Environmental Systems & Societies SL
Environmental Systems & Societies SL
9
Chapters
219
Notes
Unit 1 - Foundations Of Environmental Systems & Societies
Unit 1 - Foundations Of Environmental Systems & Societies
Eco-Movement Milestones & Future Paths
Unlock Your Eco Vision: EVS Guide
Unveiling EVS: A Systems Approach Guide
Unpack ESS: Eco vs Techno Value Systems
Eco Values: Tech vs. Nature in Biodiversity
Unlocking Earth's Worth: Biosphere's True Value
Eco & Society Insights
Energy & Carbon Systems Explained!
Eco-Systems Unveiled: Open & Closed Secrets
Unraveling Eco Models: Secrets & Snags
Thermodynamics Simplified: Easy Science Guide!
Ecosystem Energy Dynamics Explained!
Model Myths Unraveled: ESS Insights
Unlock Eco-Systems: Open, Closed, Isolated
Ace IB ESS Exam: Models Unveiled!
Thermodynamics in ESS: Key Laws Explained
Energy Dynamics & Chains
Nature's Balance: Secrets of Eco Equilibrium
Balance: Secrets of Nature's Feedback
Unlocking Climate Secrets: Tipping Points
Eco Stability: Secrets & Strategies
Green Future: Sustain vs. Strain?
Nature's Marvels: Eco Goods & Services
Ecosystem Services Unveiled
5 Pillars of Thriving Societies
Eco-Insight: The MA Ecosystem Review
Eco Impact 101: IB ESS Study Guide
Savor the Environment: Less Pollution!
Clearing the Haze: Point vs Non-Point Pollution
Eco Hazards: POPs & Pollution Impacts
Pollution's Impact: Acute vs. Chronic
Pollutant Showdown: Heroes & Villains
Nitrates' Ripple Effect: Ecosystem to Hydrosphere
Pollution Control: A 3-Step Guide
DDT Debate: Savior or Curse?
Eco-Basics: Species, Habitat & Niche
Ecology's Wild Side: Habitats & Niches
Unlocking Nature's Secrets: Abiotic Factors
Eco-Drama: The Biotic Factors Tale
Eco-Dynamics: Predators & Prey Balance
Plant-Eater Facts: Eco Thrills & Spills!
Thriving Together: The Magic of Mutualism
Disease Dynamics & Population Impact
Eco-Battle: Survival in Scarce Resources
Max Pop Support: Eco-Capacity Explained
Nature's Network: Ecosystems Unveiled
Unveil Life's Energy Secrets: Respiration & Photosynthesis
Secrets of Nature's Powerhouses
Food Chain Secrets: Ecology Unveiled
Eco-Impact Deep Dive: Humans & Nature
Unit 2 - Ecosystems & Ecology
Unit 2 - Ecosystems & Ecology
Unit 3 - Biodiversity & Conservation
Unit 3 - Biodiversity & Conservation
Unit 4 -Water & Aquatic Food Production Systems & Societies
Unit 4 -Water & Aquatic Food Production Systems & Societies
Unit 5 - Soil Systems & Terrestrial Food Production Systems & Societies
Unit 5 - Soil Systems & Terrestrial Food Production Systems & Societies
Unit 6 - Atmospheric Systems & Societies
Unit 6 - Atmospheric Systems & Societies
Unit 7 - Climate Change & Energy Production
Unit 7 - Climate Change & Energy Production
Unit 8 - Human Systems & Resource Use
Unit 8 - Human Systems & Resource Use
Internal Assessment
Internal Assessment
IB Resources
Unit 1 - Foundations Of Environmental Systems & Societies
Environmental Systems & Societies SL
Environmental Systems & Societies SL

Unit 1 - Foundations Of Environmental Systems & Societies

Energy Dynamics & Chains

Word Count Emoji
591 words
Reading Time Emoji
3 mins read
Updated at Emoji
Last edited on 5th Nov 2024

Table of content

Introduction

  • Energy is essential for maintaining order in ecosystems and living systems.
  • Natural systems require a continuous input of energy to replace what is lost as heat during various processes.

Energy input in ecosystems

  • Ecosystems cannot function in isolation; they need energy input for work to replace the dissipated energy.
  • One way energy enters an ecosystem is through sunlight, which is captured by producers (plants) during photosynthesis.
  • Photosynthesis converts sunlight energy into chemical energy, stored in the producers as biomass.

Example: Imagine a group of plants in a garden. These plants absorb sunlight to make their food (sugars) through photosynthesis. This energy from the sun is now stored in the plants and is ready to be passed along the food chain.

First law of thermodynamics

  • The energy entering an ecosystem (e.g., through sunlight) is equal to the energy leaving it.
  • This law ensures that energy is conserved within the system.

Example: Think of a closed jar with a light bulb inside. The energy produced by the light bulb stays within the jar, and the total amount of energy remains the same unless the jar is opened, allowing the energy to escape.

Energy usage in ecosystems

  • The available energy is used to perform various tasks such as growth, movement, and creating complex molecules.
  • However, the transformation and transfer of energy are not 100% efficient (Second Law of Thermodynamics).
  • When energy is converted from one form to another, some of it is lost as heat, making the process less efficient.
  • This energy dissipation means there's less usable energy available for work.

Example: Imagine a car engine. When fuel is burned to produce energy, not all of it is converted into useful energy for the car's movement. Some is lost as heat, sound, and other inefficiencies.

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IB Resources
Unit 1 - Foundations Of Environmental Systems & Societies
Environmental Systems & Societies SL
Environmental Systems & Societies SL

Unit 1 - Foundations Of Environmental Systems & Societies

Energy Dynamics & Chains

Word Count Emoji
591 words
Reading Time Emoji
3 mins read
Updated at Emoji
Last edited on 5th Nov 2024

Table of content

Introduction

  • Energy is essential for maintaining order in ecosystems and living systems.
  • Natural systems require a continuous input of energy to replace what is lost as heat during various processes.

Energy input in ecosystems

  • Ecosystems cannot function in isolation; they need energy input for work to replace the dissipated energy.
  • One way energy enters an ecosystem is through sunlight, which is captured by producers (plants) during photosynthesis.
  • Photosynthesis converts sunlight energy into chemical energy, stored in the producers as biomass.

Example: Imagine a group of plants in a garden. These plants absorb sunlight to make their food (sugars) through photosynthesis. This energy from the sun is now stored in the plants and is ready to be passed along the food chain.

First law of thermodynamics

  • The energy entering an ecosystem (e.g., through sunlight) is equal to the energy leaving it.
  • This law ensures that energy is conserved within the system.

Example: Think of a closed jar with a light bulb inside. The energy produced by the light bulb stays within the jar, and the total amount of energy remains the same unless the jar is opened, allowing the energy to escape.

Energy usage in ecosystems

  • The available energy is used to perform various tasks such as growth, movement, and creating complex molecules.
  • However, the transformation and transfer of energy are not 100% efficient (Second Law of Thermodynamics).
  • When energy is converted from one form to another, some of it is lost as heat, making the process less efficient.
  • This energy dissipation means there's less usable energy available for work.

Example: Imagine a car engine. When fuel is burned to produce energy, not all of it is converted into useful energy for the car's movement. Some is lost as heat, sound, and other inefficiencies.

Unlock the Full Content! File Is Locked Emoji

Dive deeper and gain exclusive access to premium files of Environmental Systems & Societies SL. Subscribe now and get closer to that 45 🌟

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