Friday, June 26, 2020

COCONUT WATER AS A SPORTS DRINK - Coconut water is the sweet, milky liquid that comes from the center of a coconut. Sports drinks are intended to provide energy and replace electrolytes, such as sodium and potassium, lost through sweat during prolonged exercise. If you’re exercising less than 60 minutes, good old tap water is sufficient to rehydrate you. But for those exercising for more than an hour, a sports drink is warranted. The exception is high-intensity exercise in extreme heat, which causes excessive perspiration. In that case, a sports drink would be beneficial regardless of your workout’s length. While coconut water has a nutrient composition similar to traditional sports drinks, it does differ in significant ways. Unsweetened or original flavors contain fewer carbohydrates and less sodium, which are the key nutrients required for long workouts. Sodium is the main electrolyte lost through sweat, and carbohydrates are necessary for fuel during extended exercise to replenish your energy levels both during and post-workout. Flavored coconut waters are actually similar in nutrient composition to sports drinks, again, except for less sodium. Coconut water is packed with potassium and also contains beneficial nutrients such as calcium, magnesium and phosphorus, which sports drinks lack. Other advantages of coconut water include its all-natural forms of sugar and the fact that the drink typically is free of dyes.

How Coconut Water Stacks Up As a Sports Drink
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How Coconut Water Stacks Up As a Sports Drink
Contributor: Katherine Patton, MEd, RD, CSSD, LD




By now, most exercise enthusiasts likely have heard of and perhaps tried coconut water.
Before you spend a few dollars on a one-serving bottle, consider whether it is truly worthwhile.
Coconut water is the sweet, milky liquid that comes from the center of a coconut.
You can buy it at the grocery store or your local gym and in convenience stores.
Advertised as a natural sports drink, coconut water started becoming popular in the United States in 2008, and sales continue to rise.
The role of sports drinks
Sports drinks are intended to provide energy and replace electrolytes, such as sodium and potassium, lost through sweat during prolonged exercise.
If you’re exercising less than 60 minutes, good old tap water is sufficient to rehydrate you.
But for those exercising for more than an hour, a sports drink is warranted and supported by the American College of Sports Medicine and the Academy of Nutrition and Dietetics, which recommends 30 grams to 60 grams of carbohydrates every hour.
The exception is high-intensity exercise in extreme heat, which causes excessive perspiration.
In that case, a sports drink would be beneficial regardless of your workout’s length.
How coconut water differs
While coconut water has a nutrient composition similar to traditional sports drinks, it does differ in significant ways.
Unsweetened or original flavors contain fewer carbohydrates and less sodium, which are the key nutrients required for long workouts.
Sodium is the main electrolyte lost through sweat, and carbohydrates are necessary for fuel during extended exercise to replenish your energy levels both during and post-workout.
Flavored coconut waters are actually similar in nutrient composition to sports drinks, again, except for less sodium.
Depending on the brand, flavored coconut waters are sweetened with fruit juice, fruit puree sugar or stevia.
Coconut water is packed with potassium and also contains beneficial nutrients such as calcium, magnesium and phosphorus, which sports drinks lack.
Worth a try?
Other advantages of coconut water include its all-natural forms of sugar and the fact that the drink typically is free of dyes.
It’s important to remember that sports drinks have been extensively researched, and their unique blend of sugar has been formulated to ensure optimal absorption and energy during exercise.
If you are looking for an all-natural, flavorful alternative to traditional water, coconut water is worth a try.
But be aware of coconut water’s extra calories compared with that of calorie-free tap water, and choose the unsweetened version when possible.
For athletes who need hydration during or after a long workout, a traditional sports drink is the best choice to ensure proper hydration for maximum performance and recovery.

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How Coconut Water Stacks Up As a Sports Drink

THE DIFFERENCES BETWEEN 4X4 AND 4X2 VEHICLES - When a 4-wheel vehicle turns the outside tires spin faster than the inside tires. The differential in the axle will compensate for the further distance that the outside wheel travels than the inside one. When you drive on a slick surface the power from the engine will go to the wheel with the least amount of traction, so whichever wheel is slipping the most gets the most power. That's because of the laws of nature, a.k.a. physics, tell us that force will always take the path of least resistance. When an OHV is in four-wheel drive mode the front and rear axles are synchronized so there is always at least one wheel on each of the drive axles that can be driven by the engine's power effectively. If you're in a 4x2 vehicle you can trick it into acting like a 4x4 by pressing the brake pedal slightly to slow down the wheel that's spinning and transfer that wheel's energy to the wheel with traction. A 4x4 vehicle that has four-wheel drive (4WD). "4x4" in a 4WD vehicle means there are 4 wheels total and 4 wheels that are driven. Utility quads are typically 4x4. Part-Time 4WD - This refers to an OHV that has a 4-wheel drive system which operates on-demand and powers all four wheels by synchronizing front and rear axles together via a shift lever. Part-Time 4WDs usually include two-speed ranges, Hi and Lo. Full-Time 4WD - This refers to a 4-wheel-drive system that can be operated at all times on all surfaces. Full-time 4-wheel-drive systems usually have the option of part-time operation so you can shift to 2WD while on cement or pavement. Full-Time 4WD systems do not always have the Hi and Lo speed ranges.

Jeep Driving Over Rocks in Namibia, Africa..........................................................................................................................................
The Differences Between 4x4 and 4x2 Vehicles
By Matt Finley




It is a common misconception that 4x4 means that all four wheels are turning at the same speed simultaneously.
When a 4-wheel vehicle turns the outside tires spin faster than the inside tires.
The differential in the axle will compensate for the further distance that the outside wheel travels than the inside one.
When you drive on a slick surface the power from the engine will go to the wheel with the least amount of traction, so whichever wheel is slipping the most gets the most power.
That's because of the laws of nature, a.k.a. physics, tell us that force will always take the path of least resistance.
When an OHV is in four-wheel drive mode the front and rear axles are synchronized so there is always at least one wheel on each of the drive axles that can be driven by the engine's power effectively.
If you're in a 4x2 vehicle you can trick it into acting like a 4x4 by pressing the brake pedal slightly to slow down the wheel that's spinning and transfer that wheel's energy to the wheel with traction.
4x4 (4WD)
A 4x4 vehicle that has four-wheel drive (4WD). "4x4" in a 4WD vehicle means there are 4 wheels total and 4 wheels that are driven. Utility quads are typically 4x4.
4 x 2 (2WD)
A 4x2 or 2WD is a vehicle that has a two-wheel drive (2WD) with four wheels. "4x2" in a 2WD vehicle means there are 4 wheels total and 2 wheels that are driven. The driven wheels can be either back or front wheels but are usually the back wheels. Sport ATVs are typically 4x2.
Part-Time 4WD
This refers to an OHV that has a 4-wheel drive system which operates on-demand and powers all four wheels by synchronizing front and rear axles together via a shift lever. Part-Time 4WDs usually include two-speed ranges, Hi and Lo.
Part-time 4WD systems have to be used in 2WD mode on pavement, cement or other hard, sticky surfaces. They are designed to be engaged only in specific situations when you need extra traction and damage can occur if driven on hard surfaces.
Full-Time 4WD
This refers to a 4-wheel-drive system that can be operated at all times on all surfaces. Full-time 4-wheel-drive systems usually have the option of part-time operation so you can shift to 2WD while on cement or pavement. Full-Time 4WD systems do not always have the Hi and Lo speed ranges.
Automatic Four-Wheel Drive (A4WD)
This type of drive system automatically turns on 4WD when it needs it. This is achieved with monitors that sense different wheel speeds then engage 4WD. The Polaris Ranger Electric Vehicle has this kind of automatic system.
Shift on the Fly 4WD
This 4-Wheel-Drive system allows the driver to manual shift from 2WD to 4WD Hi without stopping first. These systems typically have a speed limit at which you can engage the system; typically it's under 60 mph. OHVs that use an electronic actuator (like a push-button vs a shift lever) will only allow shifting to 4WD-Hi while under the rated speed, so pushing the button will not attempt to engage 4WD.
Vehicles with a shift lever may not know when they are going too fast to shift into 4WD Hi so doing this can cause damage. Consult your owners manual if you have an On the Fly 4WD system.
All-Wheel Drive (AWD)
An all-wheel-drive is a full-time single-speed 4WD system that will supply power to all four wheels. Each system has a different front-to-rear power delivery ratio.

Matt Finley
Introduction
Over three decades of off-road experience throughout Southern California
Has worked as a writer and photographer covering ATVs, freestyle motocross (FMX), motorcycles, and off-road recreation since 2006
Articles and reviews have been published in magazines and eZines such as ATV Source magazine, ATV.com, and ATV magazine, and he also wrote feature articles, including the column “What Grinds Your Gears," for MX Affiliate magazine
Member of the American Sand Association (ASA), an organization committed to protecting the right to ride on all public lands in a responsible, environmentally balanced manner

Experience
Matt Finley is a former writer for ThoughtCo who contributed articles on off-roading for nearly three years. He has been writing about and photographing ATVs, freestyle motocross (FMX), motorcycles, and off-road/4x4 recreation since 2006. He began his writing career at Creative Weblogging and also blogged for 451Press and Sportster.org.
Since then Finley has published hundreds of articles and ATV/off-road reviews in magazines and eZines such as ATV Source magazine, ATV.com, and the international print publication ATV magazine. Finley also wrote feature articles and a regular column called “What Grinds Your Gears” for MX Affiliate magazine. 
Finley's commitment to both the sport of off-road recreation and to the protection of the environment is exemplified by his work writing Press Releases for the American Sand Association (ASA), an organization committed to protecting the right to ride on all public lands in a responsible, environmentally balanced manner.
A Message from Matt Finley
LiveAbout and Dotdash
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Jeep Driving Over Rocks in Namibia, Africa

PLATE TECTONICS - Plate tectonics is the scientific theory that attempts to explain the movements of the Earth's lithosphere that have formed the landscape features we see across the globe today. The word "plate" in geologic terms means a large slab of solid rock. "Tectonics" is a part of the Greek root for "to build" and together the terms define how the Earth's surface is built up of moving plates. The theory of plate tectonics says that the Earth's lithosphere is made up individual plates that are broken down into over a dozen large and small pieces of solid rock. These fragmented plates ride next to each other on top of the Earth's more fluid lower mantle to create different types of plate boundaries that have shaped the Earth's landscape. Plate tectonics grew out of a theory that was first developed by Alfred Wegener. Scientists today have a better understanding of tectonic plates, the driving forces of their movement, and the ways in which they interact with one another. A tectonic plate is defined as a rigid segment of the Earth's lithosphere that moves separately from those surrounding it. There are three main driving forces for the movement of the Earth's tectonic plates. They are mantle convection, gravity, and the Earth's rotation. Mantle convection is the most widely studied method of tectonic plate movement and it is very similar to the theory developed by Holmes. There are large convection currents of molten material in the Earth's upper mantle. As these currents transmit energy to the fluid portion of the Earth's lower mantle below the lithosphere new lithospheric material is pushed up toward the Earth's crust.

Picture of Graben and Horsts
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Plate Tectonics
Learn About the History and Principles of Plate Tectonics
By Amanda Briney


Plate tectonics is the scientific theory that attempts to explain the movements of the Earth's lithosphere that have formed the landscape features we see across the globe today.
By definition, the word "plate" in geologic terms means a large slab of solid rock.
"Tectonics" is a part of the Greek root for "to build" and together the terms define how the Earth's surface is built up of moving plates.
The theory of plate tectonics itself says that the Earth's lithosphere is made up individual plates that are broken down into over a dozen large and small pieces of solid rock.
These fragmented plates ride next to each other on top of the Earth's more fluid lower mantle to create different types of plate boundaries that have shaped the Earth's landscape over millions of years.
History of Plate Tectonics
Plate tectonics grew out of a theory that was first developed in the early 20th century by the meteorologist Alfred Wegener.
In 1912, Wegener noticed that the coastlines of the east coast of South America and the west coast of Africa seemed to fit together like a jigsaw puzzle.
Further examination of the globe revealed that all of the Earth's continents fit together somehow and Wegener proposed an idea that all of the continents had at one time been connected in a single supercontinent called Pangaea.
He believed that the continents gradually began to drift apart around 300 million years ago - this was his theory that became known as continental drift.
The main problem with Wegener's initial theory was that he was unsure of how the continents moved apart from one another.
Throughout his research to find a mechanism for continental drift, Wegener came across fossil evidence that gave support to his initial theory of Pangaea.
In addition, he came up with ideas as to how continental drift worked in the building of the world's mountain ranges.
Wegener claimed that the leading edges of the Earth's continents collided with each other as they moved causing the land to bunch up and form mountain ranges.
He used India moving into the Asian continent to form the Himalayas as an example.
Eventually, Wegener came up with an idea that cited the Earth's rotation and its centrifugal force toward the equator as the mechanism for continental drift.
He said that Pangaea started at the South Pole and the Earth's rotation eventually caused it to break up, sending the continents toward the equator.
This idea was rejected by the scientific community and his theory of continental drift was dismissed as well.
In 1929, Arthur Holmes, a British geologist, introduced a theory of thermal convection to explain the movement of the Earth's continents.
He said that as a substance is heated its density decreases and it rises until it cools sufficiently to sink again.
According to Holmes it was this heating and cooling cycle of the Earth's mantle that caused the continents to move. This idea gained very little attention at the time.
By the 1960s, Holmes' idea began to gain more credibility as scientists increased their understanding of the ocean floor via mapping, discovered its mid-ocean ridges and learned more about its age.
In 1961 and 1962, scientists proposed the process of seafloor spreading caused by mantle convection to explain the movement of the Earth's continents and plate tectonics.
Principles of Plate Tectonics Today
Scientists today have a better understanding of the make-up of the tectonic plates, the driving forces of their movement, and the ways in which they interact with one another.
A tectonic plate itself is defined as a rigid segment of the Earth's lithosphere that moves separately from those surrounding it.
There are three main driving forces for the movement of the Earth's tectonic plates.
They are mantle convection, gravity, and the Earth's rotation.
Mantle convection is the most widely studied method of tectonic plate movement and it is very similar to the theory developed by Holmes in 1929.
There are large convection currents of molten material in the Earth's upper mantle.
As these currents transmit energy to the Earth's asthenosphere (the fluid portion of the Earth's lower mantle below the lithosphere) new lithospheric material is pushed up toward the Earth's crust.
Evidence of this is shown at mid-ocean ridges where younger land is pushed up through the ridge, causing the older land to move out and away from the ridge, thus moving the tectonic plates.
Gravity is a secondary driving force for the movement of the Earth's tectonic plates.
At mid-ocean ridges, the elevation is higher than the surrounding ocean floor.
As the convection currents within the Earth cause new lithospheric material to rise and spread away from the ridge, gravity causes the older material to sink toward the ocean floor and aid in the movement of the plates.
The Earth's rotation is the final mechanism for the movement of the Earth's plates but it is minor in comparison to mantle convection and gravity.
As the Earth's tectonic plates move, they interact in a number of different ways and they form different types of plate boundaries.
Divergent boundaries are where the plates move away from each other and new crust is created.
Mid-ocean ridges are an example of divergent boundaries.
Convergent boundaries are where the plates collide with one another causing the subduction of one plate beneath the other.
Transform boundaries are the final type of plate boundary and at these locations, no new crust is created and none is destroyed.
Instead, the plates slide horizontally past one another. No matter the type of boundary though, the movement of the Earth's tectonic plates is essential in the formation of the various landscape features we see across the globe today.
How Many Tectonic Plates Are on Earth?
There are seven major tectonic plates (North America, South America, Eurasia, Africa, Indo-Australian, Pacific, and Antarctica) as well as many smaller, microplates such as the Juan de Fuca plate near the United States' state of Washington (map of plates).
To learn more about plate tectonics, visit the USGS website This Dynamic Earth: The Story of Plate Tectonics.

Amanda Briney
Geography Expert
Education
M.A., Geography, California State University - East Bay
B.A., English and Geography, California State University - Sacramento
Introduction
Professional geographer, writer, and scholar
Certificate of Advanced Study in Geographic Information Systems (GIS) 
More than 10 years of experience writing about a broad array of geographical topics
Experience
Amanda Briney is a professional geographer and writer who contributed to ThoughtCo for more than 10 years. She wrote countless articles on a wide range of topics such as an introduction to the subject of geography, reviews of ecotourism, discussions about environmental determinism, and the structure of Latin American cities. The scope of her work also includes other formats such as histories, guides, and fact sheets about many parts of the world. An ultimate scholar, Amanda also contributes work to academic venues and the GIS Lounge, an informational portal about geography.
Amanda enjoys all aspects of geography and mapping but is especially interested in examining natural landscapes through spatial analysis. As such, she holds a certificate in Geographic Information Systems (GIS) from California State University. She also attended Diablo Valley College where she studied air photo interpretation and the formation of the Earth's landscapes.
Education
Amanda Briney received a Master Arts (M.A.) in Geography from California State University–East Bay. She also holds a Bachelor Arts (B.A.) in English and Geography from California State University–Sacramento and earned a Certificate of Advanced Study in Geographic Information Systems (GIS) from California State University.
ThoughtCo and Dotdash
ThoughtCo is a premier reference site focusing on expert-created education content. We are one of the top-10 information sites in the world as rated by comScore, a leading Internet measurement company. Every month, more than 13 million readers seek answers to their questions on ThoughtCo.
For more than 20 years, Dotdash brands have been helping people find answers, solve problems, and get inspired. We are one of the top-20 largest content publishers on the Internet according to comScore, and reach more than 30% of the U.S. population monthly. Our brands collectively have won more than 20 industry awards in the last year alone, and recently Dotdash was named Publisher of the Year by Digiday, a leading industry publication.
Picture of Graben and Horsts

Wednesday, June 24, 2020

WASTEWATER TREATMENT - Wastewater treatment is the process of converting wastewater – water that is no longer needed or is no longer suitable for use – into bilge water that can be discharged back into the environment. It may be formed by a number of activities including bathing, washing, using the toilet, and rainwater runoff. Wastewater is full of contaminants including bacteria, chemicals, and other toxins. Its treatment aims at reducing the contaminants to acceptable levels to make the water safe for discharge back into the environment. There are two wastewater treatment plants namely chemical or physical treatment plants, and biological wastewater treatment plants. Biological waste treatment plants use biological matter and bacteria to break down waste matter. Physical waste treatment plants use chemical reactions as well as physical processes to treat wastewater. While Biological treatment systems are ideal for treating wastewater from households and business premises, Physical wastewater treatment plants are mostly used to treat wastewater from industries, factories, and manufacturing firms. Industrial waste is a matter of grave concern as wastewater from industries contain chemicals and other toxins. Treating wastewater should be encouraged. This will save water thereby paving the way towards a healthy and sustainable environment and will also prevent water-borne hazards that put human lives at stake.


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Wastewater Treatment
What is Wastewater Treatment?



Wastewater treatment is the process of converting wastewater – water that is no longer needed or is no longer suitable for use – into bilge water that can be discharged back into the environment.
It may be formed by a number of activities including bathing, washing, using the toilet, and rainwater runoff.
Wastewater is full of contaminants including bacteria, chemicals, and other toxins.
Its treatment aims at reducing the contaminants to acceptable levels to make the water safe for discharge back into the environment.
Having said that, what exactly is wastewater treatment and how does it work? Well, that is what we are going to learn over the next couple of sections.
Types of Wastewater Treatment Plants
There are two wastewater treatment plants namely chemical or physical treatment plants, and biological wastewater treatment plants.
Biological waste treatment plants use biological matter and bacteria to break down waste matter.
Alternatively, Physical waste treatment plants use chemical reactions as well as physical processes to treat wastewater.
While Biological treatment systems are ideal for treating wastewater from households and business premises, Physical wastewater treatment plants are mostly used to treat wastewater from industries, factories, and manufacturing firms.
Note that Industrial Waste here is a matter of grave concern as most of the wastewater from industries contain chemicals and other toxins that can largely harm the environment.
According to Wikipedia,
“Wastewater treatment is a process used to remove contaminants from wastewater or sewage and convert it into an effluent that can be returned to the water cycle with minimum impact on the environment, or directly reused. The latter is called water reclamation because treated wastewater can be used for other purposes. The treatment process takes place in a wastewater treatment plant (WWTP), often referred to as a Water Resource Recovery Facility (WRRF) or a Sewage Treatment Plant (STP). Pollutants in municipal wastewater (households and small industries) are removed or broken down.”
Step by Step Wastewater Treatment Process
The following is a step by step process of how wastewater is treated:
1. Wastewater Collection
This is the first step in the wastewater treatment process. 
Collection systems are put in place by the municipal administration, homeowners as well as business owners to ensure that all the wastewater is collected and directed to a central point.
Note that the wastewater collected here is primarily the water used in our everyday activities like cooking utensils, taking a bath, doing laundry, and more.
This water is collected and then directed to a treatment plant using underground drainage systems or by exhauster tracks owned and operated by business people.
The transportation of wastewater should however be done under hygienic conditions.
The pipes or tracks should be leak-proof and the people offering the exhausting services should wear protective clothing.
Since the slightest issue in the exhauster track might affect the overall treatment process, businesses manning the process take extra-care to prevent any mishap.
2. Odor Control
At the treatment plant, odor control is important, to say the least.
Wastewater contains a lot of dirty substances that cause a foul smell over time.
To ensure that the surrounding areas are free of the foul smell, odor treatment processes are initiated at the treatment plant.
All odor sources are contained and treated using chemicals to neutralize the foul smell producing elements. It is the first wastewater treatment plant process and it’s very important.
3. Screening
This is the next step in the wastewater treatment process.
Screening involves the removal of large objects for example nappies, cotton buds, plastics, diapers, rags, sanitary items, nappies, face wipes, broken bottles or bottle tops that in one way or another may damage the equipment.
Failure to observe this step results in constant machine and equipment problems.
Specially designed equipment is used to get rid of grit that is usually washed down into the sewer lines by rainwater.
The solid wastes removed from the wastewater are then transported and disposed off in landfills.
4. Primary Treatment
This process involves the separation of macrobiotic solid matter from the wastewater.
Primary treatment is done by pouring the wastewater into big tanks for the solid matter to settle at the surface of the tanks.
The sludge, the solid waste that settles at the surface of the tanks, is removed by large scrappers and is pushed to the center of the cylindrical tanks and later pumped out of the tanks for further treatment.
The remaining water is then pumped for secondary treatment.
5. Secondary Treatment
Also known as the activated sludge process, the secondary treatment stage involves adding seed sludge to the wastewater to ensure that it is broken down further.
Air is first pumped into huge aeration tanks that mix the wastewater with the seed sludge which is basically a small amount of sludge, which fuels the growth of bacteria that uses oxygen and the growth of other small microorganisms that consume the remaining organic matter.
This process leads to the production of large particles that settle down at the bottom of the huge tanks. The wastewater passes through the large tanks for a period of 3-6 hours.
6. Bio-solids handling
The solid matter that settles out after the primary and secondary treatment stages are directed to digesters.
The digesters are heated at room temperature. The solid wastes are then treated for a month where they undergo anaerobic digestion.
During this process, methane gases are produced and there is a formation of nutrient-rich bio-solids that are recycled and de-watered into local firms.
The methane gas formed is usually used as a source of energy at the treatment plants.
It can be used to produce electricity in engines or to simply drive plant equipment. This gas can also be used in boilers to generate heat for digesters.
7. Tertiary treatment
This stage is similar to the one used by drinking water treatment plants which clean raw water for drinking purposes.
The tertiary treatment stage has the ability to remove up to 99 percent of the impurities from the wastewater.
This produces effluent water that is close to drinking water quality.
Unfortunately, this process tends to be a bit expensive as it requires special equipment, well trained and highly skilled equipment operators, chemicals, and steady energy supply.
8. Disinfection
After the primary treatment stage and the secondary treatment process, there are still some diseases causing organisms in the remaining treated wastewater.
To eliminate them, the wastewater must be disinfected for at least 20-25 minutes in tanks that contain a mixture of chlorine and sodium hypochlorite.
The disinfection process is an integral part of the treatment process because it guards the health of the animals and the local people who later use the water for other purposes.
The effluent (treated wastewater) is later released into the environment through the local waterways.
This water may now be used in industries, for irrigation, and to meet a range of other purposes like doing laundry and washing clothes.
9. Sludge Treatment
The sludge that is produced and collected during the primary and secondary treatment processes requires concentration and thickening to enable further processing.
It is put into thickening tanks that allow it to settle down and later separates from the water. This process can take up to 24 hours.
The remaining water is collected and sent back to the huge aeration tanks for further treatment.
The sludge is then treated and sent back into the environment and can be used for agricultural use.
The Benefits of Wastewater Treatment
Wastewater treatment has a number of benefits. For example, wastewater treatment ensures that the environment is kept clean, there is no water pollution.
You probably know at this point, how important it is to prevent water pollution.
After all, it causes countless ailments in both humans and animals. In the worst cases, it might even lead to death.
Treating wastewater minimizes water pollution, thereby keeping us safe and healthy.
We also laud this process because it ingeniously makes use of the most important natural resource; water.
After the treatment, the water can be used for cooling machines in factories and industries.
It will minimize the need of using freshwater, thereby, in a way, saving water.
Treating wastewater also prevents the outbreak of waterborne diseases and most importantly, it ensures that there is adequate water for other purposes like irrigation.
That is why it is extremely important to encourage this process and make it a part of our daily lives.
Finally, one should note that wastewater is but a complex combination of several special chemicals, nutrients, and most importantly, metal particles.
Recovering the metal particles, in particular, can effectively address the community level demands of useful natural resources.
Scientists are constantly employing new methods to enhance the resource recovery process from wastewater, and thanks to them, we can now use treated wastewater for a variety of purposes.
Conclusion
In summary, the wastewater treatment process is one of the most important environmental conservation processes that should be encouraged worldwide.
Most wastewater treatment plants treat wastewater from homes and business places.
Industrial plants, refineries, and manufacturing plants wastewater is usually treated at the onsite facilities.
These facilities are designed to ensure that the wastewater is treated before it can be released to the local environment.
Some of the water is used for cooling the machines within the plants and treated again. They try to ensure that nothing is lost.
It is illegal for disposing untreated wastewater into rivers, lakes, oceans, or into the environment, and if found culpable one can be prosecuted.
Either way, since wastewater is a matter of grave concern, treating it should be encouraged time and again.
This will not just help save water thereby paving the way towards a healthy and sustainable environment, but it will also prevent water-borne hazards that put millions of human lives at stake.

Rinkesh. A true environmentalist by heart ️. Founded Conserve Energy Future with the sole motto of providing helpful information related to our rapidly depleting environment. Unless you strongly believe in Elon Musk‘s idea of making Mars as another habitable planet, do remember that there really is no 'Planet B' in this whole universe.