl Bias Time(Sec) Z'(a) Z''(b) GD Err Range 1.000000E+05 5.0000E-03 3.7312E+00 6.700000E+00 1.1517E-01 2.7624E-01 0.0000E+00 0 2 7.943282E+04 5.0000E-03 3.7312E+00 7.450000E+00 1.0705E-01 2.2336E-01 0.0000E+00 0 2 6.309573E+04 5.0000E-03 3.7312E+00 1.170000E+01 1.0054E-01 1.8033E-01 0.0000E+00 0 2 5.011872E+04 5.0000E-03 3.7312E+00 1.245000E+01 9.5716E-02 1.4530E-01 0.0000E+00 0 2 3.981072E+04 5.0000E-03 3.7312E+00 1.318000E+01 9.1511E-02 1.1728E-01 0.0000E+00 0 2 此数据来自锂电池电化学阻抗谱
时间: 2023-07-04 17:25:21 浏览: 185
cpufreq-dt.rar_The Target_cpufreq-dt
add(new MyInteger(value[i]));
remainder = remainder.mod(divisor);
}
return negative ? new MyInteger(remainder.negate这份数据表格来自锂电池的电化学阻抗谱测试,其中包括了不同频率下的().toString()) : remainder;
}
public MyInteger negate() {
char[] result = new char[length + 1];
复阻抗的实部和虚部,还有相位差和误差等参数。这些参数可以用来描述锂 System.arraycopy(value, 0, result, 1, length);
result[0] = '-';
return new MyInteger(new String(result电池的电学特性和响应,如电荷和放电特性、内部电阻等。电化学));
}
public MyInteger absAdd(MyInteger other) {
return isNegative() ? other.subtract(abs()) : add(other.abs());
}
public MyInteger absSubtract(MyInteger other) {
return abs().subtract(other.abs());
}
public My阻抗谱是一种常用的测试方法,可以帮助研究人员和工程师了解锂电池的Integer absMultiply(MyInteger other) {
return abs().multiply(other.abs());
}
public MyInteger absDivide(MyInteger other性能和寿命,优化电池设计和制造过程,提高电池的性能和可靠性。
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