6
Knowledge

Engine

Machine designed to produce mechanical energy from another form of energy

Object

An engine or motor is a machine designed to convert one or more forms of energy into mechanical energy. Available energy sources include potential energy (e.g. energy of the Earth's gravitational field as exploited in hydroelectric power generation), heat energy (e.g. geothermal), chemical energy, electric potential and nuclear energy (from nuclear fission or nuclear fusion). Many of these processes generate heat as an intermediate energy form; thus heat engines have special importance. Some natural processes, such as atmospheric convection cells convert environmental heat into motion (e.g. in the form of rising air currents). Mechanical energy is of particular importance in transportation, but also plays a role in many industrial processes such as cutting, grinding, crushing, and mixing. Mechanical heat engines convert heat into work via various thermodynamic processes. The internal combustion engine is perhaps the most common example of a mechanical heat engine in which heat from the combustion of a fuel causes rapid pressurisation of the gaseous combustion products in the combustion chamber, causing them to expand and drive a piston, which turns a crankshaft. Unlike internal combustion engines, a reaction engine (such as a jet engine) produces thrust by expelling reaction mass, in accordance with Newton's third law of motion. Apart from heat engines, electric motors convert electrical energy into mechanical motion, pneumatic motors use compressed air, and clockwork motors in wind-up toys use elastic energy. In biological systems, molecular motors, like myosins in muscles, use chemical energy to create forces and ultimately motion (a chemical engine, but not a heat engine). Chemical heat engines which employ air (ambient atmospheric gas) as a part of the fuel reaction are regarded as airbreathing engines. Chemical heat engines designed to operate outside of Earth's atmosphere (e.g. rockets, deeply submerged submarines) need to carry an additional fuel component called the oxidizer (although there exist super-oxidizers suitable for use in rockets, such as fluorine, a more powerful oxidant than oxygen itself); or the application needs to obtain heat by non-chemical means, such as by means of nuclear reactions.

ChaliceThe bearer recovers 41% of the damage it deals.
Epic10261 / 378352

CardsKnowledge

Engine

Machine designed to produce mechanical energy from another form of energy

An engine or motor is a machine designed to convert one or more forms of energy into mechanical energy. Available energy sources include potential energy (e.g. energy of the Earth's gravitational field as exploited in hydroelectric power generation), heat energy (e.g. geothermal), chemical energy, electric potential and nuclear energy (from nuclear fission or nuclear fusion). Many of these processes generate heat as an intermediate energy form; thus heat engines have special importance. Some natural processes, such as atmospheric convection cells convert environmental heat into motion (e.g. in the form of rising air currents). Mechanical energy is of particular importance in transportation, but also plays a role in many industrial processes such as cutting, grinding, crushing, and mixing. Mechanical heat engines convert heat into work via various thermodynamic processes. The internal combustion engine is perhaps the most common example of a mechanical heat engine in which heat from the combustion of a fuel causes rapid pressurisation of the gaseous combustion products in the combustion chamber, causing them to expand and drive a piston, which turns a crankshaft. Unlike internal combustion engines, a reaction engine (such as a jet engine) produces thrust by expelling reaction mass, in accordance with Newton's third law of motion. Apart from heat engines, electric motors convert electrical energy into mechanical motion, pneumatic motors use compressed air, and clockwork motors in wind-up toys use elastic energy. In biological systems, molecular motors, like myosins in muscles, use chemical energy to create forces and ultimately motion (a chemical engine, but not a heat engine). Chemical heat engines which employ air (ambient atmospheric gas) as a part of the fuel reaction are regarded as airbreathing engines. Chemical heat engines designed to operate outside of Earth's atmosphere (e.g. rockets, deeply submerged submarines) need to carry an additional fuel component called the oxidizer (although there exist super-oxidizers suitable for use in rockets, such as fluorine, a more powerful oxidant than oxygen itself); or the application needs to obtain heat by non-chemical means, such as by means of nuclear reactions.

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How these stats are calculated

Every value is derived from a measurement of the article, with no manual input. The measurements below were taken on September 6, 2026.

ObjectEquips onto a being and lends it its values.

POW

Power

Article length

89 / 120

REL

Reliability

Reference density and count

43 / 120

DUR

Durability

Age and revision count

350 / 400

HAN

Handling

Recent edit activity and view trend

14 / 30

REN

Renown

Language editions and incoming links

89 / 100

Article size

52 kB

Sources cited

54

Sections

37

Revisions

2,969

Revisions in 90 days

10

Incoming links

8,315

Language editions

116

Views over 12 months

169,342

Created on

October 14, 2001

Wikidata statements

78

Epic — 99.8th percentile of notability

Rarity ranks cards by how famous their subject is: readership, number of languages and incoming links. This tier appears in 4.50% of cards pulled from packs. It says nothing about the card’s power, which is 657 out of 1000 here.

Effect

This card does not fight on its own: it carries a single effect, chosen by its dominant measure.

ChaliceThe bearer recovers 41% of the damage it deals.

Knowledgetype matchups

Strong against

CosmosLand

Weak against

MythPower

The source article

This card maps to the Wikidata item Q44167, present in 116 Wikipedia editions.

Illustration : file on Wikimedia CommonsZephyris licence CC BY-SA 3.0. Article text licensed under CC BY-SA 4.0.

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