Course review

1.2 Systems

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Learning objective

1.2.1—Systems definition

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• Sets of interacting or interdependent components • Components organized to create functional whole

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Learning objective

1.2.2—Systems approach

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• Holistic way of visualizing complex interactions • Applied to ecological or societal situations • Has storages and flows (inputs and outputs of energy and matter)

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Learning objective

1.2.3—System diagrams

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• Storages: rectangular boxes • Flows: arrows (direction indicates flow direction)

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Learning objective

1.2.4—Types of flows

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• Transfers: change in location of energy or matter • Transformations: change in chemical nature, state, or energy

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Learning objective

1.2.5—Open vs. closed systems

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• Open: exchanges both energy and matter across boundary • Closed: exchanges only energy across boundary • Most systems are open (e.g., local ecosystem, Biosphere 2) • Global geochemical cycles approximate closed systems

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Learning objective

1.2.6—Earth as integrated system

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• Encompasses biosphere, hydrosphere, cryosphere, geosphere, atmosphere, anthroposphere • Gaia hypothesis: Earth as single integrated system

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Learning objective

1.2.7—System scales

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• Small-scale: bromeliad in rainforest • Large-scale: entire rainforest • Global: atmospheric circulation, Gaia hypothesis

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Learning objective

1.2.8—Negative feedback loops

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• Output inhibits/reverses same process to reduce change • Stabilizing, counteract deviation • Example: Daisyworld model (temperature regulation)

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Learning objective

1.2.9—Stable equilibrium in ecosystems

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• Maintained by stabilizing negative feedback loops • Steady-state equilibrium: inputs constantly balanced with outputs • Tendency to return to equilibrium following disturbance

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Learning objective

1.2.10—Positive feedback loops

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• Disturbance leads to amplification of disturbance • Destabilizing, drives system away from equilibrium • Examples: population decline → reduced reproduction → further decline • Melting ice → reduced albedo → greater warming

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Learning objective

1.2.11—Tipping points

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• Positive feedback drives system towards tipping point • Minimum change causing destabilization • System shifts to new equilibrium/stable state

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Learning objective

1.2.12—Tipping point effects

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• Small alteration → large overall changes • Result in regime shifts between alternative stable states • Example: nutrient concentrations → eutrophication

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Learning objective

1.2.13—Models

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• Simplified representation of reality • Used to understand system function and predict responses • Forms: graphs, diagrams, equations, simulations, words

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Learning objective

1.2.14—Model limitations

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• Simplification involves approximation • Results in loss of accuracy • Example: climate change predictions, population growth projections

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Learning objective

1.2.15—Emergent properties

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• Appear from component interactions • Components themselves don't have these properties • Examples: predator-prey oscillations, trophic cascades

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Learning objective

1.2.16—System resilience

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• Tendency to avoid tipping points and maintain stability • Capacity to resist damage and recover from disturbance

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Learning objective

1.2.17—Factors affecting resilience

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• Diversity within systems • Size of storages • Affect speed of response to change (time lags) • Example: prairie systems vs. monoculture crops

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Learning objective

1.2.18—Human impacts on resilience

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• Reducing storages and diversity • Example: deforestation reduces storage size and diversity

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