Update metadata and transcripts through end of July 2026
Refreshed episodes/hosts/comments/series from hpr.sql, and added official HPR transcripts for the 180 episodes aired since the last sync (hpr4516-hpr4695).
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Episode: 4668
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Title: Nuclear Power Technology Follow Up on Safety
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Source: https://hub.hackerpublicradio.org/ccdn.php?filename=/eps/hpr4668/hpr4668.mp3
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Transcribed: 2026-07-31 16:16:17 (official HPR transcript)
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---
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This is Hacker Public Radio Episode 4668, for 2026-06-24
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Today's show is entitled, "Nuclear Power Technology Follow Up on Safety"
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The host is Whiskeyjack and the duration is 00:36:06
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The flag is Clean, and the license is CC-BY-SA
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The summary is "Response to a question posed by a listener on the comparative safety of different energy sources"
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This is the second follow-up to my eight-part series, a nuclear power.
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In this episode, I will attempt to answer a question posed by Brian and Ohio in a comment
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on HPR 4583.
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In that comment, he said, loving this series, maybe Whiskey Jack could give some cost comparisons
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between large and small reactors.
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He could also give us a realistic look at nuclear plants, safety, and accidents compared
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to conventional power production.
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Looking forward to the episode on fourth-generation reactors.
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And of quote, the first question I answered in my previous follow-up, which was HPR 4628.
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In this episode, I will attempt to answer the second question, which was about the safety
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of nuclear power, compared to other sources of electrical power generation.
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One of the HPR janitors encouraged me to make this episode, so I think we can thank him
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for getting another HPR episode made.
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Defining the scope, first, let's define the scope of the question.
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This will cover electrical power generation only.
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Within that scope, I will consider only the following sources of energy.
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Coal, oil, natural gas, hydroelectric, nuclear, wind, solar.
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I won't cover geothermal, wave, or tidal power, as these are only used in very small amounts,
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and so there simply isn't enough literature on them to base a discussion on.
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I should mention right away that I cannot provide absolute answers to this question in the
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form of a nice, neat ranking table based on numbers from peer-reviewed scientific sources.
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The reason for this will become apparent, but to put it briefly, the data on which to
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base such a ranking simply doesn't exist.
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I will, however, provide context within which people can think about the issue.
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Wherever possible, I will provide links to references that I use in the show notes so
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that you can read further on this yourself.
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Energy catastropheism versus energy-uniformitarianism.
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First of all, I need to go off on a slight geological detour in order to explain an important
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analogy that I will use.
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In the 19th century, there was a great debate among geologists over what is known as catastrophe
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ism versus uniformitarianism.
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In seeking to explain the origins of the Earth and the landscape that we see around us,
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there were two points of view.
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One was catastrophism.
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This is the belief that the mountains, valleys, and planes that we see around us were formed
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as a result of great catastrophes which occurred relatively recently in Earth's history.
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This explanation was necessary in order to fit geological features into an Earth that
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was believed to be only a few thousands of years old.
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This view was heavily influenced by religious belief.
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In this view, Noah's flood was the great catastrophe and the fossils of dinosaurs were
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where there remains of animals which had not been saved on the ark and so had died in
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the flood.
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The other point of view was uniformitarianism.
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This was the hypothesis that the landscape we see around us can be explained by the very
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slow accumulation of very small changes over a very long periods of time.
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For this to be true, however, the Earth had to be far older than the few thousand years
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that a literal reading of the Bible would suggest.
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The Earth, in fact, had to be many, many millions of years old.
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Eventually, the uniformitarian view won out and people understood that while some catastrophe
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can take place, the shape of the landscape is overwhelmingly due to small changes over
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very long periods of time.
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How is this relevant to this episode you ask?
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How this is relevant is that I will use a analogy to explain how we need to think about
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energy and safety.
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Very small numbers of deaths and injuries multiplied over many occurrences could add up
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to big numbers, comparable in scale or possibly even larger than a single catastrophe or
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even several of them.
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I don't know if anyone has ever used a analogy before, I've just thought of this while
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writing the script for this podcast.
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Nonetheless, I think it is a very useful way of helping to understand the issues.
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As an example of this, think about the well-known case of the safety of flying versus
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the safety of traveling at your car.
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Other crashes or catastrophes that make the headlines.
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Automobile crashes are sold a more than local news at best.
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You have probably heard many times acclaimed that if you are making a trip somewhere, you
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are safer to fly than to drive yourself in your car.
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Example, Hydro versus Solar, and when I will present an example of this, Hydroelectric
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Power has some notable large scale at catastrophes associated with it.
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If top solar power does not have any notable catastrophes that I am aware of, however,
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which is safer, Hydro-Catastrophies, here are three examples of hydroelectric catastrophes
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in just one country, Italy.
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The Vaisant Dam, which collapsed in 1963,
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an estimated 1,917 to 2,500 people died.
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The cellars or bino dam, which collapsed in 1935,
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more than 100 people died.
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The gino dam, which collapsed in 1923, an estimated 350 people died.
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I haven't tried to compile a global list of the worst hydroelectric dam collapses,
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as this sort of information is actually very difficult to find,
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even on websites dedicated to dam failures.
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An additional problem is that information a weathery dam was used for electric power generation
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or not is often not available.
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Dam failures were contradictory or insufficient information is available,
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on whether there was an associated hydro plant,
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including the 1975 bankian dam failure, where death estimates range up to a quarter of a million.
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Solar panel slow accumulation,
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contrasts with rooftop solar panels,
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many small accidents could add up to big numbers as well.
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Health and safety literature, discussing solar panel safety,
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mentioned such things as falls from roofs, electric shock,
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arc flash that is burns from electrical arcing,
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normal electrical safety procedures, which are based around locking out sources of energy,
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do not work with solar panels, which makes safety more difficult, and heat stress
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due to working it exposed in the hot sun.
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Why we cannot compare the two.
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Hydro-catastrophies are not well documented,
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but we can at least find records of some of the most notable ones.
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However, even though it's have very large variations in estimates of deaths.
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rooftop solar deaths, however, are largely undocumented.
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The industry is largely unregulated.
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There is no central authority which accumulates many individual deaths or injuries.
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At best, there are worker and public safety bodies
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who simply accumulate those statistics into general construction or household injuries.
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Thus, we have no reliable means of comparing the two energy sources on a comparable basis.
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We face the same problem with all other major electrical energy sources.
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So far as I'm aware, there are no peer-reviewed scientific studies
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which compare the relative safety of all of the major electrical energy sources we are
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considering here based on actual numbers.
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Safety risks. I will now try to list some of the major hazards for each of the energy sources
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we are considering.
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There is, however, limited data available. In many cases, we just have reference to worker safety
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organizations as to what the hazards are. I will not attempt to put numbers to these here.
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Coal, oil, and natural gas. The hazards are air pollution,
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mining and oil field accidents, pipeline explosions, transportation accidents.
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These move a lot of material so these are significant.
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Hydroelectric. These include dam collapse and droning.
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Nuclear. These include radiation exposure.
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Wind. These include falls.
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Confined space deaths. There is not much detail on this one.
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Electric shock. Ice throws. That is, throwing of pieces of ice off the blades.
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This technology has a significant problem with people working alone,
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which greatly increases the risks associated with other dangers.
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Solar. These include falls, electric shock, arc flash, and heat stress.
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I have not tried to cover all possible risks associated with each category.
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Just the ones which each industry considers to be the risks they concern themselves with.
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There does not exist any beings by which risks of similar types are compared across different
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industries. Reliability of supply is also safety. In a completely electrified net zero society,
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reliability of supply is a safety matter. People will die in very large numbers in
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cold climates if they do not have heat. If we have no fossil fuels, we need to also consider
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how reliably does a grid based on any of the options work. I have not seen anyone attempt to
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address this question and will not attempt to address here. However, it must be addressed in any
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comprehensive attempt to rank safety. Studyter articles on estimates of relative safety.
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Despite the difficulties of comparing the safety of different sources of energy,
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some people have attempted this anyway. Different estimates done at different times had different
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focuses, so unfortunately we do not have a nice set of studies that we can neatly use to cross
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check one another. I will, however, this the names and the authors and summarize the results.
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The health hazards of not going nuclear by Dr. Peter Beckman published in 1976.
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The author of this book tried to address the relative safety of different sources of energy
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in the bid 1970s, whoever it is all to this point, so I won't bother digging through
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its pages to find his figures. He mainly focused on comparing electric power generated with coal
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to nuclear. His conclusion was that if the goal was to prevent deaths or ill health in the process
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of generating electricity, then the logical conclusion was to replace coal-fired power plants with nuclear.
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The book was relatively well known at the time, at least as far as books on energy are concerned,
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so I thought it was still worth mentioning. I happened to have a copy of this book,
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which I bought back in that time period. It was the eighth printing of the book,
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so it appeared to have had relatively good sales. The author did address the issue of what I have
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turned catastrophism in his comparison of different energy sources, although I don't know if he
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used that phrase. I don't know if he was the first to use this sort of analysis, but he certainly
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was very influential in terms of popularizing it. Risk of energy production by Herbert Inhaber,
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publication AECB 1119 March 1978. This study is a scientific paper from the same time period
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as the book, the health hazards of not going nuclear. He based his risk estimates,
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largely on estimates of the amount of material, which would be used in the construction and
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operation of various power sources. We could argue over whether or not this is a valid methodology.
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I think any such argument would be pointless, as I think the age of the study alone
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renders it not relevant to today. Advancements and materials have changed the basis of the
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results significantly by now. However, as it exists, I thought I would mention it to show that the
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idea of comparing energy sources to each other is not a new one. The author compared a wider variety
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potential sources than Beckman did. Here is his conclusions. He assumes equal amounts of energy
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produced by each method. The numbers are normalized, such that the total sums to 100%.
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You can think of it in terms of what proportion total deaths or injuries would result from each
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source if each were equally used. Call 27.5%. Oil 25.6%.
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Methanol 16.7%. Wind 10.8%. Solar photovoltaic 9.2%.
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Thurble 8.1%. Solar space heating 1.5%. Ocean thermal 0.4%. Nuclear 0.13%. Natural gas 0.08%.
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His natural gas estimate is drastically different from that of other authors. I'm not going to worry
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about explaining it, however, as the study, as I said, is old enough to not be very relevant anyway.
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I'm mainly including this here out of historical interest. As a footnote,
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the Methanol he refers to would be synthetized from wood. This was a popular idea in that era,
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as a means of providing liquid fuels for transportation. Practical battery electric cars in
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those days were strictly science fiction. The ocean thermal category is a real blast from the past,
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and I had forgotten all about that concept. It was a very popular idea at the time,
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it was supposed to be the big and upcoming thing in renewable energy. It involved various
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means of attempting to extract energy from differences in water temperature at different depths in the ocean.
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It gradually faded away, however, as despite great efforts being put into it,
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designs never proved to be practical. Electricity generation and health,
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by annual markandia and Paul Wilkinson, published in the Lancet, volume 370, 15th of September
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2007. This is more recent than the previous one, although it is still nearly 20 years old at this
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point. Unfortunately, it doesn't cover winter solar, just fossil fuels in nuclear. However,
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it is still useful, and the Lancet is a very reputable, peer-reviewed journal.
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I will present just the results, rather than discussing the whole paper.
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The authors break it down into death among the public, occupational deaths,
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and air pollution related deaths, serious illnesses, and minor illnesses.
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They break the energy sources down into Lignight, Cole, Gas, Oil, Biomass, and Nuclear.
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Lignight is a type of very low-grade coal used mainly for electric power generation.
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In this paper, biomass refers to energy crops and forest residues.
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I will summarize the results by category, rather than trying to describe a table that has six
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rows and five columns. All numbers are normalized in terms of deaths or cases per terror watt hours.
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Occupational deaths from accidents. Lignight, 0.1, Cole, 0.1, gas, 0.001, oil, no data, biomass, no data,
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nuclear, 0.019. Deaths among the public from accidents. Lignight, 0.02, Cole, 0.02, gas, 0.02, oil, 0.03, biomass,
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no data, nuclear, 0.03, air pollution deaths, Lignight, 32.6, Cole, 24.5, gas, 2.8, oil, 18.4,
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biomass, 4.63, nuclear, 0.052, air pollution-series, illnesses, Lignight, 298, Cole, 225, gas, 30, oil, 161,
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biomass, 43, nuclear, 0.22, air pollution-miner illnesses, Lignight, 17,676, Cole, 13,288, gas, 73, oil, 9,551,
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biomass, 2,276, nuclear, no data. Natural gas, edges out nuclear power slightly in terms of
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occupational safety, but in every other category, nuclear is drastically lower in terms of
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ill effects than any of the alternatives. 2020 fatalities for US roofers increased 15% as solar roof
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installations increase. Published in the next big future, the 6th of July 2021, by Brian Wang.
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This seems to be written by someone who has a popular science blog. I'm not familiar with it
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personally, but he addresses a subject, so I'll list it. The title implies that it's all about
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rooftop solar, but he provides comparative numbers for other energy sources of interest, so that
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is useful for our purposes. However, he doesn't describe his methodology, so we need to treat them
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with some caution. Here are his results. These are deaths per thousand terawatt hours.
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Cole, 100,000, oil, 36,000, natural gas, 4,000, hydro, 1,400, rooftop solar, 440, wind, 150, nuclear, 90.
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If we plot these numbers on a bar chart, Cole and oil are so large, that all of the others are
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squished to the bottom of the chart, and are difficult to see at all. Let's therefore look at
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these in terms of orders of magnitude. Keep in mind that this is a log-merithic scale. This means
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that the difference between 4 and 5 is much greater in linear terms than the difference between
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1 and 2. Cole, 5, oil, 4, natural gas, 3, hydro, 3, rooftop solar, 2, wind, 2, nuclear, 1. Each of
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these numbers represents an order of magnitude, that is, a power of 10. We can see that with rooftop
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solar, wind and nuclear, the numbers are close, and there are certain these are so great, and
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their relative values are so small compared to say, Cole, that they can be seen as equivalent,
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so far as safety is concerned. What are the safest and cleanest sources of energy?
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By Hannah Richie, published in our world in data, first published in 2017, updated in 2022 and
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2024. The author of this study addressed both deaths and greenhouse gas emissions, deaths from
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accidents at air pollution are normalized to per terror water or electricity, while greenhouse
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gas emissions are normalized to gigabodd hours of electricity over the life cycle of the plant.
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Here are the deaths figures. Cole, 24.6, oil, 18.4, biomass, 4.6, natural gas, 2.8, hydro power, 1.3,
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wind, 0.04, nuclear, 0.03, solar, 0.02, for greenhouse gas emissions the figures are, Cole,
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970 tons, oil, 720 tons, natural gas, 440 tons, biomass, 78 to 230 tons, solar, 53 tons,
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hydro power, 24 tons, wind, 11 tons, nuclear, 6 tons. If we take the death figures and rank them by order
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of magnitude as we did with the previous article, we get the following. Cole, 4, oil, 4,
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biomass, 3, natural gas, 3, hydro power, 3, wind, 1, nuclear, 1, solar, 1.
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Keep in mind that the previous article covered only rooftop solar and not large industrial
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installations and so is not directly comparable. Also, the units are different with the previous
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article being in terms of 1,000 terror water and this one being in terror water hours.
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If we exclude solar as the numbers are not comparable, Brian Wang's numbers are between 1.5 to
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4 times higher than Richies, except for Hydro, which are almost identical. I think this ladder
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is due to both such a numbers dominated by one exceptionally big hydro accident.
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Overall, however, the relative rankings are quite comparable. Richies numbers for deaths from
|
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Cole, oil, and natural gas appear to be directly from the study by Marquandia and Wilkinson
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mentioned above. For the benefit of those who are wondering, Richies specifically states that
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her numbers for nuclear include the Chernobyl and Fukushima accidents.
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Conclusion from studies. Remember that in engineering terms, when comparing groups of numbers,
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which contain both very small numbers and one or more very large numbers, the differences
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between the small numbers are often not significant. The differences between the small numbers
|
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may be the product of our ability to measure these things rather than any real differences.
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For example, in the article by Richie, Windpower would appear to be twice as dangerous as nuclear.
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However, the difference between them is 0.02 compared to 24.6 for Cole. In other words,
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the difference between apparently dangerous wind and apparently safe nuclear is equivalent to 0.08%
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of the total for Cole. It is therefore meaningless and a red herring to even worry about.
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With the above taken into consideration, generally the difference sources of energy fall into
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two broad categories in terms of number of deaths, injuries, and illnesses. The fossil fuels and
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biomass fall into one group, and wind, solar, and nuclear into another group. Hydro power
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would seem to fall into the higher risk category, or at least somewhere between the two.
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But this I suspect is mainly due to one exceptionally large dam collapse in China, the Ben
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Kean Dam failure in 1975. This is mentioned as being specifically included in the article written by Richie.
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This was a multipurpose dam, and information on this dam is difficult to find. It is not
|
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clear to me whether it had a hydroelectric generator associated with either it or another dam
|
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that was part of the same system. Some people, therefore, may argue for its exclusion from the numbers.
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Of course, some people may argue for its inclusion anyway, as it was a dam, regardless of whether
|
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it actually had an electric generator attached. If we exclude it, then I think the number for hydro
|
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power would fall into the same range as for nuclear, wind, and solar. Most people would consider
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hydro power to be safe and clean enough, regardless of this, and I will rank it as such in any
|
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conclusions that I come to. As you can see, even if we have numbers, it can be a matter of opinion
|
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as to how to interpret them. Taking a system's approach. Now let's look at the broader energy
|
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picture today and into the future. Many countries, in many parts of the world, have committed to
|
||||
the concept of net zero, which means eliminating carbon emissions on a net basis.
|
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Net zero essentially means the complete electrification of society. We must therefore have
|
||||
electrical energy on demand and at low cost. We must as a result of this, look at complete
|
||||
electrical systems, rather than individual sources in isolation. At one time, many electrical
|
||||
systems were entirely coal or entirely hydroelectric. This is no longer the case. There are now major
|
||||
amounts of wind and solar involved in many countries. However, these are inherently intermittent.
|
||||
This means that other sources of energy are inherently also required to have a functional
|
||||
system. If any particular solution inherently requires fossil fuels to meet part of the demand
|
||||
then the safety, pollution, and climate issues relating to those fossil fuels
|
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have to be factored into that complete system when trying to come up with a relative ranking.
|
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Talking about individual sources in isolation are therefore meaningless in those countries.
|
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There are battery systems, but these are mainly used to stabilize and regulate the grid
|
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plus to a lesser degree to smooth out short-term daily peaks in demand.
|
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They do not have the ability to store large amounts of electricity on a large scale for entire
|
||||
grid for days, weeks, and months to make up for inter-bitancy.
|
||||
So a serious attempt to rank sources of energy would need to look at a variety of representative
|
||||
and for each one come up with a plan that involves x-megawatts from source A, y-megawatts from
|
||||
source B, et cetera, and total up the values for each. I am not aware of anyone who has studied
|
||||
this larger issue. However, the problem has to be addressed from this perspective in order for any
|
||||
answer to be useful. Not taking this into account is like ordering a diet soft drink to go with a
|
||||
high-calorie meal and assuring yourself that your plans to diet are just fine.
|
||||
This is not to imply that there is anything inherently wrong with wind or solar.
|
||||
It does mean that if your goal is to achieve both net zero and a clean environment,
|
||||
you have to look at your entire energy system as a complete system,
|
||||
rather than focusing on what you feel are the most reassuring parts of it while ignoring the rest.
|
||||
This does however add to their argument that is in fact inherently very difficult to come up with
|
||||
a system of ranking energy sources for safety. Nuclear climate and clean air contrasting examples.
|
||||
To give a tangible example, we will now look at two different places that followed two
|
||||
divergent paths that roughly around the same time frame. These are the province of Ontario and Canada
|
||||
and Germany. Ontario had a mix of coal, hydroelectric, and nuclear generating plants.
|
||||
Germany had a mix of coal, nuclear, and natural gas plants.
|
||||
Ontario shut down their coal-fired plants and kept their nuclear plants.
|
||||
Germany, however, shut down their nuclear plants and kept their coal-fired plants.
|
||||
The phase out of coal in Ontario. In 2003, Ontario decided to close all of its coal-fired
|
||||
generating plants, which consisted of 19 units that is boilers and turbines,
|
||||
totaling 8,800 megawatts. This phase out was completed by 2014.
|
||||
Here are the figures for the amount of power generated by each energy source in 2003 and 2014.
|
||||
Nuclear went from 42% to 60%. Hydro went from 23% to 24% gas went from 11% to 9% coal went from 25%
|
||||
to 0%. Non-hydroenewable went from 0% to 7%. As you can see, the bulk of that replacement
|
||||
came from increased use of nuclear power. Furthermore, this did not result in simply replacing coal
|
||||
with natural gas. While gas is cleaner than coal, it still has emissions, and if you recall from
|
||||
the studies that we looked at earlier, had an estimated death rate roughly two orders of
|
||||
magnitude greater than nuclear, solar, or wind. To put this in more practical terms, at one time
|
||||
Toronto, regularly had clouds of smog obscuring it to a large extent due to these coal-fired
|
||||
power plants. With the phase out of coal, smog days went to 0 in 2015, compared to 53
|
||||
a decade earlier. The 2023 figures for Ontario show carbon emissions of 53 grams per kilowatt-hour
|
||||
electricity generated. We can use this as a rough benchmark comparison for totally emissions.
|
||||
The phase out of nuclear in Germany, until March of 2011, Germany generated one quarter of
|
||||
its electrical power from nuclear. Starting in 2011, however, they began shutting down their nuclear
|
||||
power plants. These were then phased out over the next decade. However, the coal plants were to be
|
||||
kept until 2038. In 2026, Germany began talking about increasing use of coal in order to save gas.
|
||||
In the same year, German Chancellor Friedrich Merz stated that the phase out of nuclear was a
|
||||
quote, Sirius Strategic Mistake. EU Commission President Ursula Vandreland said that it was
|
||||
a strategic mistake for Europe to turn its back on a reliable, affordable source of low emissions
|
||||
power. I won't go into the details of the phase out, but let's look at some emissions numbers
|
||||
for Germany. If we look at the official numbers from the European Environmental Agency for 2024,
|
||||
for Germany, the emissions were 298 grams per kilowatt-hour of electricity generated.
|
||||
We call that we are using emissions as a very rough guide to amount of air pollution,
|
||||
and this has a direct effect on the safety of the overall electrical energy system.
|
||||
So who actually made their people safer? Ontario who phased out their coal plants and kept
|
||||
their nuclear plants, or Germany who phased out their nuclear plants and kept their coal plants.
|
||||
If you want to comparison directly within Europe, then Germany has one of the highest rates
|
||||
of emissions per kilowatt-hour of electricity generated, whereas France, who is mainly nuclear power,
|
||||
have one of the lowest at 43 grams per kilowatt-hour of electricity generated.
|
||||
Again, who is making their people safer? Germany or France?
|
||||
I don't want to make it sound like I am picking on Germany.
|
||||
I am also not going to tell them how they ought to run their country.
|
||||
However, they provide a good real-world example of how we need to look at things in overall
|
||||
context when we are thinking about the choices that we make.
|
||||
Conclusions, as we can see, they don't appear to be in abundance of peer-reviewed scientific studies
|
||||
that we can simply point to in order to answer the question of safety of all possible major
|
||||
different energy sources once and for all. Collecting the data to even attempt to answer
|
||||
the question is inherently very difficult as we cannot readily conduct experiments to answer
|
||||
that question, and sources of data are not collected or consolidated in a manner which can
|
||||
answer this question adequately. The essence of the problem is that most energy industries
|
||||
are not as tightly regulated and monitored to the same degree that say nuclear power or commercial
|
||||
airliners are, so this data is simply not being systematically recorded. However, a number of people
|
||||
have attempted to make estimates. Their conclusions were seem to be that nuclear, wind and solar
|
||||
are roughly equivalent in terms of safety. All fossil fuels are much less safe than nuclear
|
||||
wind and solar by as much as several orders of magnitude. We can, however, say with a reasonable
|
||||
degree of certainty that if a country shut down their nuclear power plants and kept their fossil
|
||||
fuel plants, particularly coal, then they probably made their people less safe than if they had
|
||||
done things the other way around. I hope that I have provided some context in which to think about
|
||||
the issue. Thanks again to Brian and Ohio for providing the question upon which this episode is based.
|
||||
You have been listening to the Hacker Public Radio podcast, at hackerpublicradio.org.
|
||||
Today's show was contributed by a HPR listener like yourself.
|
||||
If you ever thought of recording a podcast, then visit the HPR site to find out how easy it really is.
|
||||
Hosting for HPR has been kindly provided by anhonesthost.com, the Internet Archive, rsync.net, and the HPR Community Content Delivery Network.
|
||||
Unless otherwise stated, today's show is released under a Creative Commons Attribution-ShareAlike 4.0 International (CC BY-SA 4.0) license.
|
||||
Reference in New Issue
Block a user