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Biogeochemical Cycles pete hamilton sandringham college.

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Presentation on theme: "Biogeochemical Cycles pete hamilton sandringham college."— Presentation transcript:

1 Biogeochemical Cycles pete hamilton sandringham college

2 Fundamentals’ of biogeochemical cycles All matter cycles...it is neither created nor destroyed... As the Earth is essentially a closed system with respect to matter, we can say that all matter on Earth cycles. Biogeochemical cycles: the movement (or cycling) of matter through a system

3 The Geological /Rock Cycle The transport and transformation of one type of rock/mineral into another. Processes involved include: –Volcanism – Uplifting –Weathering & Erosion –Transportation –Sedimentation –Burial, Heat & Pressure Time

4 Erosion

5 Oxygen-Ozone: A Chemical Cycle

6 The Water Cycle Involves movement of water through the atmosphere, the lithosphere and the biosphere. It is a true biogeochemical cycle The processes involved include: –Evaporation –Transpiration –Condensation, – Precipitation –Runoff –Infiltration –Discharge

7 The Water Cycle –All life depends on the presence of water –60% of the adult human body weight is water –Amount of water available determines the nature and abundance of organisms present –It can be synthesized and broken down Synthesized during cellular respiration Broken down during photosynthesis 7

8 The Water Cycle 8

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10 –Liquid water from the Earth’s surface evaporates into the atmosphere –Occurs directly from the surfaces of oceans, lakes, and rivers –Terrestrial ecosystems: 90% of evaporation is through plants –Water in the atmosphere is a gas –Cools and falls to the surface as precipitation 10

11 The Water Cycle Groundwater: under ground water –Aquifers: permeable, underground layers of rock, sand, and gravel saturated with water –Two subparts: Upper layers constitute the water table Lower layer can be tapped by wells 11

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13 Biogeochemical Cycles The carbon cycle 13

14 Photosynthesis : Plants use the energy of sunlight to convert carbon dioxide and water into carbohydrates and oxygen. 6CO 2 + 6H 2 O + energy → C 6 H 12 O 6 + 6O 2 Photosynthesizing organisms include the plant life of the land areas as well as the phytoplankton of the oceans.phytoplankton The tiny marine cyanobacteria Prochlorococcus was discovered in 1986 and accounts for more than half of the photosynthesis of the open ocean.cyanobacteriaProchlorococcus Most living organisms use oxygen to break carbohydrates down releasing energy in a process called cellular respiration. O 2 + carbohydrates → CO 2 + H 2 O + energy

15 Decomposition is a process in which microbes breakdown organic matter releasing energy. When this process uses oxygen it is called aerobic cellular respiration. O 2 + carbohydrates → CO 2 + H 2 O + energy Combustion is the chemical oxidation of fuels (organic substances such as coal,oil etc) to release stored energy O 2 + FUEL → CO 2 + H 2 O + energy

16 Biogeochemical Cycles Carbon fixation: metabolic reactions that make nongaseous compounds from gaseous ones In aquatic systems inorganic carbon is present in water as dissolved CO 2 and as HCO 3 - ions CO 2 is used by algae and aquatic plants for photosynthesis HCO 3 - ions can be used by some aquatic organisms to make shells 16

17 Biogeochemical Cycles Methane producers –Microbes that break down/ decompose organic compounds in the absence of oxygen by anaerobic cellular respiration provide an additional dimension to the carbon cycle –Methanogens: produce methane (CH 4 ) –Wetland ecosystems are a source of CH 4 –CH 4 is oxidized to CO 2 but can remain as CH 4 for a long time 17

18 Biogeochemical Cycles Human activities which have disrupted the natural carbon cycle include: –Land Clearing – removal of vegetation which would normally result in net removal of carbon dioxide from the atmosphere as consequence of photosynthesis –Burning of fossil fuels which returns carbon dioxide that has been locked beneath the earths crust for millions of years to the atmosphere. –Agricultural practices –Industrial processes –Increased population of people and agricultural animals 18

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20 The Keeling Curve

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23 The major reservoirs or sinks of carbon include: Atmosphere Plants Soil/ Sediments /Rocks Freshwater Oceans –The ocean contains the largest active pool of carbon near the surface of the Earth..

24 The global carbon budget is the balance of the exchanges (incomes and losses) of carbon between the carbon reservoirs. IN THE OCEAN: The seas contain around 36000 gigatonnes of carbon, mostly in the form of bicarbonate ion. The level of bicarbonate can affect the oceans pH. More carbon dioxide more bicarbonate lower pH

25 Carbon is readily exchanged between the atmosphere and ocean. In regions of oceanic upwelling, carbon is released to the atmosphere. Conversely, regions of downwelling transfer carbon (CO2) from the atmosphere to the ocean. When CO2 enters the ocean, carbonic acid is formed: CO 2 + H 2 O ⇌ H 2 CO 3 This reaction has a forward and reverse rate, that is it achieves a chemical equilibrium. Another reaction important in controlling oceanic pH levels is the release of hydrogen ions and bicarbonate. This reaction controls large changes in pH:chemical equilibrium H 2 CO 3 ⇌ H+ + HCO 3 −

26 Biogeochemical Cycles Nitrogen Cycle –Nitrogen is a component of all proteins and nucleic acids –Atmosphere is 78% nitrogen N 2 –The bonds of N2 are very strong and are not broken easily. Atmospheric nitrogen is inert. –Availability to living organisms Usually the element in shortest supply Most plants and animals cannot use N 2 (gas) Use instead NH 3, and NO 3 - 26

27 Biogeochemical Cycles Nitrogen fixation: synthesis of nitrogen containing compounds from N 2 –Nitrification: N 2 --> NH 3 --> NO 3 - –Denitrification: NO 3 - --> N 2 –Nitrogen can be fixed by lightening. –Both processes are carried out by microbes: free or living on plant roots

28 During lightning strikes enough energy is supplied to break the bonds of the nitrogen molecule and form nitrous oxide according to the equation below. N 2 + O 2 => 2NO The nitrous oxide formed combines with oxygen to form nitrogen dioxide according to the equation below. 2NO + O 2 => 2NO 2 Nitrogen dioxide readily dissolves in water to produce nitric and nitrous acids which provides a source of nitrates available to plants. 2 NO 2 + H 2 O => HNO 3 + HNO 2

29 N2N2 Root nodules of legumes containing bacteria Soil bacteria

30 Biogeochemical Cycles Nitrogen Cycle 30

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34 When organisms excrete waste, the nitrogen is released back into the environment. When organisms die and decompose, the nitrogen is broken down and converted to ammonia. Nitrates may also be converted to gaseous nitrogen through a process called denitrification and returned to the atmosphere, continuing the cycle.

35 Biogeochemical Cycles Phosphorus cycle –Phosphorus is required by all organisms Occurs in nucleic acids, membranes, ATP –No significant gas form –Exists as PO 4 3- in ecosystems –Plants and algae use free inorganic phosphorus, animals eat plants to obtain their phosphorus 35

36 Biogeochemical Cycles Phosphorus cycle 36

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38 Biogeochemical Cycles Limiting nutrient: weak link in an ecosystem; shortest supply relative to the needs of organisms Iron is the limiting nutrient for algal populations Nitrogen and phosphorus can also be limiting nutrients for both terrestrial and aquatic ecosystems 38

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