Plants are oxygen generators. Plants plus decomposition (i.e. the whole system, plants plus bacteria and fungi and fire and cows and termites) are oxygen neutral. So the statement is literally wrong, but may be functionally correct in the current environment.
Plants are oxygen generators. Plants plus decomposition (i.e. the whole system, plants plus bacteria and fungi and fire and cows and termites) are oxygen neutral. So the statement is literally wrong, but may be functionally correct in the current environment.
Photosynthesis basically means 6 CO2 + 6 H2O --> C6H12O6 + 6 O2
Combustion/decomposition means the reversal... C6H12O6 + 6 O2 --> 6 CO2 + 6 H2O
Sequestering carbon dioxide is only temporary. However, the trees' reduction reaction provides us animals with that sugar and oxygen to burn. Without sugar and oxygen, practically all animals on earth would die. The trick to staying ahead of the curve for us now is to sequester more carbon and oxygen than nature can provide (for less money than it costs to dig for oil)... because it just so happens that we are pretty much consuming all the carbon and oxygen that farming plus living plants can supply, plus the fossil oil sequestered over millions of years.
Will grass be enough? No... neither the rainforest nor the algae in the ocean will be enough to offset the human over-population. We are burning far too much, far too fast for plants to keep up (naturally).
But to more directly answer the question, a 650-square-foot area of grass produces enough oxygen to sustain an average human adult's needs, whereas rainforests actually consume about the same amount of oxygen as it produces. Even though the rainforest has the highest rate of photosynthesis per unit area... it is primarily consumed (in balance) with the decomposition by the animals and microorganisms that live in it.
Or if you compare grassland to a regular forest, another way of conceiveing this is to say that a field of grass will generate more mass per year than a forest of equivalent area.
What about oceans? Well, they cover 71% of the earth and the estimated O2 production is between 50% and 85% (in the atmosphere). Since the ocean is basically able to provide about the same amount of O2 as land (plus the requirement of the sea animals), then you really do have O2 production from the ocean.
So let's just compare the star players, grass and phytoplankton. Well, phytoplankton are kind of difficult to grow in a lab and corn or wheat could be considered grass. So let's actually consider other kinds of algae and grain instead.
Without going too far in depth, some companies are claiming to be able to produce over 8 million gallons (or about 60 million pounds) of oil per acre from algae. That's a total slam dunk in the face of grass... even if they are just bragging (by a factor of 1,000). Algae fuel is the reason that bioreactors are "all the rage" right now (a veritable green gold rush), and companies are cropping up everywhere. Of course, genetic engineering has something to do with the numbers... but even if you compare algae with (genetically engineered) corn or canola, you are talking about a measly 150 gallons per acre give or take 20%. And corn definitely produces more weight (5 tons of seed plus another say 5 tons of cobs and stalks) than wheat (about 1.5 tons of seed, and about 1.1 tons of straw) per acre.
Photosynthesis basically means 6 CO2 + 6 H2O --> C6H12O6 + 6 O2Combustion/decomposition means the reversal... C6H12O6 + 6 O2 --> 6 CO2 + 6 H2O
Sequestering carbon dioxide is only temporary. However, the trees' reduction reaction provides us animals with that sugar and oxygen to burn. Without sugar and oxygen, practically all animals on earth would die. The trick to staying ahead of the curve for us now is to sequester more carbon and oxygen than nature can provide (for less money than it costs to dig for oil)... because it just so happens that we are pretty much consuming all the carbon and oxygen that farming plus living plants can supply, plus the fossil oil sequestered over millions of years.
Will grass be enough? No... neither the rainforest nor the algae in the ocean will be enough to offset the human over-population. We are burning far too much, far too fast for plants to keep up (naturally).
But to more directly answer the question, a 650-square-foot area of grass produces enough oxygen to sustain an average human adult's needs, whereas rainforests actually consume about the same amount of oxygen as it produces. Even though the rainforest has the highest rate of photosynthesis per unit area... it is primarily consumed (in balance) with the decomposition by the animals and microorganisms that live in it.
Or if you compare grassland to a regular forest, another way of conceiveing this is to say that a field of grass will generate more mass per year than a forest of equivalent area.
What about oceans? Well, they cover 71% of the earth and the estimated O2 production is between 50% and 85% (in the atmosphere). Since the ocean is basically able to provide about the same amount of O2 as land (plus the requirement of the sea animals), then you really do have O2 production from the ocean.
So let's just compare the star players, grass and phytoplankton. Well, phytoplankton are kind of difficult to grow in a lab and corn or wheat could be considered grass. So let's actually consider other kinds of algae and grain instead.
Without going too far in depth, some companies are claiming to be able to produce over 8 million gallons (or about 60 million pounds) of oil per acre from algae. That's a total slam dunk in the face of grass... even if they are just bragging (by a factor of 1,000). Algae fuel is the reason that bioreactors are "all the rage" right now (a veritable green gold rush), and companies are cropping up everywhere. Of course, genetic engineering has something to do with the numbers... but even if you compare algae with (genetically engineered) corn or canola, you are talking about a measly 150 gallons per acre give or take 20%. And corn definitely produces more weight (5 tons of seed plus another say 5 tons of cobs and stalks) than wheat (about 1.5 tons of seed, and about 1.1 tons of straw) per acre.
@Roland CO2 emission, sequestrations, and biofuels are the answer for the question do plants produce oxygen... and the quote from the skeptics SE... that plants are net zero. The first sentence of my answer is photosynthesis = combustion in reverse. Oil is sequestered carbon ultimately from photosynthesis. The weight of the plant is the measure of captured carbon. Oil is the most reduced form of carbon. Humans are currenly burning more O2 and reduced carbon than plants are producing. When we've burned it all it will equal zero. Until then, there's still sequestered carbon/oil on earth.More
I believe the question was "do plants produce oxygen" + how to explain the quote from Skeptics SE, and I think the answer is basically given in @iayork's comment above. CO2 emissions / sequestrations and biofuel production are different issues I would say.More
@Roland Plant weight (mostly from sugar and oil) is proportional to O2 production. When it is burned or decomposed the process is reversed. As noted in the answer of the skeptic SE, "The more correct view how to describe this is not that plants produce oxygen, but that they store carbon.". Although this is a bit simplistic, storing or sequestering carbon, means a (temporary) net production, which animals use and burn, digest, or otherwise decompose to live. As long as plants produce, animals have food and air. Tree's have produced... and fossil oils exist... but we are rapidly burning out.More
Plants are oxygen generators. Plants plus decomposition (i.e. the whole system, plants plus bacteria and fungi and fire and cows and termites) are oxygen neutral. So the statement is literally wrong, but may be functionally correct in the current environment.
Plants are oxygen generators. Plants plus decomposition (i.e. the whole system, plants plus bacteria and fungi and fire and cows and termites) are oxygen neutral. So the statement is literally wrong, but may be functionally correct in the current environment.
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Photosynthesis basically means 6 CO2 + 6 H2O --> C6H12O6 + 6 O2 Combustion/decomposition means the reversal... C6H12O6 + 6 O2 --> 6 CO2 + 6 H2O
Sequestering carbon dioxide is only temporary. However, the trees' reduction reaction provides us animals with that sugar and oxygen to burn. Without sugar and oxygen, practically all animals on earth would die. The trick to staying ahead of the curve for us now is to sequester more carbon and oxygen than nature can provide (for less money than it costs to dig for oil)... because it just so happens that we are pretty much consuming all the carbon and oxygen that farming plus living plants can supply, plus the fossil oil sequestered over millions of years.
Will grass be enough? No... neither the rainforest nor the algae in the ocean will be enough to offset the human over-population. We are burning far too much, far too fast for plants to keep up (naturally).
But to more directly answer the question, a 650-square-foot area of grass produces enough oxygen to sustain an average human adult's needs, whereas rainforests actually consume about the same amount of oxygen as it produces. Even though the rainforest has the highest rate of photosynthesis per unit area... it is primarily consumed (in balance) with the decomposition by the animals and microorganisms that live in it.
Or if you compare grassland to a regular forest, another way of conceiveing this is to say that a field of grass will generate more mass per year than a forest of equivalent area.
What about oceans? Well, they cover 71% of the earth and the estimated O2 production is between 50% and 85% (in the atmosphere). Since the ocean is basically able to provide about the same amount of O2 as land (plus the requirement of the sea animals), then you really do have O2 production from the ocean.
So let's just compare the star players, grass and phytoplankton. Well, phytoplankton are kind of difficult to grow in a lab and corn or wheat could be considered grass. So let's actually consider other kinds of algae and grain instead.
Without going too far in depth, some companies are claiming to be able to produce over 8 million gallons (or about 60 million pounds) of oil per acre from algae. That's a total slam dunk in the face of grass... even if they are just bragging (by a factor of 1,000). Algae fuel is the reason that bioreactors are "all the rage" right now (a veritable green gold rush), and companies are cropping up everywhere. Of course, genetic engineering has something to do with the numbers... but even if you compare algae with (genetically engineered) corn or canola, you are talking about a measly 150 gallons per acre give or take 20%. And corn definitely produces more weight (5 tons of seed plus another say 5 tons of cobs and stalks) than wheat (about 1.5 tons of seed, and about 1.1 tons of straw) per acre.
Photosynthesis basically means 6 CO2 + 6 H2O --> C6H12O6 + 6 O2Combustion/decomposition means the reversal... C6H12O6 + 6 O2 --> 6 CO2 + 6 H2O
Sequestering carbon dioxide is only temporary. However, the trees' reduction reaction provides us animals with that sugar and oxygen to burn. Without sugar and oxygen, practically all animals on earth would die. The trick to staying ahead of the curve for us now is to sequester more carbon and oxygen than nature can provide (for less money than it costs to dig for oil)... because it just so happens that we are pretty much consuming all the carbon and oxygen that farming plus living plants can supply, plus the fossil oil sequestered over millions of years.
Will grass be enough? No... neither the rainforest nor the algae in the ocean will be enough to offset the human over-population. We are burning far too much, far too fast for plants to keep up (naturally).
But to more directly answer the question, a 650-square-foot area of grass produces enough oxygen to sustain an average human adult's needs, whereas rainforests actually consume about the same amount of oxygen as it produces. Even though the rainforest has the highest rate of photosynthesis per unit area... it is primarily consumed (in balance) with the decomposition by the animals and microorganisms that live in it.
Or if you compare grassland to a regular forest, another way of conceiveing this is to say that a field of grass will generate more mass per year than a forest of equivalent area.
What about oceans? Well, they cover 71% of the earth and the estimated O2 production is between 50% and 85% (in the atmosphere). Since the ocean is basically able to provide about the same amount of O2 as land (plus the requirement of the sea animals), then you really do have O2 production from the ocean.
So let's just compare the star players, grass and phytoplankton. Well, phytoplankton are kind of difficult to grow in a lab and corn or wheat could be considered grass. So let's actually consider other kinds of algae and grain instead.
Without going too far in depth, some companies are claiming to be able to produce over 8 million gallons (or about 60 million pounds) of oil per acre from algae. That's a total slam dunk in the face of grass... even if they are just bragging (by a factor of 1,000). Algae fuel is the reason that bioreactors are "all the rage" right now (a veritable green gold rush), and companies are cropping up everywhere. Of course, genetic engineering has something to do with the numbers... but even if you compare algae with (genetically engineered) corn or canola, you are talking about a measly 150 gallons per acre give or take 20%. And corn definitely produces more weight (5 tons of seed plus another say 5 tons of cobs and stalks) than wheat (about 1.5 tons of seed, and about 1.1 tons of straw) per acre.
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