IB Environmental Systems and Societies

Welcome to the IB Environmental Systems and Societies wikibook. Feel free to contribute to this book, or ask questions on the discussion page. This book intends to act as an overview of the IB Environmental Systems and Societies Topics from the Syllabus.

Core

Topic 1: Systems and models

Assessment Statement: These are what the IB has designated as objectives for the unit.

1.1.1 Outline the concept and characteristic of systems.

1.1.2 Apply the systems concepts on a range of scales

1.1.3 Define the terms closed system, open system, isolated system

These terms should be applied when characterizing real systems.

  1. An open system exchanges matter and energy with its surroundings (for example, an ecosystem).
  2. A closed system exchanges energy but not matter; the “Biosphere II” experiment was an attempt to model this. Strictly, closed systems do not occur naturally on Earth, but all the global cycles of matter, for example,the water and nitrogen cycles, approximate to closed systems.
  3. An isolated system exchanges neither matter nor energy. No such systems exist (with the possible exception of the entire cosmos).

1.1.4 Describe how the first and second laws of thermodynamics are relevant to environmental systems

Entropy refers to the spreading out or dispersal of energy. As energy is dispersed to the environment, there will always be a reduction in the amount of energy pased on to the next trophic level.


Both laws should be examined in relation to the energy transformations and maintenance of order in living systems.

1.1.5 Explain the nature of equilibria

Students should appreciate, however, that some systems may undergo long-term changes to their equilibrium while retaining an integrity to the system (for example, succession). The relative stability of an equilibrium—the tendency of the system to return to that original equilibrium following disturbance, rather than adopting a new one— should also be understood.


1.1.6 Define and explain the principles of positive feedback and negative feedback

The self-regulation of natural systems is achieved by the attainment of equilibrium through feedback systems.

1.1.7 Describe transfer and transformation processes

Transfers normally flow through a system and involve a change in location. Transformations lead to an interaction within a system in the formation of a new end product, or involve a change of state. Using water as an example, run-off is a transfer process and evaporation is a transformation process. Dead organic matter entering a lake is an example of a transfer process; decomposition of this material is a transformation process.

1.1.8 Distinguish between flows (inputs and outputs) storages (stock) in relation to systems

1.1.9 Construct and analyze quantitative models involving flows and storages in a system.

1.1.10 Evaluate the strengths and limitations of models

A model is a simplified description designed to show the structure or workings of an object, system or concept. In practice, some models require approximation techniques to be used. For example, predictive models of climate change may give very different results. In contrast, an aquarium may be a relatively simple ecosystem but demonstrates many ecological concepts.

Topic 2: The ecosystem

  1. Structure
  2. Measuring abiotic components of the system
  3. Measuring biotic components of the system
  4. Biomes
  5. Function
  6. Changes
  7. Measuring changes in the system

Topic 3: Human population, carrying capacity and resource use

  1. Population dynamics
  2. Resources—natural capital
  3. Energy resources
  4. The soil system
  5. Food Resources
  6. Water resources
  7. Limits to growth
  8. Environmental demands of human populations

Topic 4: Conservation and biodiversity

  1. Biodiversity in ecosystems
  2. Evaluating biodiversityand vulnerability
  3. Conservation of biodiversity

Topic 5: Pollution management

  1. Nature of pollution
  2. Detection and monitoring of pollution
  3. Approaches to pollution management
  4. Eutrophication
  5. Solid domestic waste
  6. Depletion of stratospheric ozone
  7. Urban air pollution
  8. Acid deposition

Topic 6: The issue of global warming

increase mean temperatures

Topic 7: Environmental value systems

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