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Jordan River (Utah)

 
 
From Wikipedia, the free encyclopedia
 
Jordan River
Proveau's Fork, West Jordan River
Jordan River Dam, 1908-01-28.jpg
Dam at Jordan River Narrows in 1901
Jordan River Utah with locator map.png
Map of the Jordan Subbasin and the location of Salt Lake County in Utah (inset)
Etymology Named after the Jordan River
Location
Country United States
State Utah
Counties UtahSalt Lake
Physical characteristics
Source Utah Lake
 • location Utah CountyUtah
 • coordinates 40°21′34″N 111°53′40″W[1]
 • elevation 4,489 ft (1,368 m)(compromise level)[2]
Mouth Great Salt Lake
 • location Davis CountyUtah
 • coordinates 40°53′52″N 111°58′25″W[1]
 • elevation 4,200 ft (1,300 m)(historical average)[3]
Length 51.4 mi (82.7 km)[4]
Basin size 791 sq mi (2,050 km2)[5]
Discharge  
 • location mouth
 • average 524 cu ft/s (14.8 m3/s)

The Jordan River, in the state of Utah, United States, is a river about 51 miles (82 km) long. Regulated by pumps at its headwaters at Utah Lake, it flows northward through the Salt Lake Valley and empties into the Great Salt Lake. Four of Utah's six largest cities border the river: Salt Lake CityWest Valley CityWest Jordan, and Sandy. More than a million people live in the Jordan Subbasin, part of the Jordan River watershed that lies within Salt Lake and Utah counties. During the Pleistocene, the area was part of Lake Bonneville.

Members of the Desert Archaic Culture were the earliest known inhabitants of the region; an archaeological site found along the river dates back 3,000 years. Mormon pioneers led by Brigham Young were the first European American settlers, arriving in July 1847 and establishing farms and settlements along the river and its tributaries. The growing population, needing water for drinking, irrigation, and industrial use in an arid climate, dug ditches and canals, built dams, and installed pumps to create a highly regulated river.

Although the Jordan was originally a cold-water fishery with 13 native species, including Bonneville cutthroat trout, it has become a warm-water fishery where the common carp is most abundant. It was heavily polluted for many years by raw sewage, agricultural runoff, and mining wastes. In the 1960s, sewage treatment removed many pollutants. In the 21st century, pollution is further limited by the Clean Water Act, and, in some cases, the Superfund program. Once the home of bighorn sheep and beaver, the contemporary river is frequented by raccoonsred foxes, and domestic pets. It is an important avian resource, as are the Great Salt Lake and Utah Lake, visited by more than 200 bird species.

Big CottonwoodLittle CottonwoodRed Butte, Mill, Parley's, and City creeks, as well as smaller streams like Willow Creek at Draper, Utah, flow through the sub-basin. The Jordan River Parkway along the river includes natural areas, botanical gardens, golf courses, and a 40-mile (64 km) bicycle and pedestrian trail, completed in 2017.[6]

Course[edit]

The Jordan River is Utah Lake's only outflow. It originates at the northern end of the lake between the cities of Lehi and Saratoga Springs. It then meanders north through the north end of Utah Valley for approximately 8 miles (13 km) until it passes through a gorge in the Traverse Mountains, known as the Jordan Narrows. The Utah National Guard base at Camp Williams lies on the western side of the river through much of the Jordan Narrows.[7][8] The Turner Dam, located 41.8 miles (67.3 km) from the river's mouth (or at river mile 41.8) and within the boundaries of the Jordan Narrows, is the first of two dams of the Jordan River. Turner Dam diverts the water to the right or easterly into the East Jordan Canal and to the left or westerly toward the Utah and Salt Lake Canal. Two pumping stations situated next to Turner Dam divert water to the west into the Provo Reservoir CanalUtah Lake Distribution Canal, and Jacob-Welby Canal. The Provo Reservoir Canal runs north through Salt Lake County, Jacob-Welby runs south through Utah County. The Utah Lake Distribution Canal runs both north and south, eventually leading back into Utah Lake.[9] Outside the narrows, the river reaches the second dam, known as Joint Dam, which is 39.9 miles (64.2 km) from the river's mouth. Joint Dam diverts water to the east for the Jordan and Salt Lake City Canal and to the west for the South Jordan Canal.[10][11][12]

A map showing the Salt Lake Valley. It shows the locations of the cities inside the valley with mountain ranges on either side of the valley.
Map of the Salt Lake Valley

The river then flows through the middle of the Salt Lake Valley, initially moving through the city of Bluffdale and then forming the border between the cities of Riverton and Draper.[7] The river then enters the city of South Jordan where it merges with Midas Creek from the west. Upon leaving South Jordan, the river forms the border between the cities of West Jordan on the west and Sandy and Midvale on the east. From the west, Bingham Creek enters West Jordan. Dry Creek, an eastern tributary, combines with the main river in Sandy. The river then forms the border between the cities of Taylorsville and West Valley City on the west and Murray and South Salt Lake on the east. The river flows underneath Interstate 215 in Murray. Little and Big Cottonwood Creeks enter from the east in Murray, 21.7 miles (34.9 km) and 20.6 miles (33.2 km) from the mouth respectively. Mill Creek enters on the east in South Salt Lake, 17.3 miles (27.8 km) from the mouth. The river runs through the middle of Salt Lake City, where the river travels underneath Interstate 80 a mile west of downtown Salt Lake City and again underneath Interstate 215 in the northern portion of Salt Lake City. Interstate 15 parallels the river's eastern flank throughout Salt Lake County. At 16 miles (26 km) from the mouth, the river enters the Surplus Canal channel. The Jordan River physically diverts from the Surplus Canal through four gates and heads north with the Surplus Canal heading northwest. Parley's, Emigration, and Red Butte Creeks converge from the east through an underground pipe, 14.2 miles (22.9 km) from the mouth.[7] City Creek also enters via an underground pipe, 11.5 miles (18.5 km) from the river's mouth. The length of the river and the elevation of its mouth varies year to year depending on the fluctuations of the Great Salt Lake caused by weather conditions. The lake has an average elevation of 4,200 feet (1,300 m) which can deviate by 10 feet (3.0 m).[3] The Jordan River then continues for 9 to 12 miles (14 to 19 km) with Salt Lake County on the west and North Salt Lake and Davis County on the east until it empties into the Great Salt Lake.[7][8][11]

Discharge[edit]

The United States Geological Survey maintains a stream gauge in Salt Lake City that shows annual runoff from the period 1980–2003 is just over 150,000 acre-feet (190,000,000 m3) per year or 100 percent of the total 800,000 acre-feet (990,000,000 m3) of water entering the Jordan River from all sources. The Surplus Canal carries almost 60 percent of the water into the Great Salt Lake, with various irrigation canals responsible for the rest. The amount of water entering the Jordan River from Utah Lake is just over 400,000 acre-feet (490,000,000 m3) per year. Inflow from the 11 largest streams feeding the Jordan River, sewage treatment plants, and groundwater each account for approximately 15 percent of water entering the river.[13]

Watershed[edit]

The Jordan River Basin is in northern Utah.
Map of the entire Jordan River Basin

 

Jordan River
Proveau's Fork, West Jordan River
Jordan River Dam, 1908-01-28.jpg
Dam at Jordan River Narrows in 1901
Jordan River Utah with locator map.png
Map of the Jordan Subbasin and the location of Salt Lake County in Utah (inset)
Etymology Named after the Jordan River
Location
Country United States
State Utah
Counties UtahSalt Lake
Physical characteristics
Source Utah Lake
 • location Utah CountyUtah
 • coordinates 40°21′34″N 111°53′40″W[1]
 • elevation 4,489 ft (1,368 m)(compromise level)[2]
Mouth Great Salt Lake
 • location Davis CountyUtah
 • coordinates 40°53′52″N 111°58′25″W[1]
 • elevation 4,200 ft (1,300 m)(historical average)[3]
Length 51.4 mi (82.7 km)[4]
Basin size 791 sq mi (2,050 km2)[5]
Discharge  
 • location mouth
 • average 524 cu ft/s (14.8 m3/s)
Jordan River (Utah) - Wikipedia
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James Watt and the sabbath stroll that created the industrial revolution

This article is more than 9 years old

On a spring Sunday in May 250 years ago, the Scottish engineer had a stroke of mechanical inspiration – and changed the world

 
Robin McKie
 Science Editor
Fri 29 May 2015 15.48 BST
 

Two hundred and fifty years ago this month, a young Scottish engineer took a Sunday walk across Glasgow Green – and changed the world. Thanks to the idea dreamed up by James Watt that Sunday in May 1765, human beings became masters of power generation and so transformed our planet.

At the time, Watt was merely fixated with the problems posed by the primitive and inefficient steam engines that were then being used to pump water from mines, and had already made several futile attempts to improve them. Then, on his Sunday walk, the idea for a new device – which he later called the separate condenser – popped into his mind.

 

It was a notion that would have stunning consequences. The separate condenser changed the steam engine from a crude and inefficient machine into one that became the mainstay of the industrial revolution. Britain was transformed from an agricultural country into a nation of manufacturers.

Today, many scientists believe the processes unleashed by Watt have begun to alter the physical makeup of our planet. After two-and-a-half centuries of spewing out carbon dioxide from plants and factories built in the wake of his condenser’s invention, the atmosphere and crust of the Earth are beginning to be transformed. Watt truly changed the world, it seems.

Indeed, that walk on Glasgow Green remains “one of the best recorded, and most repeated, eureka moments since Archimedes leaped out of his bathtub”, according to William Rosen in his book The Most Powerful Idea in the World: A Story of Steam, Industry and Invention, published in 2010.

In 1765, Watt – then an instrument-maker based at Glasgow University – was working on a Newcomen pump, a state-of-the-art device in which steam pushed a piston through a cylinder. Water was then sprayed into the cylinder, cooling it and causing the steam to condense, creating a vacuum behind the piston that sucked it back into its original position. More steam was pumped in and the piston was pushed forward again.

It was a very powerful process but also a very inefficient one. Constantly heating and then cooling the engine’s huge cylinder required huge amounts of heat and coal. Steam engines like these had only limited usefulness.

Then Watt set off on his walk. When he was halfway across the green, the idea of a separate condenser came into his mind. Such a device would, he realised, create a vacuum that would help suck in the engine’s piston but still allow its main cylinder to operate at a constant temperature. “I had not walked further than the golf-house when the whole thing was arranged in my mind,” he later recalled.

The earliest known portrait of James Watt, painted by Carl Fredrik von Breda in 1792. Photograph: SSPL via Getty Images

Watt would have gone to work straight away but was constrained by the dictates of the Scottish sabbath. He quickly made a model of his device, nevertheless, and this is now displayed in the Science Museum in London. Four years later, he patented the condenser – and triggered the industrial revolution.

“Watt’s condenser tripled the efficiency of the steam engine and that meant that mill or mine owners got three times more mechanical work for every tonne of coal they had to buy,” says Colin McInnes, professor of engineering science at Glasgow University. “It meant that Britain’s coal stocks had been effectively trebled. He made a tremendous difference to the rate at which industry spread through Britain and subsequently the rest of the world.”

Until Watt, human enterprise was constrained by the process of photosynthesis, says McInnes. “In other words, we had to rely on natural living sources for the power we needed to run our factories or plants: fast-flowing water or horses or burning wood. By making the steam efficient, Watt changed all that. He gave us the means to exploit energy-dense fossil fuels in an effective manner. It changed the world and ended the era of renewable energy.”

This point is backed up by Ben Russell, curator of mechanical engineering at the Science Museum, and author of James Watt: Making the World Anew, published last year. “Before Watt, industry had to rely on water power, and there was a strict limit to the number of factories you could build on the banks of fast-flowing rivers,” he says.

“After Watt invented the separate condenser, you could build highly efficient factories almost anywhere you wanted. It made it possible to build plants that were driven by cheap, relatively easy sources: coal and steam. The cotton industry was transformed. So was brewing. And mining. Watt brought wide acceptance of steam as a power source.”

Within a few decades of Watt’s breakthrough, networks of factories and mines, linked by railways, were spreading across the country, triggering a national frenzy for fossil fuels that has since become a global obsession. Steam power no longer dominates global industry but our reliance on fossil fuels such as coal, oil and gas still lingers – with growing impacts on the planet.

Indeed, the Nobel-prizewinning chemist Paul Crutzen now argues that the greenhouse gases produced by burning fossil fuels have brought about such profound changes that we must accept the world has entered a new epoch. He calls it the “anthropocene”.

","alt":"How the condenser works","index":16,"isTracking":false,"isMainMedia":false}" data-island-status="hydrated" style="box-sizing: border-box;">

According to Crutzen and many other scientists, the planet is no longer being shaped primarily by natural processes but by ones set loose by human beings. We are raising levels of carbon dioxide in the atmosphere, scarring the planet’s surface in our search for coal and metals, cutting down forests to make way for factories and homes, and acidifying the oceans. Humans have become planet changers.

As to the event that triggered this onslaught, there are few better candidates than Watt’s stroll across Glasgow Green 250 years ago – though for such a momentous event, it is still afforded remarkably little recognition.

Indeed, it was only relatively recently, in the 1980s, that Glasgow’s councillors decided to install a small boulder in what is Glasgow’s oldest park, with a simple inscription: “Near this spot in 1765, James Watt conceived the idea for the separate condenser for the steam engine.”

By contrast, a few metres away, a 40-metre obelisk dedicated to Horatio Nelson was erected in 1806, only a year after his death at Trafalgar. Thus a remote battle was celebrated with a grandiose monument while an invention that gave birth to the industrial revolution and changed the world had to wait almost two centuries for recognition – in the form of a small stone.

On the other hand, Watt’s striking achievement will be recognised on 5 June, when Glasgow University stages a seminar, The Invention that Changed the World, focusing on Watt and his revolutionary separate condenser, as part of the Glasgow Science Festival.

“Watt was a real product of the enlightenment,” says the seminar’s organiser Lesley Richmond, deputy director of Glasgow University’s archives. “He was self taught, yet went on to work at Glasgow University at a time when Adam Smith and Joseph Black were teaching there.

“He was far more than just the inventor of the separate condenser, though that was the device that was to have the greatest impact. He also invented a machine for copying documents, for example – an early photocopier, in effect.

“And there is so much we can still learn about him. Many of his devices and papers have still to be properly archived and studied. In 2019, we will mark the bicentenary of Watt’s death. By then, we want to have all his work in digital form. Then we will get a real chance to appreciate his fantastic achievements.”

https://www.theguardian.com/technology/2015/may/29/james-watt-sabbath-day-fossil-fuel-revolution-condenser

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