某钢尺的尺长方程式为:L=30-0.003+1.25×10-5×30×(t-20℃),若用其在4℃的温度下丈量了60米,则其温度改正数和实际长度分别为()。A、-0.012m;59.988mB、+0.012m;60.012mC、–0.012m;59.982mD、+0.012m;59.982m
题目内容(请给出正确答案)
某钢尺的尺长方程式为:L=30-0.003+1.25×10-5×30×(t-20℃),若用其在4℃的温度下丈量了60米,则其温度改正数和实际长度分别为()。
- A、-0.012m;59.988m
- B、+0.012m;60.012m
- C、–0.012m;59.982m
- D、+0.012m;59.982m
