Source code for watertap.unit_models.zero_order.microbial_battery_zo

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# through Lawrence Berkeley National Laboratory, Oak Ridge National Laboratory,
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"""
This module contains a zero-order representation of a microbial battery water
treatment unit.
"""

import pyomo.environ as pyo
from pyomo.environ import Var, units as pyunits
from idaes.core import declare_process_block_class
from watertap.core import build_sido_reactive, constant_intensity, ZeroOrderBaseData


# Some more information about this module
__author__ = "Travis Arnold"


[docs]@declare_process_block_class("MicrobialBatteryZO") class MicrobialBatteryData(ZeroOrderBaseData): """ Zero-Order model for a microbial battery water treatment unit. """ CONFIG = ZeroOrderBaseData.CONFIG()
[docs] def build(self): super().build() self._tech_type = "microbial_battery" build_sido_reactive(self) constant_intensity(self) # Create hydraulic retention time variable self.HRT = Var( units=pyunits.hr, bounds=(0, None), doc="Hydraulic retention time of water treatment unit", ) self._perf_var_dict["Hydraulic Retention Time"] = self.HRT self._fixed_perf_vars.append(self.HRT) # Create reactor volume variable self.reactor_volume = Var( units=pyunits.m**3, bounds=(0, None), doc="Volume of water treatment unit", ) self._perf_var_dict["Reactor Volume"] = self.reactor_volume @self.Constraint(self.flowsheet().time, doc="Constraint for reactor volume.") def reactor_volume_rule(b, t): return b.reactor_volume == ( pyunits.convert( b.HRT * b.properties_in[t].flow_vol, to_units=pyunits.m**3 ) )
@property def default_costing_method(self): return self.cost_microbial_battery
[docs] @staticmethod def cost_microbial_battery(blk): """ General method for costing microbial battery treatment unit. """ t0 = blk.flowsheet().time.first() # Get parameter dict from database parameter_dict = blk.unit_model.config.database.get_unit_operation_parameters( blk.unit_model._tech_type, subtype=blk.unit_model.config.process_subtype ) # Get costing parameter sub-block for this technology sizing_cost = blk.unit_model._get_tech_parameters( blk, parameter_dict, blk.unit_model.config.process_subtype, ["sizing_cost"], ) # Add cost variable and constraint blk.capital_cost = pyo.Var( initialize=1, units=blk.config.flowsheet_costing_block.base_currency, bounds=(0, None), doc="Capital cost of unit operation", ) expr = pyo.units.convert( blk.unit_model.properties_in[t0].flow_vol * sizing_cost, to_units=blk.config.flowsheet_costing_block.base_currency, ) # Determine if a costing factor is required blk.costing_package.add_cost_factor( blk, parameter_dict["capital_cost"]["cost_factor"] ) blk.capital_cost_constraint = pyo.Constraint( expr=blk.capital_cost == blk.cost_factor * expr ) # Register flows blk.config.flowsheet_costing_block.cost_flow( blk.unit_model.electricity[t0], "electricity" ) blk.config.flowsheet_costing_block.cost_flow( blk.unit_model.properties_in[t0].flow_mass_comp["filtration_media"], "filtration_media", ) blk.config.flowsheet_costing_block.cost_flow( blk.unit_model.properties_byproduct[t0].flow_mass_comp["filtration_media"], "filtration_media_disposal", )