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Reply-To: HUMAN POWER PLANT <kris.de.decker@skynet.be>
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Message-ID: <001a11403d986e57650551685695@google.com>
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Date: Thu, 08 Jun 2017 00:57:32 +0000
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Subject: The Power Generation Floors
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From: HUMAN POWER PLANT <noreply+feedproxy@google.com>
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To: amr.gharbeia@gmail.com
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Content-Type: multipart/alternative; boundary="001a11403d986e9522055168569a"
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--001a11403d986e9522055168569a
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Content-Type: text/plain; charset="UTF-8"; format=flowed; delsp=yes
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HUMAN POWER PLANT
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///////////////////////////////////////////
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The Power Generation Floors
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Posted: 07 Jun 2017 01:00 PM PDT
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http://www.humanpowerplant.be/2017/06/power-generation-floors.html
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Three floors of the human powered student building are taken up by the
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central human power plant, which is run by the entire community. How long
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the students need to exercise on these floors, depends only on their demand
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for energy.
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Communal Exercise Machines
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The energy that's produced on the power generating floors is used to heat
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the building, warm the water, run the refrigerators, flush the toilets, and
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power the lights and other devices in the communal spaces, among other
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things. On the other hand, electricity used in the individual student rooms
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is generated in the rooms themselves.
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The power generating floors are equipped with various individual and
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communal exercise machines. Most power is produced by large treadmills and
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capstans, which are each operated by up to a dozen people at the same time.
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Pets are welcome to join the effort.
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The power producing students are encouraged by live musicians. The use of
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music during physical labour -- to pass the time, to coordinate timing, or
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to protest against work conditions -- has a very long tradition.
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Operating treadmills and capstans requires strength and endurance, but also
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skills and team work. Students must be coordinated to run these machines
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efficiently and safely. Especially treadmills can be dangerous. The
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students learn how to act if someone falls. By introducing an element of
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danger, the human powered student community benefits from the risky
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behavior of young adults.
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Electricity Production
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The human power plant can combine the power output of 400 students. If each
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of them produces 100 watts of power, the peak power capacity of the human
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power plant is 40 kilowatt. Including losses for distribution and energy
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conversion, which we estimate to be 50%, the human power floors can supply
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a maximum 20 kilowatts of electric power.
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If this effort would be sustained for 24 hours per day (the "slavery"
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scenario, in which each student does a daily shift of 9.6 hours), the
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maximum electricity production would be 423 kilowatt-hours per day. If the
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same power output would be sustained for only 8 hours per day
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(the "fitness" scenario, in which each student does a daily shift of 3.2
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hours), maximum electricity production would be 144 kilowatt-hours per day.
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For comparison, the average electricity consumption in a common (fossil
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fuel powered) student dorm for 750 students is 3.000 kilowatt-hours per
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day, roughly 10 to 20 times more than we have available. However, the human
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powered student community requires much less electricity than a common
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student building for three reasons: most household tasks are organized
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communally, the building makes use of very efficient technology, and
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students have adopted less energy-intensive daily routines.
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Although humans themselves can be considered as batteries, the human
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powered student building is equipped with a gravity battery in one of the
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former elevator shafts. It has a storage capacity of 156 kWh electrical
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energy. This non-human energy storage smooths out peak energy demand, which
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allows to spread out the workforce more evenly throughout the day. Energy
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storage also allows to operate machines, such as refrigerators, for 24
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hours per day without introducing night shifts.
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Heat Production
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The human power plant is like a co-generation power plant: it produces
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electricity but also uses the waste heat that is produced in the process.
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The body heat from the power producing students is piped throughout the
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building and into communal spaces and individual student rooms. By opening
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the vents in the pipes, students can release the warm air into the room or
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in their personal body suit.
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The human body produces between 50 and 150 watts of heat during rest or
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light activity. During exercise, these numbers can double or triple.
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Assuming 400 students can each sustain a heat production of 200 watts, we
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have 80 kW of heat available at maximum power production.
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On the other hand, to raise the indoor temperature by 10 degrees celsius in
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a building the volume of the Willem C. Van Unnik building takes 255 to 900
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kW of heat, depending on the insulation level.
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Unfortunately, our building is not very well insulated. This could be
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improved by investing in extra insulation, but we found even more
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energy-efficient alternatives in heated body suits, thermal clothing, and
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the encouragement of physical activity (so that people need less heating).
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Work schedules
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The maximum power capacity of the human power plant says nothing about the
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effective power and energy production. This ultimately depends on how much
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energy is used. Because the users of energy are also the producers of
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energy, there's a strong incentive to reduce energy demand.
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Daily working schedules for communal power production can vary from less
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than one hour to 8 hours or more depending on communal and individual
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preferences. The working schedules are negotiated and set up by the
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students themselves, who are in total control of their human powered
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community.
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The seasons also influence the working schedules. Lowering power generation
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in winter is problematic because it also lowers the heat production.
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Furthermore, less people generating power also means that more people are
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inactive and thus need more heating.
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--
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<a style=3D"color:#888;font-size:22px;font-family:Arial, Helvetica, sans-se=
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rif;font-weight:normal;text-decoration:none;" href=3D"http://www.humanpower=
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plant.be/" title=3D"(http://www.humanpowerplant.be/)">The Power Generation =
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Floors</a>
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<table id=3D"itemcontentlist">
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<tr xmlns=3D"">
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<td style=3D"margin-bottom:0;line-height:1.4em;">
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<p style=3D"margin:1em 0 3px 0;">
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<a name=3D"1" style=3D"font-family:Arial, Helvetica, sans-serif;font-size:1=
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8px;" href=3D"http://www.humanpowerplant.be/2017/06/power-generation-floors=
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.html">The Power Generation Floors</a>
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</p>
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<p style=3D"font-size:13px;color:#555;margin:9px 0 3px 0;font-family:Georgi=
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a,Helvetica,Arial,Sans-Serif;line-height:140%;font-size:13px;">
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<span>Posted:</span> 07 Jun 2017 01:00 PM PDT</p>
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<div style=3D"margin:0;font-family:Georgia,Helvetica,Arial,Sans-Serif;line-=
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height:140%;font-size:13px;color:#000000;">
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<div xmlns=3D"http://www.w3.org/1999/xhtml"><p><span style=3D"font-size: 13=
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pt;"> <a class=3D"asset-img-link" style=3D"display: inline;" href=3D"http:/=
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/krisdedecker.typepad.com/.a/6a00e0099229e8883301b8d289eabc970c-pi"><img cl=
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ass=3D"asset asset-image at-xid-6a00e0099229e8883301b8d289eabc970c image-f=
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ull img-responsive" title=3D"04 GYM=E2=80=93NEW copy" src=3D"http://krisded=
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ecker.typepad.com/.a/6a00e0099229e8883301b8d289eabc970c-800wi" alt=3D"04 GY=
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M=E2=80=93NEW copy" border=3D"0" /></a></span></p>
|
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<p><span style=3D"font-size: 13pt;">Three floors of the human powered stude=
|
|
nt building are taken up by the central human power plant, which is run by =
|
|
the entire community. How long the students need to exercise on these floor=
|
|
s, depends only on their demand for energy. </span></p>
|
|
<p style=3D"text-align: center;"><span style=3D"font-size: 13pt;"><strong>C=
|
|
ommunal Exercise Machines<br /></strong></span></p>
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|
<p><span style=3D"font-size: 13pt;">The energy that's produced on the power=
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generating floors is used to heat the building, warm the water, run the re=
|
|
frigerators, flush the toilets, and power the lights and other devices in t=
|
|
he communal spaces, among other things. On the other hand, electricity used=
|
|
in the individual student rooms is <a href=3D"http://www.humanpowerplant.b=
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e/2017/05/for-rent-750-human-powered-student-rooms.html">generated in the r=
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ooms themselves</a>.</span></p>
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<p><span style=3D"font-size: 13pt;">The power generating floors are equippe=
|
|
d with various individual and communal exercise machines. Most power is pro=
|
|
duced by large treadmills and capstans, which are each operated by up to a =
|
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dozen people at the same time. Pets are welcome to join the effort. </=
|
|
span></p>
|
|
<p><span style=3D"font-size: 13pt;">The power producing students are encour=
|
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aged by live musicians. The use of music during physical labour -- to pass =
|
|
the time, to coordinate timing, or to protest against work conditions -- ha=
|
|
s a <a href=3D"https://en.wikipedia.org/wiki/Work_song" target=3D"_blank" r=
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el=3D"noopener">very long tradition</a>. <br /></span></p>
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|
<p><span style=3D"font-size: 13pt;">Operating treadmills and capstans requi=
|
|
res strength and endurance, but also skills and team work. Students must be=
|
|
coordinated to run these machines efficiently and safely. Especially tread=
|
|
mills can be dangerous. The students learn how to act if someone falls. By =
|
|
introducing an element of danger, the human powered student community benef=
|
|
its from the risky behavior of young adults.<br /></span></p>
|
|
<p style=3D"text-align: center;"><span style=3D"font-size: 13pt;"><strong>E=
|
|
lectricity Production<br /></strong></span></p>
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|
<p style=3D"text-align: left;"><span style=3D"font-size: 13pt;">The human p=
|
|
ower plant can combine the power output of 400 students. If each of them pr=
|
|
oduces 100 watts of power, the peak power capacity of the human power plant=
|
|
is 40 kilowatt. Including losses for distribution and energy conversion, w=
|
|
hich we estimate to be 50%, the human power floors can supply a maximum <a =
|
|
href=3D"http://zy3995.en.ec21.com/20KW_Diesel_Generator_Set--2952107_295224=
|
|
6.html" target=3D"_blank" rel=3D"noopener">20 kilowatts of electric power</=
|
|
a>. <br /></span></p>
|
|
<p><span style=3D"font-size: 13pt;">If this effort would be sustained for 2=
|
|
4 hours per day (the "slavery" scenario, in which each student does a daily=
|
|
shift of 9.6 hours), the maximum electricity production would be 423 kilow=
|
|
att-hours per day. If the same power output would be sustained for only 8 h=
|
|
ours per day (the "fitness" scenario, in which each student does a daily sh=
|
|
ift of 3.2 hours), maximum electricity production would be 144 kilowatt-hou=
|
|
rs per day. </span></p>
|
|
<p><span style=3D"font-size: 13pt;"><a class=3D"asset-img-link" href=3D"htt=
|
|
p://krisdedecker.typepad.com/.a/6a00e0099229e8883301bb09a35e6f970d-pi"><img=
|
|
class=3D"asset asset-image at-xid-6a00e0099229e8883301bb09a35e6f970d img-=
|
|
responsive" style=3D"display: block; margin-left: auto; margin-right: auto;=
|
|
" title=3D"Human powered floors in the human powered student building" src=
|
|
=3D"http://krisdedecker.typepad.com/.a/6a00e0099229e8883301bb09a35e6f970d-5=
|
|
00wi" alt=3D"Human powered floors in the human powered student building" />=
|
|
</a></span></p>
|
|
<p><span style=3D"font-size: 13pt;">For comparison, the average electricity=
|
|
consumption in a common (fossil fuel powered) student dorm for 750 student=
|
|
s is <a href=3D"https://www.smith.edu/env/pdf%20files/2009/Steingard_Energy=
|
|
Use_09.pdf" target=3D"_blank" rel=3D"noopener">3.000 kilowatt-hours per day=
|
|
</a>, roughly 10 to 20 times more than we have available. However, the huma=
|
|
n powered student community requires much less electricity than a common st=
|
|
udent building for three reasons: most household tasks are organized commun=
|
|
ally, the building makes use of very efficient technology, and students hav=
|
|
e adopted less energy-intensive daily routines. </span></p>
|
|
<p><span style=3D"font-size: 13pt;">Although humans themselves can be consi=
|
|
dered as batteries, the human powered student building is equipped with a g=
|
|
ravity battery in one of the former elevator shafts. It has a storage capac=
|
|
ity of 156 kWh electrical energy. This non-human energy storage smooths out=
|
|
peak energy demand, which allows to spread out the workforce more evenly t=
|
|
hroughout the day. Energy storage also allows to operate machines, such as =
|
|
refrigerators, for 24 hours per day without introducing night shifts.<br />=
|
|
</span></p>
|
|
<p style=3D"text-align: center;"><span style=3D"font-size: 13pt;"><strong>H=
|
|
eat Production</strong></span></p>
|
|
<p><span style=3D"font-size: 13pt;">The human power plant is like a co-gene=
|
|
ration power plant: it produces electricity but also uses the waste heat th=
|
|
at is produced in the process. The body heat from the power producing stude=
|
|
nts is piped throughout the building and into communal spaces and individua=
|
|
l student rooms. By opening the vents in the pipes, students can release th=
|
|
e warm air into the room or in <a href=3D"http://www.humanpowerplant.be/201=
|
|
7/05/for-rent-750-human-powered-student-rooms.html">their personal body sui=
|
|
t</a>. </span></p>
|
|
<p><span style=3D"font-size: 13pt;">The human body produces between 50 and =
|
|
150 watts of heat during rest or light activity. During exercise, these num=
|
|
bers can double or triple. Assuming 400 students can each sustain a heat pr=
|
|
oduction of 200 watts, we have 80 kW of heat available at maximum power pro=
|
|
duction. </span></p>
|
|
<p><span style=3D"font-size: 13pt;">On the other hand, to raise the indoor =
|
|
temperature by 10 degrees celsius in a building the volume of the Willem C.=
|
|
Van Unnik building takes <a href=3D"http://www.calculator.net/btu-calculat=
|
|
or.html?roomwidth=3D13&roomwidthunit=3Dmeters&roomlength=3D100&=
|
|
roomlengthunit=3Dmeters&ceilingheight=3D77&ceilingheightunit=3Dmete=
|
|
rs&insulation=3Dgood&temperature=3D10&temperatureunit=3Dc&c=
|
|
alctype=3Dheat&x=3D57&y=3D15" target=3D"_blank" rel=3D"noopener">25=
|
|
5 to 900 kW of heat</a>, depending on the insulation level. </span></p>
|
|
<p><span style=3D"font-size: 13pt;"> <a class=3D"asset-img-link" style=3D"d=
|
|
isplay: inline;" href=3D"http://krisdedecker.typepad.com/.a/6a00e0099229e88=
|
|
83301b8d28a7736970c-pi"><img class=3D"asset asset-image at-xid-6a00e009922=
|
|
9e8883301b8d28a7736970c img-responsive" style=3D"display: block; margin-lef=
|
|
t: auto; margin-right: auto;" title=3D"Power producing floors detail" src=
|
|
=3D"http://krisdedecker.typepad.com/.a/6a00e0099229e8883301b8d28a7736970c-5=
|
|
00wi" alt=3D"Power producing floors detail" /></a></span></p>
|
|
<p><span style=3D"font-size: 13pt;">Unfortunately, our building is not very=
|
|
well insulated. This could be improved by investing in extra insulation, b=
|
|
ut we found even more energy-efficient alternatives in heated body suits, t=
|
|
hermal clothing, and the encouragement of physical activity (so that people=
|
|
need less heating). </span></p>
|
|
<p style=3D"text-align: center;"><span style=3D"font-size: 13pt;"><strong>W=
|
|
ork schedules</strong></span></p>
|
|
<p><span style=3D"font-size: 13pt;">The maximum power capacity of the human=
|
|
power plant says nothing about the effective power and energy production. =
|
|
This ultimately depends on how much energy is used. Because the users of en=
|
|
ergy are also the producers of energy, there's a strong incentive to reduce=
|
|
energy demand. </span></p>
|
|
<p><span style=3D"font-size: 13pt;">Daily working schedules for communal po=
|
|
wer production can vary from less than one hour to 8 hours or more dependin=
|
|
g on communal and individual preferences. The working schedules are negotia=
|
|
ted and set up by the students themselves, who are in total control of thei=
|
|
r human powered community. <br /></span></p>
|
|
<p><span style=3D"font-size: 13pt;">The seasons also influence the working =
|
|
schedules. Lowering power generation in winter is problematic because it al=
|
|
so lowers the heat production. Furthermore, less people generating power al=
|
|
so means that more people are inactive and thus need more heating. <br /></=
|
|
span></p></div>
|
|
</div>
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