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Features/integrate stochastic programming #809

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13 changes: 13 additions & 0 deletions src/oemof/solph/_models.py
Original file line number Diff line number Diff line change
Expand Up @@ -311,6 +311,19 @@ def _add_parent_block_sets(self):
initialize=self.flows.keys(), ordered=True, dimen=2
)


self.FIRSTSTAGE_FLOWS = po.Set(
initialize=[
k
for (k, v) in self.flows.items()
if hasattr(v, "firststage")
],
ordered=True,
dimen=2,
within=self.FLOWS,
)


self.BIDIRECTIONAL_FLOWS = po.Set(
initialize=[
k
Expand Down
24 changes: 24 additions & 0 deletions src/oemof/solph/components/experimental/_ancillary_services.py
Original file line number Diff line number Diff line change
@@ -0,0 +1,24 @@
# -*- coding: utf-8 -*-

"""
In-development component for ancillary services demand

SPDX-FileCopyrightText: Ekaterina Zolotarevskaia (e-zolotarevskaya)

SPDX-License-Identifier: MIT

"""
from oemof.solph.components._sink import Sink

class AncillaryServices(Sink):
"""
request
timeindex
price
"""
def __init__(self, request, timeindex, price):
self.request = request
self.timeindex = timeindex
self.price = price


89 changes: 66 additions & 23 deletions src/oemof/solph/flows/_flow.py
Original file line number Diff line number Diff line change
Expand Up @@ -24,6 +24,8 @@
from pyomo.core import NonNegativeIntegers
from pyomo.core import Set
from pyomo.core import Var
from pyomo.core import Expression
from pyomo.core import quicksum
from pyomo.core.base.block import SimpleBlock

from oemof.solph._plumbing import sequence
Expand Down Expand Up @@ -394,6 +396,18 @@ def _create(self, group=None):

# ######################### CONSTRAINTS ###############################

# def _fix_value_rule(model):
# """"""
# for inp, out in m.FIRSTSTAGE_FLOWS:
# for t in m.TIMESTEPS:
# self.fix_value_constr.add(
# (inp, out, t),
# m.flow[inp, out, t] ==
# m.flows[inp, out].fix[t] * m.flows[inp, out].nominal_value)
#
# self.fix_value_constr = Constraint(m.FIRSTSTAGE_FLOWS, m.TIMESTEPS, noruleinit=True)
# self.fix_value_build = BuildAction(rule=_fix_value_rule)

Comment on lines +399 to +410
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This is obsolete..

def _flow_summed_max_rule(model):
"""Rule definition for build action of max. sum flow constraint."""
for inp, out in self.SUMMED_MAX_FLOWS:
Expand Down Expand Up @@ -480,30 +494,59 @@ def _objective_expression(self):
"""
m = self.parent_block()

variable_costs = 0
gradient_costs = 0
self.first_stage_variable_costs = quicksum(
m.flow[i, o, t]
* m.objective_weighting[t]
* m.flows[i, o].variable_costs[t]
for t in m.TIMESTEPS
for i, o in m.FIRSTSTAGE_FLOWS
if m.flows[i, o].variable_costs[0] is not None
)

for i, o in m.FLOWS:
if m.flows[i, o].variable_costs[0] is not None:
for t in m.TIMESTEPS:
variable_costs += (
m.flow[i, o, t]
* m.objective_weighting[t]
* m.flows[i, o].variable_costs[t]
)
self.variable_costs = quicksum(
m.flow[i, o, t]
* m.objective_weighting[t]
* m.flows[i, o].variable_costs[t]
for t in m.TIMESTEPS
for i, o in m.FLOWS
if m.flows[i, o].variable_costs[0] is not None
)

if m.flows[i, o].positive_gradient["ub"][0] is not None:
for t in m.TIMESTEPS:
gradient_costs += (
self.positive_gradient[i, o, t]
* m.flows[i, o].positive_gradient["costs"]
)
self.first_stage_gradient_costs = quicksum(
self.positive_gradient[i, o, t]
* m.flows[i, o].positive_gradient["costs"]
for t in m.TIMESTEPS
for (i, o) in m.FIRSTSTAGE_FLOWS
if m.flows[i, o].positive_gradient["ub"][0] is not None
)

if m.flows[i, o].negative_gradient["ub"][0] is not None:
for t in m.TIMESTEPS:
gradient_costs += (
self.negative_gradient[i, o, t]
* m.flows[i, o].negative_gradient["costs"]
)
self.gradient_costs = quicksum(
self.positive_gradient[i, o, t]
* m.flows[i, o].positive_gradient["costs"]
for t in m.TIMESTEPS
for (i, o) in m.FLOWS
if m.flows[i, o].positive_gradient["ub"][0] is not None
)

return variable_costs + gradient_costs
self.first_stage_gradient_costs += quicksum(
self.negative_gradient[i, o, t]
* m.flows[i, o].positive_gradient["costs"]
for t in m.TIMESTEPS
for (i, o) in m.FIRSTSTAGE_FLOWS
if m.flows[i, o].negative_gradient["ub"][0] is not None
)

self.gradient_costs += quicksum(
self.positive_gradient[i, o, t]
* m.flows[i, o].negative_gradient["costs"]
for t in m.TIMESTEPS
for (i, o) in m.FLOWS
if m.flows[i, o].negative_gradient["ub"][0] is not None
)

return (
self.variable_costs
+ self.first_stage_variable_costs
+ self.gradient_costs
+ self.first_stage_gradient_costs
)