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Module 4 · Lesson

When the next megawatt is worth less than zero

Dispatch signed offers under low load, connect system-minimum conditions to potential curtailment, and distinguish offers from settlement prices.
  • 30 minutes
  • Intermediate
  • Editorial status: Domain Reviewed
  • Market-neutral + ERCOT case

Market question. How can a generator rationally offer below zero, and why can high renewable output produce either curtailment, a negative price, or neither?

Step 1

Allow signed offers before explaining signed prices

A negative offer means a resource is willing, under the applicable rules and conditions, to pay to remain dispatched for the next increment. Possible incentives can include avoiding shutdown and restart costs, honoring operating constraints, preserving intertemporal value, or retaining production-linked revenue. Which consideration is permitted in an offer is market-specific.

A negative settlement price is a market outcome at a location and interval. It can be set or shaped by negative offers, but also by transmission, losses, system constraints, adders, and pricing rules. Offer and settlement price have the same units but are not the same object.

Worked example

A signed synthetic offer stack

Low-load signed offer stack
BlockAvailable capacityOffer
Wind80 MW−$20/MWh
Inflexible thermal block60 MW−$5/MWh
Flexible gas100 MW$40/MWh

At 100 MW demand, wind dispatches 80 MW and the inflexible block dispatches 20 MW. The inflexible block is marginal, so the uniform-price teaching model clears at −$5/MWh. Flexible gas is backed down to zero.

80 MW wind + 20 MW inflexible = 100 MW; modeled price = −$5/MWh
Negative clearing-price example

If demand rises to 150 MW, all 80 MW of wind and 60 MW of inflexible capacity run, then gas supplies 10 MW. Gas becomes marginal and the modeled price is $40/MWh. Renewable output is still high, but price is positive.

Interactive figureMerit-order stackGuided view
-$5/MWh clearing price. Inflexible thermal block is marginal.100 MW dispatched from 240 MW available.

Pause and predict

Demand falls from 100 MW to 60 MW with offers unchanged. Which block backs down first in the signed stack?

Step 2

Locate the system-minimum condition

Low net load leaves less room for flexible conventional output, storage charging, exports, and other balancing actions. A teaching system minimum represents the aggregate output or operating floor that cannot be reduced within the simplified interval. When net load falls below that assumption, the engine reports potential curtailment:

potential curtailment = max(0, system minimum − net load)
Teaching potential-curtailment condition

In the registered spring hour at 12:00, synthetic load is 820 MW, wind is 300 MW, and solar is 450 MW. Net load is 70 MW. With a 120 MW system-minimum assumption, potential curtailment is 50 MW:

net load = 820 − 300 − 450 = 70 MW; potential curtailment = 120 − 70 = 50 MW
Spring low-net-load calculation
Interactive figureLoad and net-load explorerOpen sandbox
  • Load — solid line
  • Wind — dashed line
  • Solar — dotted line
  • Net load — dash-dot line
Preset conditions
Hourly values shown in the chart
HourLoadWindSolarNet loadRampPotential curtailment
00:00680 MW260 MW0 MW420 MW0 MW
01:00650 MW250 MW0 MW400 MW-20 MW0 MW
02:00620 MW240 MW0 MW380 MW-20 MW0 MW
03:00600 MW230 MW0 MW370 MW-10 MW0 MW
04:00590 MW220 MW0 MW370 MW0 MW0 MW
05:00610 MW230 MW0 MW380 MW10 MW0 MW
06:00650 MW250 MW0 MW400 MW20 MW0 MW
07:00700 MW280 MW40 MW380 MW-20 MW0 MW
08:00750 MW300 MW120 MW330 MW-50 MW0 MW
09:00780 MW320 MW220 MW240 MW-90 MW0 MW
10:00800 MW330 MW320 MW150 MW-90 MW0 MW
11:00810 MW320 MW400 MW90 MW-60 MW30 MW
12:00820 MW300 MW450 MW70 MW-20 MW50 MW
13:00830 MW280 MW430 MW120 MW50 MW0 MW
14:00850 MW260 MW350 MW240 MW120 MW0 MW
15:00880 MW250 MW240 MW390 MW150 MW0 MW
16:00930 MW240 MW120 MW570 MW180 MW0 MW
17:001,000 MW230 MW40 MW730 MW160 MW0 MW
18:001,080 MW240 MW0 MW840 MW110 MW0 MW
19:001,100 MW250 MW0 MW850 MW10 MW0 MW
20:001,040 MW270 MW0 MW770 MW-80 MW0 MW
21:00940 MW290 MW0 MW650 MW-120 MW0 MW
22:00830 MW300 MW0 MW530 MW-120 MW0 MW
23:00740 MW280 MW0 MW460 MW-70 MW0 MW
Minimum net load: 70 MW. Maximum upward ramp: 180 MW. System-minimum assumption is crossed; potential curtailment reaches 50 MW.Crossing the system-minimum assumption marks a potential curtailment condition, not an ISO dispatch conclusion.

The 50 MW result is a condition indicator, not an ISO instruction. Actual resolution could involve renewable curtailment, thermal decommitment or redispatch, storage charging, exports, demand response, transmission actions, or other market/operator tools. Timing, topology, ramping, and resource-specific limits decide which action is feasible.

Curtailment and negative price can separate

Curtailment can occur because energy cannot be delivered through a constraint even while another location has a positive price. A negative price can occur without renewable generation when inflexible supply and low load create surplus conditions. High renewables raise the likelihood of low residual demand in some systems, but they are neither necessary nor sufficient for a negative price.

Step 3

Build a causal test instead of a renewable shortcut

Use four questions:

  1. Quantity: Is load or net load low relative to available and minimum output?
  2. Offers: Which accepted block has the highest signed offer at the margin?
  3. Feasibility: Can surplus energy move, be stored, or be absorbed, or is transmission/operational flexibility binding?
  4. Settlement: Which location, interval, adders, losses, corrections, and market rules define the published price?

ERCOT publishes market prices, while NREL's scenario research documents the need for flexibility and curtailment in high-renewable systems. Neither source turns a renewable-output percentage into a deterministic price rule. A causal analysis needs the contemporaneous offer stack and operational constraints.

Apply the mechanism

Using the signed stack, state dispatch and price at 100 MW, 60 MW, and 150 MW demand. Then use the spring hour values to calculate potential curtailment and explain why neither high renewables nor a negative offer guarantees a negative settlement price.

Takeaways

  • Offers are signed finite economic inputs; demand and capacity remain non-negative physical inputs.
  • In the signed stack, 100 MW demand clears at −$5/MWh, 60 MW at −$20/MWh, and 150 MW at $40/MWh.
  • The spring hour has 70 MW net load against a 120 MW system minimum, indicating 50 MW of potential curtailment.
  • Negative offers, negative settlement prices, and curtailment are related but distinct; renewables guarantee none of them.

Selected sources

Sources and model boundaries

  1. Federal Energy Regulatory Commission: Energy PrimerRetrieved 2026-08-03.

    A broad federal primer; it does not substitute for market-specific tariff and operating-rule analysis.

  2. National Renewable Energy Laboratory: Renewable Electricity Futures StudyRetrieved 2026-08-03.

    Scenario-based integration research; it supports curtailment and flexibility concepts but is not a forecast, a price-formation rule, or ERCOT operating guidance.

  3. ERCOT: Market PricesObserved: Operating day 2026-01-24; corrected RTM files approved 2026-06-01.Retrieved 2026-08-03.

    ERCOT publishes observed prices and correction archives. January 24, 2026 analysis must use corrected RTM files; prices alone do not reconstruct dispatch, offers, constraints, losses, adders, or settlements.