Cooling water leaves a plant warm. The water-balance page asks how much water a
campus takes and the toxics report asks what its discharge carries; this page asks the third
question — how much heat the Ottawa River can absorb before it breaches Ohio's
numeric temperature standard, and who is already spending that budget. Under
CWA §316(a), a discharger whose thermal load is more stringent than
necessary may seek alternative limits by demonstrating a balanced indigenous
community of fish and wildlife in the receiving water — which is why the biological
tolerances below sit alongside the temperature numbers.
Ohio daily-max criteriongrounded
29.4°C
OAC 3745-1-35 Table 35-11 (G)
[verified]
Design ambientgrounded
24.0°C
OH0026069 outfall 901 (Downstream Monitoring)
[verified]
Temperature headroommodeled
5.4°C
criterion − ambient
[inference]
Thermal capacity at 7Q10modeled
0.13MW
ρ·cp·Q·headroom · 0.2 cfs
[inference]
Ohio sets its numeric temperature criteria by geographic zone, not by
aquatic-life-use column — Ottawa River sits in lake_erie_basin_general (OAC 3745-1-35 Table 35-11 (G)),
whose peak-summer daily maximum falls in the Jun 16-30 half-month
period. The criterion is [reference] (the rule text); the design ambient
is [verified] — the corridor's own permit-required in-stream station
(OH0026069 outfall 901 (Downstream Monitoring)), a measured receiving-water temperature. It sits
downstream of that plant's own outfall, so it is not an undisturbed upstream background;
the zone's seasonal-average criterion (27.8 °C) is what the
screen falls back to without it.
What this screen is — and is not
Fully-mixed, at the cited design low flow, order-of-magnitude: no CORMIX plume model, no
mixing-zone credit, no decay. A mixed temperature over the daily maximum flags the need
for a permit-level thermal / §316(a) analysis — it is
not a finding of violation. The thermal assimilative capacity is
ρ·cp·Q·(criterion − ambient), so at a 0 cfs design flow (the Ottawa River's 1Q10) or an ambient
already at the criterion the capacity is zero and any heat load exceeds by
construction.
Bullet · fully-mixed temperature vs the criterionAt the 7Q10 design low flow, the Ottawa River has 5.4 °C of headroom to spend
scale · degrees Celsius
Ottawa River ambient (design)
[verified]
24 °C
Project BOSC · once through — mixed at 7Q10
[inference]
34 °C
Project BOSC · evaporative blowdown — mixed at 7Q10
[inference]
31.8 °C
LIMA REFINERY · OH0002623 — mixed at 7Q10
[verified]
31.9 °C
PCS NITROGEN OHIO LP · OH0002615 — mixed at 7Q10
[verified]
29.8 °C
LIMA WWTP · OH0026069 — mixed at 7Q10
[verified]
25.4 °C
The red mark is Ohio's 29.4 °C daily-maximum criterion for this zone and season. Each bar is that discharge's fully-mixed temperature at the cited 7Q10 — the permittees' bars from their own reported effluent temperature and flow, the modeled campus bars from its disclosed IT load, one per heat-partition scenario.
One load has no bar, and that is the finding. Project BOSC's
whole condenser rejection, fully mixed into a 0.2 cfs design flow, would raise the reach past the range water
stays liquid in — so the screen reports no temperature at all rather than a literal
rise of hundreds of degrees. The magnitude is carried as a ratio instead: see the
modeled section below. Its bars above are its partitions — how much of that
rejection each cooling archetype actually sends to the water.
The chart is not the whole corridor. OH0095346, OH0146552, OHGC02549 carry no bar because the screen resolves no
fully-mixed temperature for them — no reported
effluent temperature to screen, so nothing is asserted about their heat either way. They stay in the corridor
permit count below.
What the corridor already reports
Before modeling anything, read the record. Of the 6 NPDES permits sharing this
receiving water, 3
report an effluent temperature to EPA ECHO over the 2024-05-01..2024-10-31 warm season. Every
figure below is the permittee's own submission, reduced to °C by its reported unit — ICIS carries temperature under parameter 00010 (°C) and 00011 (°F), and this corridor uses both. [verified]
Permit
Outfall
Peak daily-max
Flow
Numeric limit
Mixed at 7Q10
LIMA REFINERY OH0002623
001 param 00011 · 8 obs
32.2 °C
3.7 MGD
monitor only 29.4 °C on outfall 003
31.9 °C
PCS NITROGEN OHIO LP OH0002615
001 param 00011 · 12 obs
30.0 °C
3.25 MGD
monitor only
29.8 °C
LIMA WWTP OH0026069
001 param 00010 · 12 obs
25.4 °C
12.77 MGD
monitor only
25.4 °C
OH0002623, OH0002615 report a peak
daily-maximum effluent temperature at or over the 29.4 °C criterion — from outfalls their permits require them to
measure but do not cap.
Monitor-only is the common case here. OH0002623, OH0002615, OH0026069 monitor effluent temperature under a permit that
carries no numeric thermal limit on the discharging outfall. That is a cited absence, not a clean bill of health — and a permit's ceiling and
its discharging outfall are often different outfalls, so a limit is reported here for
context and only ever compared within the outfall it binds. An exceedance count, where
one appears, is ECHO's own determination and is never computed by reading a value
against a limit.
The modeled campus heat load — Project BOSC
The campus holds no discharge permit, so there is nothing of its own to read. This row
is the condenser heat rejection derived from the disclosed IT load
(316.2 ± ~28.8 MW) — an [inference] about a facility that is not yet discharging, screened
on exactly the same reach, design flows, and criterion as the measured rows above, and
never conflated with them.
Project BOSC: ~316.2 MW condenser rejection vs Ottawa River thermal capacity — 2,470x over at 7Q10 (only 0.04% of the rejection exhausts the capacity) [critical].
Where the heat goes
The scenarios span the heat partition, not uncertainty in the
load: once-through sends the whole rejection to the stream by definition,
evaporative blowdown sends only the blowdown's sensible heat (the rest
leaves as latent heat to the air), and the conservative bound is the
ceiling. They sit two orders of magnitude apart — and the point of running all
three is that they all exhaust the reach's capacity.
Partition
Reaches the stream
In-stream heat
Effluent
Mixed at 7Q10
Conservative bound critical
100%
316.2 MW
—
—
Once-through critical
100%
316.2 MW
34.0 °C
34.0 °C
Evaporative blowdown critical
1.19%
3.769 MW
32.2 °C
31.8 °C
Even the smallest partition — the tower blowdown at 1.19%
of the rejection — clears the criterion at the design low flow. That robustness is
the claim, and it is why the headline does not rest on the conservative bound alone.
Grading the model against the record
Consistent with the record
The modelled once-through effluent runs 1.78 degC above the corridor's warmest observed industrial effluent — consistent. The reach's own reported in-stream temperature (OH0026069 outfall 901 (Downstream Monitoring)) is 3.8 degC below the reference design ambient the criteria table supplies, so the observed rung is the one used.
The verdict is about the model, not the facility. The derived
once-through effluent (34.0 °C) is read against the warmest
effluent temperature actually reported on this reach (32.2 °C , NPDES OH0002623 outfall 001 (LIMA REFINERY)) — an [inference] by analogy, never this facility's own figure.
Conservative means the screen runs hotter than the record, which is the
defensible direction; understated would mean the screen needs revisiting.
The closed-cycle off-ramp. OAC 3745-1-06 (O)(5): closed-cycle blowdown 2.5 MGD (3.868 cfs) vs 5% of the 0.2 cfs 7Q10 = 0.010 cfs — NOT exempt from the thermal-mixing-zone rule
The balanced indigenous community
A §316(a) demonstration turns on whether the receiving water still supports a
balanced indigenous community. These are the Great Lakes representative-important-species
thermal limits the screened mixed temperature is read against — federal guidance
(EPA-833-F-23-007 Table 3-5), [reference] , not law.
The screen evaluates them at this reach's binding design flow,
which here is the 1Q10 = 0 cfs — a dry channel, where every limit
is crossed by construction and the honest answer is no temperature at all rather
than a fabricated one. So the Crossed column below is read at the
warmest temperature this facility does resolve at the 7Q10 — 34.0 °C, its hottest heat partition.
Species
Life stage
Limit
Metric
Crossed at 34.0 °C
Opossum Shrimp Mysis relicta
NA
22.0 °C
acute upper
yes
Bloater Coregonus hoyi
Juvenile
27.0 °C
acute upper
yes
Alewife Alosa pseudoharengus
Adult
28.6 °C
acute upper
yes
Mottled Sculpin Cottus bairdi
Adult
30.4 °C
acute upper
yes
American Gizzard Shad Dorosoma cepedianum
Juvenile
31.0 °C
acute upper
yes
Spottail Shiner Notropis hudsonius
Adult
32.8 °C
acute upper
yes
Walleye Sander vitreus
Juvenile
33.0 °C
acute upper
yes
Zebra Mussel Dreissena polymorpha
Adult
33.0 °C
acute upper
yes
How to read these numbers
A MODELLED (data-center) row's heat load is the CONDENSER heat rejection (IT x cooling overhead) — an inference about a facility that is not yet discharging. An INDUSTRIAL row's is the permittee's own reported effluent temperature x reported flow — a measurement. They are screened identically from there on but never conflated; read `kind` before quoting a number.
Fully-mixed, design-low-flow, order-of-magnitude: no CORMIX plume model, no mixing-zone credit, no decay. T_mixed above the daily-max criterion flags the need for a permit-level thermal / CWA §316(a) analysis, NOT an automatic violation.
The thermal assimilative capacity is rho*cp*Q*(daily_max - ambient). At a 0 cfs design flow (the Ottawa 1Q10) or an ambient already at the criterion the capacity is 0 — any heat load exceeds by construction (no Inf ΔT, mirroring the toxics screen).
The design ambient is a live NWIS 00010 reading where the gage carries one, else the reach's own reported in-stream (upstream/downstream) DMR monitoring, else the zone's seasonal-average temperature criterion as a stated design ambient. An in-stream station sits downstream of that plant's own outfall, so it is a measured in-stream temperature, not an undisturbed upstream background.
Cooling scenarios span the heat PARTITION, not uncertainty in the load: `once_through` sends the whole rejection to the stream by definition, `evaporative_blowdown` sends only the blowdown's sensible heat (the rest leaves as latent heat to the air) at a temperature CALIBRATED to an observed corridor analog — an [inference] by analogy, never this facility's own figure. `conservative_bound` is the Phase-2 ceiling.
Reported DMR values are verbatim from the permittee's submissions via ECHO and reduced to degC by their REPORTED unit (00011 is Fahrenheit, 00010 Celsius); an exceedance count is ECHO's own determination, never computed here by comparing a value to a limit. A permit with no numeric thermal limit is recorded as monitor-only — a cited absence, not a clean bill of health.
The OAC 3745-1-06 (O)(5) closed-cycle-blowdown exemption (blowdown < 5% of the 7Q10) is evaluated and surfaced whether or not it applies. RIS tolerances are the Great Lakes biological limits for a §316(a) balanced-indigenous-community read, [reference] (federal guidance, not law).
The volume side of the same cooling load is on the water balance page
; the chemistry side is in toxics and the corridor .
Source: watermark.hydrology.cooling_models (condenser heat rejection) x EPA ECHO DMR effluent temperature (parameters 00010/00011) + flow (50050) x Ohio EPA cited design low flows (data/reference/hydrology/low-flow-7q10.yaml) x Ohio temperature criteria (data/reference/wqs/ohio-temperature-criteria.yaml) x Great Lakes RIS tolerances (data/reference/thermal/great-lakes-ris-thermal-tolerances.yaml, EPA-833-F-23-007)