Keeping walls airtight is still very important, but we also need to understand how moisture moves through materials, and how important that is if moisture does get into your building materials, which is an undesirable, but unfortunately not unavoidable situation.
Tuesday, 23 February 2021
Humidity and Traditional Buildings
Keeping walls airtight is still very important, but we also need to understand how moisture moves through materials, and how important that is if moisture does get into your building materials, which is an undesirable, but unfortunately not unavoidable situation.
Saturday, 6 February 2021
Jevons Paradox
Read more about this here: https://minuszeroeco.blogspot.com/2016/01/lesson-12-part-iii-economics-dark-side.html
Wednesday, 3 February 2021
Economics
Read more about this here: https://minuszeroeco.blogspot.com/2016/01/lesson-12-part-i-economics-story-so-far.html and here: https://minuszeroeco.blogspot.com/2016/01/lesson-12-part-ii-future.html
Monday, 25 January 2021
Setting standards
Here is some information on video:
https://minuszeroeco.blogspot.com/2015/12/lesson-8-standards.html
Tuesday, 10 November 2020
Air and Water: Condensation and Humidity
Whenever I talk about humidity I have a strong sense that I don't really know what I'm talking about. I think this is normal, because humidity is not at all intuitive. I know that my glasses will steam up when I come into a warm room from the cold. But what goes on within walls and buildings is complicated and strange. When predicting which way the moisture will go, I end up just assuming it will go where we don't want it!
In today's video I attempt to explain. In doing so I realised I need to say a lot more about diffusion, and probably do a whole new lesson on summer humidity. I can also talk about traditional approaches to protect buildings against condensation.
Also I suggested that high humidity could increase the risk of spreading viruses. In fact low humidity can increase the risk of spreading viruses.
Saturday, 7 November 2020
Monday, 2 November 2020
How to slow Down Heat Part 2: Confounded by Compound Insulation
The sums don't quite add up for the problem we looked at earlier. The two calculations for compound insulation give a slightly different answer.
You can see the calculations with my terrible handwriting here. Or just go straight to the video below, which is much lighter on maths.
This is the calculation looking at parts of the wall in parallel first.Thursday, 29 October 2020
How to Slow Down Heat
Now that we know it's impossible to stop heat, let's see if we can slow it down!
Thursday, 15 October 2020
How to Stop Heat
Watch this video lesson to find out!
Spoiler alert: it's impossible to stop heat! You can only slow it down. If you want to lose less heat from your house, then the first thing to think about may be the surface area.
Warning: Contains equations.
Thursday, 8 October 2020
What is Energy?
The first lesson. If you want a low energy building, this is the first question you need to ask.
What is energy? How do you measure it? I thought of a dozen different ways. This shows how confused our language is over the science.
In politics, language is power, but when it comes to science, power has a different and much more precise meaning. Heat seems like it's hot, but often it's not. In the next video, after explaining that heat and temperature are not the same thing, I described a difference in temperature as a difference in heat. In this video I used the word "precise" when I meant "accurate". I did this while I was talking about the difference between precision and accuracy. Maybe it's not the language that's confused. Maybe it's just me!
Anyway, this has nothing to do with the content of this video. You can read more about the lesson here.
Please watch the video, and subscribe to the channel.
Monday, 23 September 2019
Low Energy Building: Thursday 10:40 from 26th September
Monday, 22 April 2019
Changing groups
Time to shuffle the students a bit.
The lesson on windows went well, and I think the estimation of the room's window U value was not too overwhelming for the students. This was partly because I had structured the problem solving a bit more. Scaffolding is also very helpful in the construction of knowledge. Also I had them change groups at the beginning and tried to get mixed skill sets together.
I had put them into groups in week four and it's a good idea to change after two or three weeks have passed. The dynamics of groups have been characterised by the stages of Forming, Storming and Norming. After norming we hope for performing, but instead it can get boring! Changing groups every week is a bit too disruptive, but leaving the same groups for too long risks unfairness for people who have ended up in a dysfunctional group as well as a missed opportunity for having the students meet more people and make more friends.
- What is your major?
- Are you good at maths?
- Are you good at English?
- Are you good at drawing?
- What is your favourite subject?
Then I asked them to make groups of four, with different majors, different favourite subjects, and new friends. I told them that maths was going to be useful, so if they weren't good at maths they should find someone who is. Also, if possible, I wanted different nationalities and mixed genders. The class is about 85% Japanese and 70% male, so this was not going to happen with every group.
In the first couple of weeks, and in previous years, I had tried to have Japanese-speaking and English-speaking groups, but last year I realised that resulted in me having a false sense of the English level of the room, and some parts completely lost. Spreading out the English speakers means they can work more to mediate between my English explanations and instructions, and the Japanese of the students who often have more interest in, and aptitude for, the topic.
Three weeks later they were still more or less in those groups of four, but a group of women had formed in the back corner of the class, and I'm sure the same couple of architecture students had been sitting next to each other every class. It's not really bad to sit next to the same person every week, but a changing environment is conducive to learning since memories are formed by connections and associations. Also they may meet some new people.
So I asked them, within their groups, to first decide who was best at writing. Next, I asked who was best at English. The writer then had to write down those names. Next I asked who was best at communicating. If it was their best English speaker, they should choose the next best English speaker as their English speaker. Finally I asked who was best at mathematics, and if it was their best communicator or best English speaker, they should choose a different best communicator or English speaker.
Then I shuffled the deck by having each writer stay put, each English speaker move around the class clockwise to the next group, the communicator move two groups clockwise, and the mathematician move one group anti-clockwise. I figured the mathematician would be able to handle the negative number. As usual, I had to do some traffic direction, partly because there was one group in the middle of the class, and it wasn't completely obvious which way was clockwise and which was anti-clockwise.
Now I had a high chance of diverse groups. They had all worked in different groups before and would hopefully bring the best experiences into the new group.
When it came to calculating the U value of the windows, I asked them to pick a leader, a designer, a calculator and a checker.

I reminded them of the problem solving steps:
1. Formulate problem, ideally drawing it!
2. Plan a strategy, making sure they write it down!
3. Find equations
4. Find data, but not until they had done the first three steps
5. Calculate
6. Check
7. Check again
After a while I reminded them about surface resistance, then gave them some equations, thermal conductivities and dimensions.
A little later, as I wandered the class looking at their calculations, I noticed a couple of U values of over thirty for the glazing, which looked way out. I went back to check and noticed I'd given them the wrong value for conductivity of air by a factor of ten. It should be 0.024 W/Km but I'd given them 0.24. A great example of how everyone makes mistakes, and how important checking is. Making mistakes is not a problem in itself—everyone does that!—you have to realise when you have made mistakes, and then fix them.
Thursday, 11 October 2018
How to Solve Problems
Given that I want to teach problem solving skills, I probably just have to be a lot more open and transparent about it. I have been mentioning a few things to the students in passing: like suggesting they draw diagrams to help them work out problems, or advising them to write their calculations out carefully and clearly on lots of paper so it's easy to go back later and see what they did. I need to be much more explicit about the steps of the problem solving process, and give them a bit more practice in each step rather than just throwing a problem at them and hoping they'll work it all out. Too often the problem I've been throwing at them is how to solve problems, which is way too abstract.
Here are some steps:
- Formulate the problem
- Find solutions
- Choose a solution
- Prepare tools
- Calculate
- Check the calculation
- Check the answer
- Check the error
So I think I've written enough on this topic for now.
[Image taken from https://schooltutoring.com. not sure where they got it from!]
Wednesday, 3 October 2018
Low Energy Building First Class Fact Checking
It should be noted that while BP's data can probably be trusted, their main business is still in selling fossil fuels, and their business model is still based on selling more. The graph goes up to 2013.
However, Dick Van Dyke nostalgia has been strong in the US, and production was up last year. So, once again, it's too early to tell.I guess it depends on who wins between the people selling fossil fuels, and people promoting energy efficiency and renewable energy.
Wednesday, 26 September 2018
Low Energy Building Course: Every Tuesday Afternoon—Starts 2nd October
| (1)授業のねらい | 【授業の達成目標】 ・Students will learn how basic science affects buildings ・Students will learn how buildings affect the environment and how culture affects building practices 【授業のねらい】 Buildings use over one third of all energy consumed in Japan, as in many other developed countries. In a world of increasing population and limited fossil fuel reserves, reduction in building energy consumption is important. As well as drastically reducing consumption, low energy buildings can be more comfortable, more healthy and less expensive over their lifetime. This course will introduce students to the principles, the practicalities, and the future of low-energy building. 他の先進国と同様、日本で消費されているエネルギーの3割は、住宅で使われています。人口が増加し、化石燃料が限られてくる世界では、省エネルギー住宅が必要となります。エネルギー消費を減らすことで、居住者に快適で健康的な暮らしをもたらし、建物の耐用年数においても経済的です。本講義では、省エネ住宅の仕組み、その実用性と将来について紹介します。 |
| (2)授業の概要 | This course will show how simple scientific principles affect buildings, and how insulation, airtightness and good windows can lead to houses with very low energy consumption. We will see how the use of solar power can make buildings that produce energy. We will look at low-energy buildings around the world, including the German Passivhaus standard. We will also consider the design process, including compromise, optimisation and guesstimates. |
| (3)授業のキーワード | 環境、物理学、建築、省エネ、熱力学、太陽光発電 |
| (4)授業計画 | 1. What is a low-energy building? 2. What is energy? 3. Insulation and thermal envelopes 4. Compound insulation and thermal bridges 5. Why do we feel hot or cold? 6. Air and water 7. Windows 8. Ventilation 9. Windows 2.0 10. Energy standards and low-energy building around the world 11. To zero energy and beyond: Buildings as solar generators 12. Passivhaus 13. Economics and ecology, embodied carbon and life cycle analysis 14. Presentations 15. Review This plan may change to meet the needs of the class |
| (5)成績評価の方法 | Students must complete weekly online activities in eALPs to pass this course. Students will be expected to participate in class and give presentations. Online quizzes: 80% Online forums: 10% Presentations: 10% |
| (6)成績評価の基準 | The university policy states that students need 60% to pass, 70% for a B, 80% for an A, and 90% for an S. |
| (7)事前事後学習の内容 | Additional information will be made available on eALPS. |
| (8)履修上の注意 | The class will mainly be conducted in English. It will be possible for students to ask questions, complete assignments and give presentations in Japanese. 本講座は主に英語で行いますが、受講生からの質問、課題の提出、発表は日本語でも結構です。 |
Friday, 16 February 2018
Teaching Low Energy Building: Final Answers
1. The top priority for a low energy building is insulation.
Not solar panels, the latest electronic equipment, increasing the number of windows or planting grass on the roof. All my students got the right answer. They were 100% successful. In educational assessment terms, this question was 0% successful in discriminating between students. But I'm not so interested in discrimination. Just happy that all of my students got the main idea of the course, which is that insulation is the top priority in low energy building. I could probably have put some tougher distractors in there, like mechanical ventilation with heat recovery, air tightness, good form factor or avoiding thermal bridging. Perhaps I should make a more difficult question next year.
2. Half the students got the next question completely right; eleven out of twenty-two taking the test.
This question did a much better job at discriminating!
This was a real-world low-energy building question getting them to choose the amount of insulation needed depending on the windows they were using. It assumed an energy budget for a small house of given surface area and floor area, and a fixed requirement of window area.
The question was made more tricky since they had to choose insulation thicknesses rounded to the nearest five or ten centimetres, as you tend to get in the real world. Also, in the real world, you need to round up rather than round down when you're trying to meet this kind of target. This may have thrown a couple of them.
| Even worse is question 4 |
Also, this was a matching question, with four different U values of window and five suitable insulation thicknesses to choose from. Obviously the eleven people who got the correct answer all gave the same answer, but the other eleven were each wrong in a different way.
One piece of low-hanging fruit was that with single-pane aluminium-framed windows, it was impossible to make walls thick enough to stay within the energy budget, and 19 out of 22 students got this bit.
At a conceptual level, the better the windows, the less insulation is needed in the walls, so the lower the window U values, the thinner the walls can be, and 16 of them got this in their overall answers, although two of them missed the answer for the single pane windows. A couple of them were choosing progressively thinner walls for higher U values, but both of them got the right answer for the single panes.
As for the other six students, it's difficult to be sure what they were thinking. They may have just been looking at the materials and assumed that wooden windows were better than PVC. They may have miscalcalated and not been thinking of the answers with top-down reasoning.
Anyway, I think the correct answers are:
- Two times thinner (around 40cm) for U 1.7 Double, low e, argon, wood frames;
- Three times thinner (around 30 cm) for 1.3 Triple, low e argon, PVC frames:
- Four times thinner (around 20 cm) for U 0.8 Triple, krypton, insulated wood frames;
- You can't make walls thick enough for the single pane windows (U 6).
3. I told you the coffee maker question before.
Saturday, 10 February 2018
Feedback on low energy building course
Feedback came from two directions: one in the form of paper questionnaires handed down from the university and handed out in class. For the most part students just pencil in the lozenges somewhere between strongly agree and strongly disagree, but I encourage them to fill in the spaces for written comments. In one class I told them they should write something about the paper questionnaires being a waste of time, and the university should administer them online. Four of the students did write something like that, and while I was pleased, it shows that students in the classroom will just write what the teacher tells them to, which is just one of the reasons paper questionnaires should not be completed in class.
That was a different class though. In the low energy building class, their comments mostly just
reported that they had learnt about low energy building. Important knowledge about low energy building. Knowledge about the importance of low energy building. A couple just said they learnt about buildings, which is perhaps an even better response. One person said it was important to think about economic issues as well. Another valued the fact that the lesson was in English. Most of these comments (70%) were in Japanese, the same language as the university questionnaire, but nobody commented here that I should speak more Japanese, or that the class should not be in English.
The other formal avenue for feedback was in the final questions, where I asked them these two questions:
- What was missing from the course? What other topics should have been covered, or what topics should have been covered in more depth?
- How can the course be improved? How can I make it better for next year?
Conclusion on language: Using theories to determine thermal comfort in buildings, it seems the language temperature of the room is OK, judging by the relatively small number of people who are too hot or too cold. Adding definitions in Japanese to the slides is a great idea that I need to do more.
In terms of course content, four wanted more case studies, one asking about low energy buildings in Matsumoto, and two wanting more information about low energy buildings in other countries or about international differences.
Four people gave positive comments on the course: that it was great, perfect, nice, or had a good balance.
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| (I didn't have this question) |
Wednesday, 7 February 2018
Teaching Low Energy Building: Final Questions-part one
1. What is the top priority for a low-energy building?
Select one:
You want to build a small house with a heating load under 25 kWh/m2a. The house is 35 square metres, so you want to use less than 875 kWh per year. The wall and roof area of the house is 100 square metres. You want 4 square metres of windows. The house is in Matsumoto where the annual heating demand (G) is 80 kKh (kilo kelvin hours).
If you use U 2.3 windows, they will lose 736 kWh per year. So the rest of the house must lose less than 139 kWh (875-736). The U value of the walls must be 0.017. (U = Q / A G.) Using nano-porous super-insulation material (k=0.015 Wm/K), these walls would be around 90 centimetres thick!
If you use the other windows, how many times smaller are the U values for the wall?
In other words, how much thinner can the walls be?
| U 1.7 Double, low e, argon, wood frames | |
| U 1.3 Triple, low e argon, PVC frames | |
| U 0.8 Triple, krypton, insulated wood frames | |
| What about the single pane windows (U 6)? |
Friday, 26 January 2018
Great Student Presentations
1. Energy independent buildings
One brave group out of seven decided to give their presentation in the penultimate week, and they set the bar high. One of them even gave the presentation in English, which I had suggested, but not mandated.
This began with a look at carbon emissions, and went on to talk about cogeneration, which is big in Northern Europe, but not common in Japan. The idea with cogeneration is basically to generate electricity on a small scale, and use the heat for domestic hot water and heating. They talked about a gas-operated system on the market, which seemed quite expensive as a capital cost, and also would be buying in gas and therefore no chance of being zero carbon. Of course the reality right now is that nothing is zero carbon but cogeneration has obvious energy savings.
2. Biomemetics is a really interesting topic, and the second group also did a great job.
They started by asking if we knew who had invented velcro, which we did not. The answer is at the bottom of thiw page. This is a great example of human ingenuity mimicking nature, as the inventor decided to copy some burdock seeds that had stuck to his coat and dog.
| Bullet train design from the kingfisher |
Finally they talked about termite nests, which have elaborate vertical air circulation channels that change direction of flow between night and day, keeping the building cool or warm. They are also porous to allow carbon dioxide out. This natural design was imitated by the Eastgate Centre in Harare, Zimbabwe, which was designed to cool by entirely natural means.
3. The next group talked about Energy Standards in Five Different Countries.
These were the US, the UK, Germany, Korea and Japan. The introduction explained what was specified in the building standards, and went on to show how relatively lax Japan's standards were and what a low proportion of PVC windows Japan had, but also showed that Japan has
the lowest energy consumption per household.
A comparison was made between Japanese buildings and South Korean buildings, where respectively rooms are individually or collectively designed. It was argued that Japanese design allows rooms to be heated individually while Korean design, and that of Europe and the US, typically requires that the whole building is heated.
To be honest, I was not completely convinced by this, and look at it rather as holistic design allowing whole buildings to be heated, while the Japanese vernacular discourages it.
They concluded that there were many different approaches to low energy standards, that the Europeans are working hardest to lower environmental impact, and that Japan is behind other countries, but that there are plans for Japan to have low energy standards by 2020.
A questioner asked why Japan—ostensibly a developed country—has such weak building energy standards. A couple of answers were given, one by one a presenter, and one by the questioner, which was supported by another of the presenters. A discussion of this needs a whole other blog post, and in fact I've already written one here!
4. The Latest Low Energy Buildings was the topic of the next group.
The second speaker talked about Ichijo Komuten's i-series of low-energy buildings, which are the closest thing to Passivhaus at scale in Japan.
The third speaker talked about ZEB—Net Zero Energy Buildings—giving an example of a building using a combination of solar power and biomass to meet all its energy needs.
The fourth speaker talked about the Zollverein School of Management and Design in Essen, Germany which the presenter rather suspiciously described as choosing geothermal energy rather than insulation. It got away with a thin concrete shell with naturally occurring hot water
piped through.
I couldn't help feeling that maybe the pipework and certainly it's maintenance would be more expensive than insulation.
Also I notice that they are only talking about Japanese buildings, and buildings by Japanese architects, which is a curious position in light of the last group's findings on Japan's low-energy building credentials.
5. The next topic was Hydroelectricity, which is probably the cheapest and least fossil-energy demanding source of electrical power.
They discussed pros and cons, different systems of generation and then some interesting ideas on microgeneration from domestic water, one taking energy out of the incoming pressurised water main, the other out of water coming out of taps. I didn't want to ask them about any conflict with the need to save water in the house, and whether the mere hundreds of milli-watts they could get from the taps was worth it, but the idea of looking for energy sources is a good one.
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| Habitat 67—because modern architecture means ignoring physics |
6. Famous Buildings was the topic of the next group.
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| The Farnsworth House in one of the four seasons it is not fit for |
Their buildings were by Hundertwasser in Vienna, Habitat 67 in Montreal, Canada, the Farnsworth House in Illinois, USA, and the Gassho-zukuri houses of Shirokawa village in Gifu, Japan.
They did a nice assassination of the form factor of Abita 67, and showed how Farnsworth's concrete sandwich with glass is more of a sacrificial altar to comfort and energy use than a useful contribution to architecture.
7. The final presentation talked about the Merits and Demerits of Low Energy Buildings.
They did as good a job of concluding the course as I could. The demerits included the extra costs and the lack of skilled designers and builders, and the presenter hoped that everyone in the class would be working to change this.
Answer:
Velcro was invented by Swiss electrical engineer George de Mestral in 1948. For any etymologists out there, the word is a portmanteau of "velvet" and "crochet".
Wednesday, 17 January 2018
Talking about Passive House. Lesson 14
As usual term starts running out with too many lessons left over. In week 13 of 15 I had to get them into groups for their final presentations, and then give them some guidelines of what to do, and what not to do, when designing and delivering their own presentations. I could spend a whole lesson talking about preparing presentations. In this class I probably should, focusing on presentation construction as a piece of architecture.
They had put their own presentation ideas into a forum on the online part of the course, and then chosen their top three choices in an online quiz, so I had most of the data needed to make the groups, but of course a few students had not actually added their top choices for a presentation topic, a few others missed the lesson, and as usual a small number of the topics were very popular and they did not fit neatly into seven topics that were the first choices of exactly four students. In the end over half the lesson was taken up discussing their presentations, and I could only get through half of my beautifully prepared full lesson, with its narrative from building cultural differences between the isles on the East and the West of the Eurasian continent, to my own journey into house building, and discovery and application of the Passivhaus standard.
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| Energy balance for a Passivhaus |
Descriptions of standards can be dry, and there's a maximum of ten minutes I can talk to any class in English before they lose attention, so tasks are needed. I like setting them problems to solve, and also want them to practice real-world calculations where possible.
First I had them brainstorm heat gains and losses in a house. They got most of these, but needed a bit of a hint to remember ventilation.
The next task was to get from the definition of Passivhaus in English to the numerical heating load. This is a fairly straightforward calculation from the floor area per person, the volume of air needed per person, the maximum temperature air can be heated to before it burns, and the heat capacity of air.
Next, I wanted them to work out what U value they would need for the walls of a Passivhaus in Matsumoto. This involves several steps, and I made the mistake of giving them too many of the steps to work out in one go. I don't think the calculation itself is particularly difficult, but I guess I'll find out because I've set that for their homework!
The first step, to make the calculation easier, is to assume that the heating load is equal to the loss of heat through the walls. Remembering the energy balance of a building, you can get to this by assuming that solar gains through windows roughly equal heat losses through windows and internal heat gains roughly equal heat losses through roof, ground, and ventilation.
The next step is to work out the wall area of the house. I gave them the volume, told them it was two-story, and assumed they'd just be able to work out the wall area from that. Half of them are studying
architecture so I think I can be forgiven for my assumption. It turned out to be wrong though. Perhaps there were too many assumptions for them to make: the height of the walls, the squareness of the building footprint, the use of square root to get from an area to one of it's sides, the number of sides on the square... Perhaps they were worried about other things: did they need to subtract the windows and doors? What shape was the roof going to be? Perhaps they were distracted from this question because they were expecting thermodynamics rather than geometry. Anyway, I think have learnt my lesson, and will chop the problem into bite-size chunks for them next time.
I should probably have realised this sooner, and modified the task, but while preparing the lesson I had been more impressed by the result of the calculation: 0.162 W/m2K. This number may not mean a lot to you, but as I scrolled down the slides to the introduction to my own house, I noticed that in fact the U value of my walls is 0.162 W/m2K. Perhaps just a coincidence, but it does show you
the power of rough estimates!
Unfortunately I didn't have time to share this bit of synchronicity with my students as the lesson had somewhat dissolved into scratching heads, spurious scribbling and many over-precise, under-accurate sums. The bell was going to go before I got to the happy ending that is Matsumoto Passive House.







