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140 lines
5.2 KiB
C++
140 lines
5.2 KiB
C++
// The MIT License (MIT)
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//
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// Copyright (c) 2018 Mateusz Pusz
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//
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// Permission is hereby granted, free of charge, to any person obtaining a copy
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// of this software and associated documentation files (the "Software"), to deal
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// in the Software without restriction, including without limitation the rights
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// to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
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// copies of the Software, and to permit persons to whom the Software is
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// furnished to do so, subject to the following conditions:
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//
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// The above copyright notice and this permission notice shall be included in all
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// copies or substantial portions of the Software.
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//
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// THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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// IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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// FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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// AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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// LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
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// OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
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// SOFTWARE.
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#include <mp-units/compat_macros.h>
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#include <mp-units/ext/format.h>
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#include <cassert>
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#ifdef MP_UNITS_IMPORT_STD
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import std;
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#else
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#include <chrono>
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#include <iostream>
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#include <numbers>
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#include <string>
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#endif
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#ifdef MP_UNITS_MODULES
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import mp_units;
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#else
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#include <mp-units/math.h>
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#include <mp-units/systems/isq.h>
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#include <mp-units/systems/si.h>
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#endif
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namespace {
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using namespace mp_units;
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using namespace mp_units::si::unit_symbols;
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// add a custom quantity type of kind isq::length
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QUANTITY_SPEC(horizontal_length, isq::length);
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// add a custom derived quantity type of kind isq::area
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// with a constrained quantity equation
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QUANTITY_SPEC(horizontal_area, isq::area, horizontal_length* isq::width);
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inline constexpr auto g = 1 * si::standard_gravity;
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inline constexpr auto air_density = isq::mass_density(1.225 * kg / m3);
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class StorageTank {
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quantity<horizontal_area[m2]> base_;
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quantity<isq::height[m]> height_;
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quantity<isq::mass_density[kg / m3]> density_ = air_density;
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public:
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constexpr StorageTank(const quantity<horizontal_area[m2]>& base, const quantity<isq::height[m]>& height) :
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base_(base), height_(height)
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{
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}
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constexpr void set_contents_density(const quantity<isq::mass_density[kg / m3]>& density)
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{
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assert(density > air_density);
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density_ = density;
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}
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[[nodiscard]] constexpr QuantityOf<isq::weight> auto filled_weight() const
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{
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const auto volume = isq::volume(base_ * height_); // TODO check if we can remove that cast
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const QuantityOf<isq::mass> auto mass = density_ * volume;
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return isq::weight(mass * g);
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}
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[[nodiscard]] constexpr quantity<isq::height[m]> fill_level(const quantity<isq::mass[kg]>& measured_mass) const
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{
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return height_ * measured_mass * g / filled_weight();
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}
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[[nodiscard]] constexpr quantity<isq::volume[m3]> spare_capacity(const quantity<isq::mass[kg]>& measured_mass) const
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{
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return (height_ - fill_level(measured_mass)) * base_;
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}
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};
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class CylindricalStorageTank : public StorageTank {
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public:
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constexpr CylindricalStorageTank(const quantity<isq::radius[m]>& radius, const quantity<isq::height[m]>& height) :
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StorageTank(quantity_cast<horizontal_area>(std::numbers::pi * pow<2>(radius)), height)
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{
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}
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};
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class RectangularStorageTank : public StorageTank {
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public:
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constexpr RectangularStorageTank(const quantity<horizontal_length[m]>& length, const quantity<isq::width[m]>& width,
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const quantity<isq::height[m]>& height) :
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StorageTank(length * width, height)
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{
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}
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};
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} // namespace
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int main()
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{
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const quantity height = isq::height(200 * mm);
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auto tank = RectangularStorageTank(horizontal_length(1'000 * mm), isq::width(500 * mm), height);
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tank.set_contents_density(1'000 * kg / m3);
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const auto duration = std::chrono::seconds{200};
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const quantity fill_time = value_cast<int>(quantity{duration}); // time since starting fill
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const quantity measured_mass = 20. * kg; // measured mass at fill_time
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const quantity fill_level = tank.fill_level(measured_mass);
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const quantity spare_capacity = tank.spare_capacity(measured_mass);
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const quantity filled_weight = tank.filled_weight();
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const QuantityOf<isq::mass_change_rate> auto input_flow_rate = measured_mass / fill_time;
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const QuantityOf<isq::speed> auto float_rise_rate = fill_level / fill_time;
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const QuantityOf<isq::time> auto fill_time_left = (height / fill_level - 1 * one) * fill_time;
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const quantity fill_ratio = fill_level / height;
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std::cout << MP_UNITS_STD_FMT::format("fill height at {} = {} ({} full)\n", fill_time, fill_level,
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fill_ratio.in(percent));
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std::cout << MP_UNITS_STD_FMT::format("fill weight at {} = {} ({})\n", fill_time, filled_weight, filled_weight.in(N));
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std::cout << MP_UNITS_STD_FMT::format("spare capacity at {} = {}\n", fill_time, spare_capacity);
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std::cout << MP_UNITS_STD_FMT::format("input flow rate = {}\n", input_flow_rate);
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std::cout << MP_UNITS_STD_FMT::format("float rise rate = {}\n", float_rise_rate);
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std::cout << MP_UNITS_STD_FMT::format("tank full E.T.A. at current flow rate = {}\n", fill_time_left.in(s));
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}
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