Seeing Markets·Chapter 1: Fundamentals of electricity markets
Chapter 1
Fundamentals of electricity markets
Why electricity is traded as a market, how a market clears, who plays in it,
and when those games are played. This chapter sets up the vocabulary you'll
need for every chapter after it.
For most of the 20th century, a single entity — usually a state-owned
utility — decided who produced electricity, when, and at what cost.
One operator, one plan, one bill.
Today, most countries have moved to a different model: many independent
producers compete to sell electricity, and a market decides who wins.
The system operator no longer dispatches plants by hand — it runs an
auction.
Why the change? Markets push costs down through
competition. They also make it possible to integrate thousands of small
renewable producers — wind turbines, solar farms, batteries — that no
central planner could schedule by hand.
But replacing a single decision-maker with a market raises a new
question: how do you make sure the right amount of electricity gets
produced at the right time, when nobody is in charge anymore?
The two organizational models
A centralized power system works like a top-down command
chain. One operator owns or controls the plants, runs the grid, and
decides everything. Most countries operated this way until the 1990s.
An electricity market works like an auction. Producers
announce how much they can supply and at what price. Consumers (or their
retailers) announce how much they want to buy and at what price. A
market operator matches them.
Both models have to solve the same physics problem — supply must equal
demand at every instant — but they reach the answer through very
different mechanisms.
1.2
How a market clears
Forget electricity for a moment. Imagine an apple market. Sellers
announce how many apples they have and the minimum price they'll
accept. Buyers announce how many apples they want and the maximum
price they'll pay.
Sort sellers from cheapest to most expensive — that's the
supply curve. Sort buyers from highest bid to lowest —
that's the demand curve. Where they cross is the
market clearing price. Everyone trades at that price,
no matter what they originally asked for.
The merit order
The rule of sorting sellers from cheapest to most expensive is called
the merit order principle. It guarantees that demand
is met at the lowest possible total cost.
In electricity, this means cheap renewables (wind, solar) clear first,
then cheap thermal (nuclear, hydro), then more expensive gas, and
finally — only if needed — the most expensive peaking plants.
Social welfare
The area between the supply and demand curves is called
social welfare — the total value created by the trade.
The market operator's job is to maximize it.
By maximizing welfare, the operator simultaneously minimizes the total
cost paid by buyers and maximizes the total value received by
sellers. Both sides win compared to no trade at all.
Uniform pricing
In a uniform price auction, all winning sellers
receive the same price — the marginal one — even if they offered less.
A wind farm that bid €5/MWh and a gas plant that bid €80/MWh both get
paid €80/MWh, if gas was the last unit needed.
This sounds generous to the wind farm, but it's the design that makes
producers truthful: bidding your real cost is optimal under
uniform pricing. We'll see why in chapter 5.
1.3
Who plays in the market
A real electricity market has more than just buyers and sellers.
Around the auction sit several roles, each with a specific job.
Producers
Conventional: coal, gas, nuclear, hydro, combined heat
and power. Renewable: wind, solar, biomass. Many
producers own a portfolio of plants spread across the grid.
Consumers
Large consumers are industrial plants that buy
directly from the wholesale market. Retailers are
intermediaries: they buy in bulk and resell to households and small
businesses.
The referees
The market operator runs the auction and announces
the clearing price. In the Nordics, this is Nord Pool; in
Germany, EPEX SPOT.
The transmission system operator (TSO) keeps the
grid stable in real time. In Denmark, this is Energinet; the
equivalent in the U.S. is the Independent System Operator (ISO).
The distribution system operator (DSO) handles the
low-voltage network — the wires that bring electricity from the
high-voltage grid to your home.
The regulator writes the rules and enforces them. In
Denmark, this is Forsyningstilsynet; in the U.S., it's the
Federal Energy Regulatory Commission (FERC).
Why so many?
Each role exists because electricity needs both an economic
decision (who produces, at what price) and a physical
guarantee (that supply equals demand on every wire, every second).
Markets handle the first; system operators handle the second.
1.4
When and where markets happen
One trade for tomorrow's 6 PM is not really one trade. It's a chain of
markets that close at different times before delivery, each one fixing
the deal a little more precisely.
The timeline
Futures markets trade years to weeks in advance. They
are purely financial — used by producers and retailers to hedge against
price swings. We don't cover them in this course.
The day-ahead market is the main one. Each day at
noon, 24 hourly auctions for the next day are cleared in a single
shot. This is where most volume trades.
The intraday market opens after the day-ahead and
stays open until shortly before delivery. It lets producers and buyers
adjust their positions as forecasts update — a wind farm that
over-predicted output can buy back electricity here.
The balancing market closes the last gap, in real
time. The TSO uses it to keep frequency at exactly 50 Hz, calling on
fast-reacting plants and batteries when needed.
Three product types
Beyond timing, markets also differ by what they trade.
Energy markets trade MWh (the actual electricity).
Capacity markets pay producers just for being
available, even if not used. Ancillary services
cover the grid-stability products: reserves, voltage control,
black-start capability.
Geography matters
Europe uses zonal pricing: one price per country or
bidding zone. Some countries split into several zones — Denmark has
two (DK1, DK2), Sweden four, Norway five, and Italy six. Within a
single zone, the grid is assumed to have no internal constraints.
The U.S. uses nodal pricing: one price per substation,
sometimes thousands of prices in a single market. Each node reflects
the local cost of delivering one more MWh — including grid congestion.
Same fundamental auction, different geographic resolution. The
consequences of this choice are the subject of chapter 3.
Recap
Markets replaced centralized planning to integrate competition and renewables.
Supply meets demand at a clearing price that maximizes social welfare.
Producers, consumers, TSOs, market operators, and regulators each play a defined role.
Trading happens in a chain — futures, day-ahead, intraday, balancing — over different timescales.