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This deck focuses on Support Ecosystem Cycling With Evidence, giving you a quick way to review the definitions, rules, and examples that matter most for Biology.
Study Support Ecosystem Cycling With Evidence in Biology with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
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Which evidence best supports increased carbon sequestration in a reforested area?
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Rising tree biomass and increasing soil organic carbon. More carbon stored in both above and below-ground pools.
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This deck focuses on Support Ecosystem Cycling With Evidence, giving you a quick way to review the definitions, rules, and examples that matter most for Biology.
Work through these flashcards in short sessions. Try to answer each prompt before flipping the card, then revisit any cards you miss until the explanation feels automatic.
Answer: Rising tree biomass and increasing soil organic carbon. More carbon stored in both above and below-ground pools.
Answer: 6CO2+6H2O→C6H12O6+6O2. Six CO2 and water molecules produce glucose and oxygen.
Answer: Higher water loss rate from leaves or increased local humidity. Heat increases evaporation rate from plant surfaces.
Answer: Sterilized soil shows reduced nitrate formation and plant growth. Killing microbes disrupts the biological processes they perform.
Answer: Algal growth increases after phosphate is added. Phosphate addition stimulates growth when it's the limiting nutrient.
Answer: A feeding position where matter is transferred by consumption. Each feeding level in a food chain or web.
Answer: Nutrient recycling slows due to reduced decomposition. Without decomposers, organic matter accumulates instead of recycling.
Answer: Plant tissue nitrate decreases as organic nitrogen increases. Inorganic nitrogen is converted to organic plant compounds.
Answer: Nitrate decreases and N2 (or N2O) emissions increase. Conversion of nitrate to gaseous forms in anaerobic conditions.
Answer: Consumption (trophic transfer of matter). Nutrients pass from prey to predator through feeding.
Answer: Nutrient input. External sources add nutrients to the ecosystem.
Answer: Greater stream discharge and reduced infiltration after tree removal. Trees normally absorb water; removal increases surface flow.
Answer: Decomposition and mineralization. Dead organic matter breaks down, releasing carbon and nutrients.
Answer: Transpiration. Plants release water vapor through leaf pores (stomata).
Answer: Assimilation. Plants absorb and incorporate nitrogen into their tissues.
Answer: Rising tree biomass and increasing soil organic carbon. More carbon stored in both above and below-ground pools.
Answer: High nitrate/phosphate, algal bloom, then low dissolved O2. Classic sequence shows nutrient input leading to oxygen loss.
Answer: Oceans (dissolved inorganic carbon). Ocean water holds more dissolved carbon than the atmosphere.
Answer: Oceans (dissolved inorganic carbon). Ocean water holds more dissolved carbon than the atmosphere.
Answer: Nitrogen-fixing bacteria (often in root nodules). Specialized bacteria convert N2 gas into ammonia compounds.
Answer: Sterilized soil shows reduced nitrate formation and plant growth. Killing microbes disrupts the biological processes they perform.
Answer: Adding phosphate increases primary production more than controls. Experimental evidence shows phosphorus controls growth rate.
Answer: Weathering and erosion. Physical breakdown of rocks releases phosphate into ecosystems.
Answer: Mineralization. Microbes break down complex organic compounds to simple ions.
Answer: Denitrification. Bacteria reduce nitrate to nitrogen gas without oxygen.
Answer: Nutrient output (loss). Nutrients exit the ecosystem through various pathways.
Answer: No, phosphorus lacks a major atmospheric gas phase. Phosphorus cycles mainly through rocks, soil, and water.
Answer: 6CO2+6H2O→C6H12O6+6O2. Six CO2 and water molecules produce glucose and oxygen.
Answer: C6H12O6+6O2→6CO2+6H2O. Glucose and oxygen are broken down to release CO2 and water.
Answer: Ammonification (decomposition). Organic nitrogen is broken down back to inorganic forms.
Answer: Nutrient enrichment causing algal blooms and oxygen decline. Excess nutrients cause algal overgrowth and oxygen depletion.
Answer: Energy flows one-way; matter is recycled. Energy is lost as heat; matter atoms are conserved and reused.
Answer: Decreased soil nitrate with increased nitrate in runoff water. Water carries dissolved nutrients away from soil.
Answer: Energy flows one-way; matter is recycled. Energy is lost as heat; matter atoms are conserved and reused.
Answer: Organic nitrogen decreases while inorganic ammonium/nitrate increases. Decomposition converts organic nitrogen to inorganic forms.
Answer: Adding phosphate increases primary production more than controls. Experimental evidence shows phosphorus controls growth rate.
Answer: Biomass. Total weight of all living organisms in an area.
Answer: Nitrification. Bacteria oxidize ammonia compounds to more oxidized forms.
Answer: A feeding position where matter is transferred by consumption. Each feeding level in a food chain or web.
Answer: Rising ammonium concentration during decay. Decomposition releases ammonia as organic matter breaks down.
Answer: Nutrient input. External sources add nutrients to the ecosystem.
Answer: Atmospheric CO2 decreases during daylight in vegetated areas. Plants consume CO2 faster during active photosynthesis.
Answer: Movement of matter through biotic and abiotic parts of ecosystems. Matter cycles through living organisms and non-living components.
Answer: C6H12O6+6O2→6CO2+6H2O. Glucose and oxygen are broken down to release CO2 and water.
Answer: Greater stream discharge and reduced infiltration after tree removal. Trees normally absorb water; removal increases surface flow.
Answer: No, phosphorus lacks a major atmospheric gas phase. Phosphorus cycles mainly through rocks, soil, and water.
Answer: Higher tissue nitrogen or carbon in consumers after feeding. Consumption transfers nutrients from food into consumer tissues.
Answer: Higher tissue nitrogen or carbon in consumers after feeding. Consumption transfers nutrients from food into consumer tissues.
Answer: Increased CO2 output from organisms or soil. Metabolic activity releases carbon back to the atmosphere.
Answer: Producers (autotrophs). They make organic molecules from CO2 through photosynthesis.
Answer: Nutrient recycling slows due to reduced decomposition. Without decomposers, organic matter accumulates instead of recycling.
Answer: Transpiration. Plants release water vapor through leaf pores (stomata).
Answer: Carbon sequestration. Carbon is removed from atmosphere and stored long-term.
Answer: Higher plant nitrogen content when nodules are present. Bacteria in nodules provide nitrogen, increasing plant growth.
Answer: Combustion transferring carbon to the atmosphere. Burning fossil fuels adds stored carbon to the atmosphere.
Answer: Carbon sequestration. Carbon is removed from atmosphere and stored long-term.
Answer: Plant tissue nitrate decreases as organic nitrogen increases. Inorganic nitrogen is converted to organic plant compounds.
Answer: Nitrogen fixation. Converts atmospheric N2 into forms plants can use.
Answer: Nutrient output (loss). Nutrients exit the ecosystem through various pathways.
Answer: Condensation. Water vapor loses energy and forms liquid droplets.
Answer: Increased CO2 output from organisms or soil. Metabolic activity releases carbon back to the atmosphere.
Answer: Producers (autotrophs). They make organic molecules from CO2 through photosynthesis.
Answer: Nitrification. Bacteria oxidize ammonia compounds to more oxidized forms.
Answer: Algal growth increases after phosphate is added. Phosphate addition stimulates growth when it's the limiting nutrient.
Answer: Ammonium decreases while nitrate increases over time. Conversion from reduced to oxidized nitrogen forms over time.
Answer: Nutrient enrichment causing algal blooms and oxygen decline. Excess nutrients cause algal overgrowth and oxygen depletion.
Answer: Rising ammonium concentration during decay. Decomposition releases ammonia as organic matter breaks down.
Answer: Plants fix CO2; animals release CO2 during respiration. Shows carbon moving between autotrophs and heterotrophs.
Answer: Mineralization. Microbes break down complex organic compounds to simple ions.
Answer: Decreased soil nitrate with increased nitrate in runoff water. Water carries dissolved nutrients away from soil.
Answer: Increased dry mass or increased percent carbon in tissues. Direct measurement shows carbon accumulated in living tissues.
Answer: Movement of matter through biotic and abiotic parts of ecosystems. Matter cycles through living organisms and non-living components.
Answer: High nitrate/phosphate, algal bloom, then low dissolved O2. Classic sequence shows nutrient input leading to oxygen loss.
Answer: Decomposers. They return nutrients from organic matter back to the environment.
Answer: Organic nitrogen decreases while inorganic ammonium/nitrate increases. Decomposition converts organic nitrogen to inorganic forms.
Answer: Ammonium decreases while nitrate increases over time. Conversion from reduced to oxidized nitrogen forms over time.
Answer: Nitrate decreases and N2 (or N2O) emissions increase. Conversion of nitrate to gaseous forms in anaerobic conditions.
Answer: Higher plant nitrogen content when nodules are present. Bacteria in nodules provide nitrogen, increasing plant growth.
Answer: Biomass. Total weight of all living organisms in an area.
Answer: Cellular respiration. All living organisms release CO2 during metabolism.
Answer: Higher water loss rate from leaves or increased local humidity. Heat increases evaporation rate from plant surfaces.
Answer: Ammonification (decomposition). Organic nitrogen is broken down back to inorganic forms.
Answer: Infiltration. Water penetrates soil surface and moves underground.
Answer: Nitrogen-fixing bacteria (often in root nodules). Specialized bacteria convert N2 gas into ammonia compounds.
Answer: Combustion transferring carbon to the atmosphere. Burning fossil fuels adds stored carbon to the atmosphere.
Answer: Decomposition and mineralization. Dead organic matter breaks down, releasing carbon and nutrients.
Answer: Increased dry mass or increased percent carbon in tissues. Direct measurement shows carbon accumulated in living tissues.
Answer: Decomposers. They return nutrients from organic matter back to the environment.
Answer: Weathering and erosion. Physical breakdown of rocks releases phosphate into ecosystems.
Answer: Cellular respiration. All living organisms release CO2 during metabolism.
Answer: Denitrification. Bacteria reduce nitrate to nitrogen gas without oxygen.
Answer: Assimilation. Plants absorb and incorporate nitrogen into their tissues.
Answer: Atmospheric CO2 decreases during daylight in vegetated areas. Plants consume CO2 faster during active photosynthesis.
Answer: Consumption (trophic transfer of matter). Nutrients pass from prey to predator through feeding.
Answer: Nitrogen fixation. Converts atmospheric N2 into forms plants can use.
Answer: Plants fix CO2; animals release CO2 during respiration. Shows carbon moving between autotrophs and heterotrophs.
Answer: Condensation. Water vapor loses energy and forms liquid droplets.
Answer: Infiltration. Water penetrates soil surface and moves underground.