Perspectives on science and innovation in the face of global environmental change.
Showing posts with label energy. Show all posts
Showing posts with label energy. Show all posts
May 21, 2012
Adoption of innovations and path dependence
A few articles recently came up that clearly demonstrate some of the basic concepts of technological innovation. So let's see what I can do...
First, as the folks at the Breakthrough Institute explain, one of the key factors for technological innovation is in bringing down prices of technologies and their inputs. This is extremely relevant for clean-tech innovation, because one could argue that there is no way people will buy clean energy en masse if its more expensive than fossil-fuel-based energy. Unless clean energy proponents can demonstrate a substantial improvement in the end product, consumers aren't willing to pay more. Traditional economics tells us that this means the government should subsidize clean energy or tax fossil fuels in order to account for the positive/negative externalities, but Breakthrough makes a more compelling argument that we should invest in new technologies and consider technology a cause, rather than effect, of economic growth.
So what happens when innovation creates new inputs (cheaper energy, new drugs, better crops)? People adopt them, of course. Not all innovations are adopted; I went to a talk last year where the speaker said something like, "people have a million reason not to adopt an innovation, and only a few reasons to adopt it." The context was why people don't adopt things that we consider universally good, such as medicines, etc., especially in developing countries. But in general, an innovation that gains traction follows a standard pattern of adoption, as explained here (h/t Arijit). Since the comments on that article complained of the academic language, here it is in the simplest terms: 1) more innovative/networked/wealthier people adopt new technologies first, 2) other people see how cool/useful the innovations are and start adopting it themselves, and 3) adoption of that innovation reaches a "tipping point" where you just can't live without it. For example, once all farmers started growing hybrid corn, its much more difficult to not grow it because they will outcompete you. Also think about cell phones- those few people holding out without a cell (or smartphone, to a lesser extent) have more and more problems functioning in a wireless world.
But what happens when, for some reason or other, the wrong technologies got adopted? For example, we find out that the chemical we've been putting in furniture as a flame-retardant is actually harmful to human health? Regardless of why we decided to use that chemical, by this point its passed the tipping point and has now achieved path dependence. Path dependence is where you're literally stuck producing things in a certain way. For example, we fill our cars with gasoline not just because its cheaper, but because there is a lack of alternative infrastructure for other fuels or types of engines/cars. So this flame retardant, although maybe it was initially more expensive, is now a cheap way for furniture producers to claim their products as "flame retardant," and the chemical companies are more than happy to keep producing the same cheap chemicals. This is a fundamental problem technologies, and is called technological lock-in. Because one technology dominates, it limits our scope of future options. This concept is incredibly important to many fields, including agriculture, health, and energy, yet remains poorly understood.
Perhaps this is for another day, but here's a great piece from Slate on the "myth of the lone inventor." Quite applicable to what's going on at an ASU conference in DC today.
January 7, 2012
Energy Innovation and the Department of Defense
Last spring I spent a lot of time learning about military history. Not really by choice, but rather in an effort to better understand technological innovation. In my classes with Dan Sarewitz and ASU's president Michael Crow, we constantly discussed how many of the core innovations of the 20th century had military origins. In other words, "Steve Jobs didn't just invent the computer in his garage" (paraphrasing my professors). Both computers and the internet have a distinct military heritage.
The military often plays a role in technological innovation because most technologies need an "incubation" stage before they are commercialized. Since private firms are sometimes unwilling to take on this risk, the federal government often plays a role in incubating technologies (many of which will turn out to be failures) through research and development contracts (called procurement). Because of this connection between military spending and technological innovation, Sarewitz describes the possible backlash if defense budgets get cut in a NYT article yesterday. The article states,
As the Pentagon confronts the prospect of cutting its budget by about 10 percent over the next decade, even some people who do not count themselves among its traditional allies warn that the potential impact on scientific innovation is being overlooked. Spending less on military research, they say, could reduce the economy’s long-term growth.
This is not good news, but Sarewitz and others are not calling for more weaponry, but rather more public-good oriented investments, such as in renewable energy. Because the military is a key user of technology, it has a stake in developing commercial technologies from airplanes to computers to renewable energy, which we reap the benefits of. And this shows the difference between the military’s capacity to promote technological innovation and, say, the Department of Energy’s (DoE). The DoE is ultimately not the end user, and is driven by different scientific and public policy motivations. This, plus relatively declining investments in renewable energy through the DoE, result in a stagnant pool of innovation. Yet soldiers’ lives depend on fuel efficiency, sources, and transportation for military aircraft and vehicles, prompting the Department of Defense to pay very close attention to energy issues and even climate change.
There is an ongoing question throughout the history of science policy on the relationships between the military, industry, and universities. Eisenhower famously warned about the “military-industrial complex” in 1961. Yet regardless of the military applications of alternative energy technologies, this presents an interesting strategy for commercializing technologies on a national, if not global, scale. Many environmental advocates envision the government supporting an Apollo of Manhattan Project for clean energy. The Department of Defense can take on projects with a high risk of failure that other agencies and companies can't, because of their access to research and development funding.
We can relate energy systems back to Freeman and Louca’s work on Kondratian waves and core inputs in our sociotechnical system. They discuss how coal and iron became integral to England’s national industrial infrastructure only after railways brought down prices. Even so, there was political and cultural resistance to steam engines in some places (just like now, there's resistance to windmills, and other NIMBY issues with alternative energy). Energy is one of the most essential core inputs, and a change in this could fundamentally alter our society in ways that we cannot imagine (like how two-hundred years ago, it would seem preposterous that we could get fertilizer from the air). The military could play a role in incubating new alternative energy technologies that are not yet technologically possible or commercially viable. I agree with Sarewitz that I don't necessarily want to see more guns, but I also don't want to see energy security fall by the wayside.
Further reading:
As Time Goes By: From the Industrial Revolutions to the Information Revolution.
David Mowrey, Paths of Innovation: Technological Change in 20th-Century America.
Vernon Ruttan,
Is War Necessary for Economic Growth?: Military Procurement and Technology Development.
Labels:
climate change,
energy,
innovation,
public value,
science policy,
technology
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