Linked from
The 207 pages that link to Eutrophication, each with the reason it gives.
PhosphateRelated: Phosphate runoff can accelerate eutrophication in lakes and coastal waters.
Seto Inland SeaRelated: It has affected water quality and fisheries in enclosed bays and channels.
LivestockRelated: Nutrients from manure and feed production can pollute waterways.
Algal bloomRelated: Excess nitrogen and phosphorus often supply the nutrients that drive blooms.
Salt marshRelated: Nutrient loading can change plant growth and weaken marsh structure.
Tokyo BayRelated: Nutrient inputs have contributed to recurring water-quality problems in the bay.
AmmoniumRelated: Ammonium runoff can add bioavailable nitrogen to aquatic ecosystems.
Fish farmingRelated: Uneaten feed and fish waste can add nutrients to waters around farms.
GuanoRelated: Runoff carrying guano nutrients can enrich nearby waters beyond ecological limits.
Combined sewerRelated: Nutrients in sewage discharged during overflows can intensify eutrophication.
DetergentRelated: Phosphate builders in some detergents contributed nutrients to waterways.
LagoonRelated: Restricted flushing can intensify nutrient-driven oxygen loss in lagoons.
LimnologyRelated: It links nutrient inputs to algal growth, oxygen depletion, and ecosystem change.
Lake ErieRelated: Excess phosphorus from the watershed has driven harmful blooms and oxygen loss.
BiogeochemistryRelated: Nutrient transfers from land to water explain many eutrophication events.
LakeRelated: Nutrient pollution can turn clear lakes into oxygen-depleted, bloom-prone waters.
SiltRelated: Silt can transport phosphorus and other nutrients into lakes and rivers.