Tutorial:Applied power math: Difference between revisions

${\displaystyle {\begin{aligned}J&=P\cdot t\\t&={\frac {J}{P}}\\&={\frac {4\,{\text{MJ}}}{0.3\,{\text{MW}}}}={\frac {4\,000\,000\,{\text{J}}}{300\,000\,{\text{W}}}}=13.333{\text{s}}\end{aligned}}}$

A bit more than 13 seconds.

${\displaystyle {\begin{aligned}J&=P\cdot t\\P&={\frac {J}{t}}\\&={\frac {4\,{\text{MJ}}}{5\,{\text{s}}}}={\frac {4\,000\,000\,{\text{J}}}{5\,{\text{s}}}}=800\,000\,{\text{W}}=0.8\,{\text{MW}}\\\end{aligned}}}$

0.8 megawatts.

The energy ratios will match the weight ratios, so:

${\displaystyle {\begin{aligned}{\frac {m_{\text{Factorio}}}{m_{\text{real}}}}={\frac {E_{\text{Factorio}}}{E_{\text{real}}}}\quad \Leftrightarrow \quad m_{\text{Factorio}}&={\frac {E_{\text{Factorio}}\cdot m_{\text{real}}}{E_{\text{real}}}}\\1\,{\text{unit}}&={\frac {4\,{\text{MJ}}\cdot 1\,{\text{ton}}}{7.2\,{\text{GJ}}}}\\&={\frac {4\,000\,000\,{\text{J}}\cdot 1\,000\,{\text{kg}}}{7\,200\,000\,000\,{\text{J}}}}\\&=0.555\,555\,{\text{kg}}\\&=555.555\,{\text{g}}\\\end{aligned}}}$

About 555g! Still doesn't explain how our character can carry so much of it...

Because it doesn't turn on and off instantly, the radar's demand of electrical power ramps up before reaching its operating power demand, therefore its electrical power usage is a function of time ${\displaystyle p_{\text{el}}(t)}$. When speaking of a machine using power over time, the common equation symbol is ${\displaystyle W}$ for performed work, which must be equal to the amount of energy supplied ${\displaystyle E_{supply}}$. To easier visualize the amount of energy or work, in the real world, instead of Joule, the unit in use is the kilowatt-hour (kWh).

${\displaystyle E_{supply}=W=\int p_{\text{el}}(t)\mathop {} \!\mathrm {d} t}$

However, as the accuracy of integration is not required, to conservatively approximate the required power supply the equation can be simplified by treating the average power ${\displaystyle {\bar {P}}_{\text{el}}}$ as the radars peak operating power ${\displaystyle {\hat {P}}_{\text{el}}}$ within a duration ${\displaystyle T}$ as a constant.

${\displaystyle {\begin{aligned}E_{supply}&=\int _{t_{0}}^{t_{0}+T}{\hat {P}}_{\text{el}}(t)\mathop {} \!\mathrm {d} t&={\hat {P}}_{\text{el}}\cdot T\end{aligned}}}$

For completeness sake it should be mentioned that the boilers turn 4 MJ of chemical energy ${\displaystyle E_{\text{chem}}}$ stored in coal, to 4 MJ of thermal energy ${\displaystyle E_{\text{therm}}}$ stored in the steam, which steam turbines only consume as the grid demands electrical energy ${\displaystyle E_{\text{el}}}$, where the grid then transfers electrical power per second.

Since ${\displaystyle E=P\cdot t</code>,a20MWfactorywillconsume20MJ/s.Sincecoalcontains4MJ,we'llneed'''5coalpersecond'''.<math>5\cdot 4\,{\text{MJ}}=20\,{\text{MW}}}$

Per the linked page, an electric mining drill mine 0.5 coal per second, so we'll need 10 electric mining drills.

${\displaystyle {\frac {5\,{\text{units}}}{\text{s}}}{0.5\,{\frac {\text{units}}{\text{s}}}}=5}$.

${\displaystyle {\begin{aligned}3.2\,\mathrm {GJ} &=3\,200\,\mathrm {MJ} \\{\frac {3\,200\,\mathrm {MJ} }{4\,\mathrm {MJ} }}&=800\\\\3\,200\,\mathrm {MJ} &\cdot {\frac {1\,\mathrm {m} }{30\,\mathrm {d} }}\cdot {\frac {1\,\mathrm {d} }{24\,\mathrm {h} }}\cdot {\frac {1\,\mathrm {h} }{60\,\mathrm {min} }}\cdot {\frac {1\,\mathrm {min} }{60\,\mathrm {s} }}=1\,234.567\,9\,\mathrm {W} \\{\frac {900\,\mathrm {kW} }{1\,234.567\,9\,\mathrm {W} }}&=729\end{aligned}}}$

800 pieces of coal per household and a single steam engine could power 729 households exactly.