国际文凭组织 · IB Diploma
环境系统与社会 · SL
Papers, samples and curriculum documents for this course. · 本课程的文件、样卷和课程大纲。
Handouts, exercise sheets and slides · 讲义、练习卷与幻灯片
Shared topic documents retain their source course and topic titles. Use your chosen board’s specification for coverage, tier and exam requirements. · 共用专题资料保留原课程与专题名称。请按所选考试局的大纲核对内容、等级及考试要求。
Handouts · 讲义 · AP Environmental Science · AP 环境科学 (9)
- 1. The Living World: Ecosystems · 1. 生物世界:生态系统
- 2. The Living World: Biodiversity · 2. 生物世界:生物多样性
- 3. Populations · 3. 种群
- 4. Earth Systems and Resources · 4. 地球系统与资源
- 5. Land and Water Use · 5. 土地与水资源利用
- 6. Energy Resources and Consumption · 6. 能源资源与消耗
- 7. Atmospheric Pollution · 7. 大气污染
- 8. Aquatic and Terrestrial Pollution · 8. 水生与陆地污染
- 9. Global Change · 9. 全球变化
Exercise sheets · 练习页 · AP Environmental Science · AP 环境科学 (99)
- 1.1 Introduction to Ecosystems · 1.1 生态系统导论
- 1.2 Terrestrial Biomes · 1.2 陆地生物群系
- 1.3 Aquatic Biomes · 1.3 水生生物群系
- 1.4 The Carbon Cycle · 1.4 碳循环
- 1.5 The Nitrogen Cycle · 1.5 氮循环
- 1.6 The Phosphorus Cycle · 1.6 磷循环
- 1.7 The Hydrologic (Water) Cycle · 1.7 水循环
- 1.8 Primary Productivity · 1.8 初级生产力
- 1.9 Trophic Levels · 1.9 营养级
- 1.10 Energy Flow and the 10% Rule · 1.10 能量流动与10%定律
- 1.11 Food Chains and Food Webs · 1.11 食物链与食物网
- 2.1 Introduction to Biodiversity · 2.1 生物多样性导论
- 2.2 Ecosystem Services · 2.2 生态系统服务
- 2.3 Island Biogeography · 2.3 岛屿生物地理学
- 2.4 Ecological Tolerance · 2.4 生态耐受性
- 2.5 Natural Disruptions to Ecosystems · 2.5 生态系统的自然干扰
- 2.6 Adaptations · 2.6 适应
- 2.7 Ecological Succession · 2.7 生态演替
- 3.1 Generalist and Specialist Species · 3.1 广适性物种与特化物种
- 3.2 K-Selected and r-Selected Species · 3.2 K对策物种与r对策物种
- 3.3 Survivorship Curves · 3.3 存活曲线
- 3.4 Carrying Capacity · 3.4 环境容纳量
- 3.5 Population Growth and Resource Availability · 3.5 种群增长与资源可获得性
- 3.6 Age Structure Diagrams · 3.6 年龄结构图
- 3.7 Total Fertility Rate · 3.7 总和生育率
- 3.8 Human Population Dynamics · 3.8 人口动态
- 3.9 Demographic Transition · 3.9 人口转变
- 4.1 Plate Tectonics · 4.1 板块构造
- 4.2 Soil Formation and Erosion · 4.2 土壤形成与侵蚀
- 4.3 Soil Composition and Properties · 4.3 土壤组成与性质
- 4.4 Earth's Atmosphere · 4.4 地球大气层
- 4.5 Global Wind Patterns · 4.5 全球风带
- 4.6 Watersheds · 4.6 流域
- 4.7 Solar Radiation and Earth's Seasons · 4.7 太阳辐射与地球的季节
- 4.8 Earth's Geography and Climate · 4.8 地球的地理与气候
- 4.9 El Nino and La Nina · 4.9 厄尔尼诺与拉尼娜
- 5.1 The Tragedy of the Commons · 5.1 公地悲剧
- 5.2 Clearcutting · 5.2 皆伐
- 5.3 The Green Revolution · 5.3 绿色革命
- 5.4 Impacts of Agricultural Practices · 5.4 农业实践的影响
- 5.5 Irrigation Methods · 5.5 灌溉方法
- 5.6 Pest Control Methods · 5.6 病虫害防治方法
- 5.7 Meat Production Methods · 5.7 肉类生产方法
- 5.8 Impacts of Overfishing · 5.8 过度捕捞的影响
- 5.9 Impacts of Mining · 5.9 采矿的影响
- 5.10 Impacts of Urbanization · 5.10 城市化的影响
- 5.11 Ecological Footprints · 5.11 生态足迹
- 5.12 Introduction to Sustainability · 5.12 可持续性导论
- 5.13 Methods to Reduce Urban Runoff · 5.13 减少城市径流的方法
- 5.14 Integrated Pest Management · 5.14 病虫害综合治理
- 5.15 Sustainable Agriculture · 5.15 可持续农业
- 5.16 Aquaculture · 5.16 水产养殖
- 5.17 Sustainable Forestry · 5.17 可持续林业
- 6.1 Renewable and Nonrenewable Resources · 6.1 可再生与不可再生资源
- 6.2 Global Energy Consumption · 6.2 全球能源消耗
- 6.3 Fuel Types and Uses · 6.3 燃料类型与用途
- 6.4 Distribution of Natural Energy Resources · 6.4 自然能源资源的分布
- 6.5 Fossil Fuels · 6.5 化石燃料
- 6.6 Nuclear Power · 6.6 核能
- 6.7 Energy from Biomass · 6.7 生物质能
- 6.8 Solar Energy · 6.8 太阳能
- 6.9 Hydroelectric Power · 6.9 水力发电
- 6.10 Geothermal Energy · 6.10 地热能
- 6.11 Hydrogen Fuel Cell · 6.11 氢燃料电池
- 6.12 Wind Energy · 6.12 风能
- 6.13 Energy Conservation · 6.13 能源节约
- 7.1 Introduction to Air Pollution · 7.1 空气污染导论
- 7.2 Photochemical Smog · 7.2 光化学烟雾
- 7.3 Thermal Inversion · 7.3 逆温现象
- 7.4 Atmospheric CO2 and Particulates · 7.4 大气二氧化碳与颗粒物
- 7.5 Indoor Air Pollutants · 7.5 室内空气污染物
- 7.6 Reduction of Air Pollutants · 7.6 空气污染物的减少
- 7.7 Acid Rain · 7.7 酸雨
- 7.8 Noise Pollution · 7.8 噪声污染
- 8.1 Sources of Pollution · 8.1 污染源
- 8.2 Human Impacts on Ecosystems · 8.2 人类对生态系统的影响
- 8.3 Endocrine Disruptors · 8.3 内分泌干扰物
- 8.4 Human Impacts on Wetlands and Mangroves · 8.4 人类对湿地与红树林的影响
- 8.5 Eutrophication · 8.5 富营养化
- 8.6 Thermal Pollution · 8.6 热污染
- 8.7 Persistent Organic Pollutants (POPs) · 8.7 持久性有机污染物
- 8.8 Bioaccumulation and Biomagnification · 8.8 生物累积与生物放大
- 8.9 Solid Waste Disposal · 8.9 固体废物处置
- 8.10 Waste Reduction Methods · 8.10 废物减量方法
- 8.11 Sewage Treatment · 8.11 污水处理
- 8.12 Lethal Dose 50% (LD50) · 8.12 半数致死剂量
- 8.13 Dose Response Curve · 8.13 剂量反应曲线
- 8.14 Pollution and Human Health · 8.14 污染与人类健康
- 8.15 Pathogens and Infectious Diseases · 8.15 病原体与传染病
- 9.1 Stratospheric Ozone Depletion · 9.1 平流层臭氧耗损
- 9.2 Reducing Ozone Depletion · 9.2 减少臭氧耗损
- 9.3 The Greenhouse Effect · 9.3 温室效应
- 9.4 Increases in the Greenhouse Gases · 9.4 温室气体的增加
- 9.5 Global Climate Change · 9.5 全球气候变化
- 9.6 Ocean Warming · 9.6 海洋变暖
- 9.7 Ocean Acidification · 9.7 海洋酸化
- 9.8 Invasive Species · 9.8 入侵物种
- 9.9 Endangered Species · 9.9 濒危物种
- 9.10 Human Impacts on Biodiversity · 9.10 人类对生物多样性的影响
Presentation slides · 演示文稿幻灯片 · AP Environmental Science · AP 环境科学 (9)
- 1. The Living World: Ecosystems · 1. 生物世界:生态系统
- 2. The Living World: Biodiversity · 2. 生物世界:生物多样性
- 3. Populations · 3. 种群
- 4. Earth Systems and Resources · 4. 地球系统与资源
- 5. Land and Water Use · 5. 土地与水资源利用
- 6. Energy Resources and Consumption · 6. 能源资源与消耗
- 7. Atmospheric Pollution · 7. 大气污染
- 8. Aquatic and Terrestrial Pollution · 8. 水生与陆地污染
- 9. Global Change · 9. 全球变化
Course units and learning goals · 课程单元与学习目标
These lessons teach selected course objectives. Check the remaining coverage gaps; the material is not a complete preparation programme. · 这些课程教授选定的教学目标。请检查剩余的覆盖缺口;本材料并非完整的备考方案。
1 · Foundation
- An amount held within a system.
- Separate physical evidence from value judgements. A stock is an amount at a time; a flow is an amount per time. Sustainability decisions require ecological, social and economic evidence and a stated scale.
- Draw the system boundary before calculating a budget. Identify inflows, outflows and possible unmeasured terms. Compare stakeholder claims using the same evidence, then explain where values lead to different choices.
- stock
- An amount held within a system
- flow
- Transfer of an amount per unit time
2 · Ecology
- A defined area used for sampling.
- Estimate total abundance by multiplying mean density by area, with consistent units. This assumes sampled areas represent the habitat. Patchiness and too few samples widen uncertainty.
- Choose coordinates with random numbers before visiting the patches. Record quadrat area and counting rules. For a transect, use fixed distances and measure a relevant abiotic variable. Do not damage habitats or sample unsafe locations.
- An amount held within a system.
- Separate physical evidence from value judgements. A stock is an amount at a time; a flow is an amount per time. Sustainability decisions require ecological, social and economic evidence and a stated scale.
- Draw the system boundary before calculating a budget. Identify inflows, outflows and possible unmeasured terms. Compare stakeholder claims using the same evidence, then explain where values lead to different choices.
- quadrat
- A defined area used for sampling
- population
- Organisms of one species in a defined area
- stock
- An amount held within a system
- flow
- Transfer of an amount per unit time
3 · Biodiversity and conservation
- The number of species recorded.
- Compare surveys with similar area, effort, season and identification rules. A diversity index is meaningful only with its formula and conventions specified. Habitat fragmentation can affect movement and gene flow even when total area changes little.
- Use non-destructive field sampling approved by the school. Identify organisms with a suitable key and record uncertain identifications rather than inventing species. Combine ecological evidence with stakeholder perspectives on land use.
- species richness
- The number of species recorded
- evenness
- How evenly individuals are distributed among species
4 · Water
- Nutrient enrichment with ecological consequences.
- Distinguish concentration from total pollutant load. Dilution can reduce concentration without removing the pollutant mass. A management plan should consider upstream causes, users and effects on other parts of the catchment.
- Collect approved water-quality observations at matched sites and times. Use calibrated instruments and consistent sampling depth. Avoid contact with contaminated water and do not infer potability from clarity.
- eutrophication
- Nutrient enrichment with ecological consequences
- pollutant load
- Mass of pollutant transferred per time
5 · Land
- Removal and transport of soil or rock.
- Distinguish total yield from yield per area and energy input. Sustainable management must consider regeneration rates and impacts beyond the farm boundary. Different stakeholders may rank food security, biodiversity and income differently.
- Compare management options using a stated functional unit and the same timescale. Use approved secondary datasets or non-destructive soil observations. Explain trade-offs instead of claiming a method has no disadvantages.
- erosion
- Removal and transport of soil or rock
- resource
- A material or service used to meet needs
6 · Atmosphere and climate change
- Actions addressing causes of environmental change.
- Distinguish mitigation, which addresses drivers, from adaptation, which reduces harm from impacts. A policy assessment needs evidence about effectiveness, cost, equity and uncertainty; one criterion is not the entire decision.
- Compare multi-year data using consistent baselines. State the region, timescale and uncertainty. At HL, connect a management decision to law, economics and ethics rather than treating these lenses as extra definitions only.
- mitigation
- Actions addressing causes of environmental change
- adaptation
- Actions reducing harm from environmental impacts
7 · Natural resources
- Removal and transport of soil or rock.
- Distinguish total yield from yield per area and energy input. Sustainable management must consider regeneration rates and impacts beyond the farm boundary. Different stakeholders may rank food security, biodiversity and income differently.
- Compare management options using a stated functional unit and the same timescale. Use approved secondary datasets or non-destructive soil observations. Explain trade-offs instead of claiming a method has no disadvantages.
- erosion
- Removal and transport of soil or rock
- resource
- A material or service used to meet needs
8 · Human populations and urban systems
- Movement into a population.
- Compare rates with a common denominator and interval. An average can hide unequal access to services. At HL, evaluate how economic incentives, legal responsibilities and ethical priorities change an urban management proposal.
- Use published demographic and city-service data with dates and definitions. Protect privacy when collecting local opinions. Compare the same geographical boundary rather than mixing an urban core with a whole metropolitan region.
- immigration
- Movement into a population
- indicator
- A measure of a specified condition
Practical · Experimental programme
- A quantified limitation on a measured result.
- For a product or quotient, adding fractional uncertainties is a common maximum-uncertainty approximation. For a difference, add absolute uncertainties. A nonzero intercept can reveal an offset or an incomplete model.
- Show units on axes and choose a sensible scale. Plot uncertainty bars where justified, draw a best-fit line rather than joining every point, and estimate steepest and shallowest plausible gradients when the course method calls for them.
- uncertainty
- A quantified limitation on a measured result
- systematic error
- A consistent measurement bias
Preparing for this qualification · 备考指南
- ESS integrates ecological evidence with human values, systems and sustainability; it is not a generic Biology course.
- HL adds environmental law, environmental/ecological economics and ethics as lenses integrated with topic evidence, alongside deeper topic coverage.
- Both levels have practical work 30 h, collaborative sciences project 10 h and individual investigation 10 h. Use school-approved fieldwork and ethical social-data collection.
- Written assessment and investigation details are recorded from the 2026 brief; the old SL-only 2017 brief is not the current course.
- 2026 assessment: SL Paper 1 is 1 h/25%, Paper 2 is 2 h/50%, investigation 25%; HL Paper 1 is 2 h/30%, Paper 2 is 2.5 h/50%, investigation 20%. Paper 1 uses an unseen case study; Paper 2 has short/data questions and structured essays. The individual investigation is a real student-formulated inquiry, 10 h and a maximum 3,000-word report.
Teaching coverage still needed · 仍需教学覆盖内容
- Exact topic statements require the current full ESS guide; focus cases are partial.
Specifications and sample documents · 课程大纲和样件文件
- 环境系统与社会 — 课程简介 · 2026 ↗
First assessment: 2026
- 环境系统与社会 — 课程简介 · 2017 ↗
First assessment: 2017
Course materials · 课程资料
Course preparation · 课程准备
Documents are available. Board-specific notes, assessments and interactive past-paper practice are not yet available for every course. · 文档已提供。并非所有课程都具备考试局特定的注释、测评及交互式历年真题练习。
Lessons · 课程 →