Tag Archives: cobalt

Electric Cars & Resource Wars, by Stan Cox and Priti Gulati Cox

It will be a monumental challenge to find enough cobalt and lithium to meet projected demand for these elements, which are essential for EV batteries. From Stan Cox and Priti Gulati Cox at consortiumnews.com:

Much of the excitement over the Inflation Reduction Act, which became law this summer, focused on the boost it should give to the sales of electric vehicles. Sadly, though, manufacturing and driving tens of millions of individual electric passenger cars won’t get us far enough down the road to ending greenhouse-gas emissions and stanching the overheating of this planet. Worse yet, the coming global race to electrify the personal vehicle is likely to exacerbate ecological degradation, geopolitical tensions and military conflict.

The batteries that power electric vehicles are likely to be the source of much international competition and the heart of the problem lies in two of the metallic elements used to make their electrodes: cobalt and lithium. Most deposits of those metals lie outside the borders of the United States and will leave manufacturers here (and elsewhere) relying heavily on foreign supplies to electrify road travel on the scale now being envisioned.

Adventurers & Opportunists

In the battery business, the Democratic Republic of Congo is referred to as “the Saudi Arabia of cobalt.” For two decades, its cobalt — 80 percent of the world’s known reserves — has been highly prized for its role in mobile-phone manufacturing. Such cobalt mining has already taken a terrible human and ecological toll.

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Lithium, Cobalt, and Rare Earths, by Michael Klare

A lot of future technologies that the world is counting on to make the world a greener place rely on a handful of metals most people have never heard of. From Michael Klare at tomdispatch.com:

The Post-Petroleum Resource Race and What to Make of It

Thanks to its very name — renewable energy — we can picture a time in the not-too-distant future when our need for non-renewable fuels like oil, natural gas, and coal will vanish. Indeed, the Biden administration has announced a breakthrough target of 2035 for fully eliminating U.S. reliance on those non-renewable fuels for the generation of electricity. That would be accomplished by “deploying carbon-pollution-free electricity-generating resources,” primarily the everlasting power of the wind and sun.

With other nations moving in a similar direction, it’s tempting to conclude that the days when competition over finite supplies of energy was a recurring source of conflict will soon draw to a close. Unfortunately, think again: while the sun and wind are indeed infinitely renewable, the materials needed to convert those resources into electricity — minerals like cobalt, copper, lithium, nickel, and the rare-earth elements, or REEs — are anything but. Some of them, in fact, are far scarcer than petroleum, suggesting that global strife over vital resources may not, in fact, disappear in the Age of Renewables.

To appreciate this unexpected paradox, it’s necessary to explore how wind and solar power are converted into usable forms of electricity and propulsion. Solar power is largely collected by photovoltaic cells, often deployed in vast arrays, while the wind is harvested by giant turbines, typically deployed in extensive wind farms. To use electricity in transportation, cars and trucks must be equipped with advanced batteries capable of holding a charge over long distances. Each one of these devices uses substantial amounts of copper for electrical transmission, as well as a variety of other non-renewable minerals. Those wind turbines, for instance, require manganese, molybdenum, nickel, zinc, and rare-earth elements for their electrical generators, while electric vehicles (EVs) need cobalt, graphite, lithium, manganese, and rare earths for their engines and batteries.

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But…Then There’s Math, by Raúl Ilargi Meijer

One tiny little problem with that all electric-car future: you’re never going to be able to mine enough lithium and cobalt for car batteries, and if you could, the environmental costs would be monumental. From Raúl Ilargi Meijer at theautomaticearth.com:

Dr. D posted this as a short comment, not an article, and he’s welcome, encouraged even, to expand on it at a later date. But I think it’s important enough, and detailed enough, to in fact make it an article. We can take if from here. The blind drive towards EV’s is going to hurt, and we should prepare for that.

The idea, and the concept, that we can simply switch from one energy source to another and keep motoring and do all the other things we do, is nothing but a cheap and meaningless sales pitch. To produce 20 million Tesla’s would require 165% of the entire 2019 global lithium production, says this from mining.com:

That’s just Tesla, that doesn’t yet include the entire rest of the world’s car manufacturers who also claim they’ll go “green”. But then we’ll just raise the production of lithium! Well, there may be a problem with that…

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Not As Green As You Think – Global EV Push Sparks Cobalt Chaos, by Tyler Durden

Take a look at what goes into the electric cars’ lithium-ion batteries and how those minerals are mined and it may well change your mind that this is a “green” technology. From Tyler Durden at zerohedge.com:

Global cobalt prices per metric ton are up more than 20% since the beginning of this year as increasing electric vehicle demand has strained global supply chains.

WSJ spoke with auto and battery experts about cobalt, a metal found in lithium-ion batteries. Besides EVs, the blue metal is found in virtually every consumer electronics like cell phones, laptop computers, and tablets.

Ying Lu, an analyst at London-based commodity research firm Roskill, was quoted by WSJ as saying, “demand is not going to shrink any time soon, while the supply remains tight mainly due to logistics disruptions in South Africa during the pandemic.”

As explained by InsideSources, every EV battery contains cobalt, with most of it mined in the Democratic Republic of Congo (DRC).

DRC has sustained years of destabilization as the Congo government and armed militants duke it out over the control of mines. Much of the DRC cobalt is then hauled to South Africa and shipped to China for processing.

It’s not just automakers and suppliers buying cobalt from DRC, many are trying to recycle cobalt from old batteries and exploring other regions around the world for alternative sourcing.

As a reminder, the Trump administration has signed an executive order in the US mining industry, highlighting America’s dangerous overdependence on China for rare-earth metals.

In 2016 and 2018, massive interest poured into EVs with the Model 3 Tesla launch. Cobalt prices nearly quadrupled in that timeframe before crashing down in 2019. A recent move higher in prices could suggest that speculators have entered the market with the idea that President Biden’s effort for a greener economy could result in higher demand for the metal.

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The Human Cost Of The EV Revolution, by Irina Slav

People might not be quite as jazzed about electric cars if they knew the cobalt in the battery had been mined by children. From Anes Alic at oilprice.com:

Mining

There’s a chance that the iPhone you’re about to get for Christmas contains cobalt mined by a six-year-old. There’s also a chance that that six-year-old has been killed or maimed in the processes of mining in the Democratic Republic of Congo, where the lion’s share of the world’s cobalt comes from.

Or, maybe, for those whose Christmas lists are more upscale, you’ll be driving around in a new Tesla next week, with a battery containing cobalt from that same mine.

The EV and electronics revolutions have come at a steep human cost: a boom in child labor in the DRC as child cobalt miners offer battery makers and Big Tech cheap labor.

That’s the focus of the first-ever lawsuit targeting giant tech firms as end-users of cobalt from mines in which young children have died.

Having failed to bring down giant miners of cobalt in DRC, such as Glencore, this time lawyers are going after the end users themselves.

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