Showing posts with label green building. Show all posts
Showing posts with label green building. Show all posts

Wednesday, November 28, 2018

Me (Nathan Gauthier) on Green Building Matters Podcast

A few weeks ago I was interviewed by Charlie Cichetti for his Green Building Matters Podcast. I've listened to other episodes in the past and was very excited when he reached out to me and asked if I'd do an episode. Here's the link if you're interested:

https://www.gbes.com/green-building-matters-podcast/harvard-and-maritime-high-performance-building-edu-with-nathan-gauthier/


Tuesday, October 30, 2018

Choosing by Advantage

We've been doing a lot of Integrated Project Delivery (IPD) projects lately. For example, I spend every Monday at a collocation site for a new dormitory at Rhode Island School of Design. All of the designers and key sub-contractors are present and most of the subs are "designing" their own systems - essentially going straight to shop drawings. The groups are organized by cluster, with individuals sometimes included in more than one cluster and of course inter-cluster communication encouraged. I'm the MEP cluster lead. The photo below shows us reviewing possible MEP layouts with the structural engineer and architect as we place and size utility shafts.



One of the things I like about this process is using Choosing by Advantage (CBA) to select the best systems for the project. When we were selecting the HVAC systems, we started with 7 potential options. We then identified 9 potential advantages one system might have over another (see below) and eventually selected a 3-pipe VRF for heating and cooling with a dedicated outdoor air system through energy recovery ventilators.



IPD and CBA are ways to help project teams deliver high performance buildings to our clients. The integrated approach and looking at the building holistically allows us to optimize the whole and makes for a really rewarding experience.



A related post on LinkedIn: https://www.linkedin.com/in/nathangauthier/detail/recent-activity/shares/

Friday, June 6, 2014

Video about Architects for UNICEF Projects in Rwanda

Active Social Architecture (ASA) are architects for the pre-primary schools and early childhood development centers I've been managing for UNICEF. As part of an exhibit in Milan, they had this video made. The videographer only had a few days to shoot, none of the ECDs were complete yet, weather was bad, and they didn't get UNICEF permission (which is why they're not mentioned), but the video is really good. Shows off construction techniques in rural Rwanda. Brick masonry buildings with corrugated metal (pre-primary) or clay tile (ECD) roofs. I'm in the background a couple of times.


Video by What Took You So Longhttps://vimeo.com/89417328 


Thursday, June 5, 2014

PBH Weatherization Project

Back in 2010 I lead a project to work with Harvard students to weatherize the Philips Brooks House. It was a great project with over 50 students attending (including the woman who is now my wife, a post-doc at HSPH at the time) and lots of energy saved. The case study won AASHE's first Campus and Student Sustainability Award for “Best Campus Case Study”. Before the big day, I reached out to Jim Merchant of Pirates Lane (http://pirateslane.com/) who agreed to attend and prepare a video. While looking for something else today I ran across the video and was saddened to see that it had far fewer views than my last cat video (our cat Magilla Glub Glub has a Facebook page). Anyway, with that in mind, I'm sharing the case study and link to the video here. Special thanks to the Green Building Services team for all of their work before, during and after the event. Enjoy.

Case Study on AASHE site:
http://www.aashe.org/resources/case-studies/phillips-brooks-house-student-weatherization-project

Video (about 10 minutes long):
https://www.youtube.com/watch?v=YftpU-fkahU


Phillips Brooks House Student Weatherization Project


Institution(s)

Harvard University

Author(s)

Nathan Gauthier, Assistant Director, Office for Sustainability, Harvard University
       

Project Overview

On May 2nd, more than 50 Harvard students took a break from studying for finals and picked up caulk guns to help improve the energy efficiency of the Phillips Brooks House in Harvard Yard. The project was a collaboration between the Office for Sustainability, the Phillips Brooks House Association, the student Environmental Action Committee, and the Faculty of Arts and Sciences Green Program. Student labor was used to implement 23 weatherization projects in the building. The project is estimated to save more than 9 tons of CO2 equivalent and nearly $4,000 in utility costs annually.

Background

The project was initiated when students from the Environmental Action Committee (EAC) approached the Office for Sustainability and Faculty of Arts and Sciences Green Program asking if there was a way to involve students in a weatherization project similar to what is done by Cambridge Home Energy Efficiency Team (http://heetma.com/). The OFS team toured the building and identified nearly 40 practical energy conservation measures for the Phillips Brooks House, which is a 12,800 square foot, 100 year old, brick building. OFS then designed a program to work with students and issued a proposal to the FAS Office of Planning and Physical Resources to work with EAC students to plan and execute a student-lead weatherization event that would significantly improve the building's performance while engaging students in the process.

Project Goals

The primary goal of the project was to engage students and help them feel empowered to make a positive change on their campus. OFS and FAS wanted students to feel vested in the University's greenhouse gas reduction goal and to encourage them to do their part. The students wanted to have their contributions acknowledged and be exposed to the nuances of building operations and the details around how buildings operate and what opportunities exist to improve building performance. Additional goals included reducing the greenhouse gas emissions and operations costs of the Phillips Brooks House. An added benefit was receiving positive press highlighting student and administrative collaboration.

Project Implementation

Of the nearly 40 energy conservation measures identified for the building, more than 20 were selected on the basis that they could be safely and effectively implemented with student labor. The OFS and student planning team began weekly meetings to organize the project. OFS coordinated with Environmental Health and Safety on student safety issues, the Office of General Council on liability issues, Human Resources on labor relation issues and negotiating with the trade unions, and Facilities Maintenance Operations to identify technical resources that would be beneficial to project success. Cambridge HEET, a local non-profit that specializes in home weatherizations, was consulted to share lessons learned and to provide pre- and post-project blower door testing.



On the day of the event, participants were organized into 7 teams, each led by an OFS staff member and a student leader who had been trained on their tasks ahead of time. The 50 plus student volunteers were trained on safety protocols, tool use, and how to implement the ECMs and then supervised as they performed the work. Projects included caulking storm windows, installing low-flow plumbing fixtures, replacing lamps with compact fluorescents or low-mercury super T8 linear fluorescents, sealing a chimney, installing door sweeps and door jambs, insulating steam pipes, adding smart power strips on computers and timers on water coolers, installing educational signage, and many others. OFS staff was on hand to take photographs and a local videographer responded to a Craigslist ad asking for a volunteer to make a short film. Two full-time interns from Wentworth Institute of Technology worked with OFS throughout this project including helping lead weatherization groups on the day of the event.

Timeline

The project was on a very aggressive timeline because it needed to be implemented before students left for the summer. Students approached OFS and FAS in the last week of February, 2010. OFS Green Building Services walked the building on March 8 and issued a proposal complete with nearly 40 potential ECM opportunities on March 17th. The proposal assumed almost 200 hours of OFS staff time to complete the project with all of the recommended components. FAS approved the proposal the next day (3/18/10) and the OFS team began planning for the event. On March 23, OFS sent the student organizers a detailed description of the proposed process going forward and asked for contact information for student team leaders for the day of the event, as well as for their recommended date for the event and times for weekly team meetings. On March 26 the student organizers provided much of the information requested, though a date for the event wasn't finalized as we tried to coordinate availability of the building with OFS staff availability and student breaks. Student organizers and OFS began weekly breakfast meetings to go over project details, with FAS Office of Physical Planning and Cambridge HEET attending one meeting each to lend their assistance and get updates. By the first week of April, OFS staff and student leaders began visiting the building to put together detailed lists of materials needed to implement their projects and perform practice runs to ensure everybody knew how to perform the tasks for which they were responsible. On March 24th, OFS lead a larger group of students around the building to review all projects identified, including those identified but not being implemented as part of the student project such as demand control ventilation in the lounge area or variable frequency drives on the heating hot water loop. OFS had completed energy calculations for all projects and costed out the materials needed in order to share this information with the students and help them understand the utility cost and greenhouse gas reduction potential of each measure as well as their cost effectiveness. In the middle of April, May 2nd was selected as the day of the event. This was a Sunday during the reading period prior to exams. Invitations to attend were sent to the environmentally themed students groups on April 15th with an online sign up sheet using Google Docs. Materials were purchased during the last two weeks of April. The project took place on May 2, from 11:00 to 3:00, with OFS arriving at 9:00 to start setting up and staying to 4:00 to clean up. Coffee, juice and pastries were awaiting students at sign in and Veggie Planet rice dishes during the lunch break.

Financing

All funding was provided by the FAS Office of Planning and Physical Resources, paid out of their operating budget.

Annual savings are estimated at $3,750 in annual utility costs. We did not quantify the additional maintenance savings from re-lamping all 250 lamps in the building. None of our projects were expected to have an increased maintenance cost. We also did not try to quantify the improved productivity from staff being more comfortable or the benefits of educating students and how this might influence their behaviors going forward.

The total materials cost for the project was $3,300, of which $2,800 was billed to the FAS with the idea that remaining cost went towards tools that could be reused for future projects and would be paid for by OFS. This material value paid by FAS includes the cost of 7 new storm windows, which was not a project performed by the students but was critical to ensure the students caulking the storm window frames knew that their efforts were not in vain. This value also includes the $500 for lunch and $50 for breakfast. Most materials were purchased through Grainger, with additional materials purchased through Energy Federation Incorporated, Home Trends, Watertown Plumbing Supply, Home Depot, Staples, and Conservation Technology.

OFS staff put in 202 hours of time into the project, 192 of which were billed to FAS because of our not to exceed contract agreement. Facilities Maintenance Operations charged for 6 hours of work to have their plumber and pipe wrapper on-site on the day of the event.
Total project costs were $24,043, most of which was from labor.

Project Results

More than 50 students attended the May 2nd event, in addition to the more than a dozen student group leaders, OFS staff, and the Wentworth Interns. The initial, conservative estimates expected a reduction of 9 metric tons of CO2 equivalent of greenhouse gas emissions and $3,750 in utility costs per year. While full verification of the energy reduction may take a year to assess, the building was given a pre- and post-project blower door test to quantify air leakage. The test showed nearly 1,800 fewer cubic feet of air coming into the building when under pressure after the project, which translates to nearly 180 square inches of gaps in the building envelope that were filled… truly excellent results. The bulk of the benefit will be in the winter, when the significant reduction in infiltration will result in steam savings. Everybody responding to the lessons learned survey indicated that they thought the project was very valuable to students and that they hope it is replicated again next year.

Lessons Learned

After the project, a lessons learned survey was sent out to all of the OFS staff and student organizers. 73% of the respondents felt the project was good (4 / 5) and the remaining 27% felt it was excellent (5/5). All respondents indicated that it was a good project that they would like to see repeated.
There were multiple suggestions about broadening the outreach to include faculty and staff, as there were none at the event. The project would have also benefited from having the date confirmed earlier so the outreach could have been done over a longer period of time. Even with very little notice, more than 50 students attended on a Sunday when studying for finals, which seems to indicate there is a lot of interest in this type of event.

Additional time all around would have made the project go more smoothly and would have also likely reduced the cost to FAS as we had to invest significant and possibly redundant resources in order to get everything done on time. While we were able to successfully execute all 23 projects, we had multiple people working on the same or similar tasks for different projects when some of this could have been streamlined if time allowed.

There were a few minor issues during the event with ECMs that didn't go exactly as expected (pipe insulation not quite fitting, dual flush handles not working with all of the toilets, etc.). If we repeat this project, we'll make sure the dry runs in the weeks leading up to the project are more in-depth and can actually confirm the feasibility and the correct parts for all projects. We'll also make sure to order the parts further in advance. One of the packs of lamps we ordered for the chandeliers didn't have the fixture adapter and we didn't have the extra lamps on hand we were expecting.

Another lesson learned was about the door weather seals and students using the drills. It was hard to drill through the steel kick plate without using the more aggressive drill bits, but it was also really hard for students to stop the drill at the right depth. In the future, we'd like some sort of depth guide on the drill to reduce this over-drilling.

Because the blower door test was a bit of an after-thought, we couldn't get Cambridge HEET out on the day of our event. While they were able to come beforehand and afterwards, in the future we would like students to be able to see the actual test and witness the improvements.

 
The film that was made for us by Pirates Lane Video turned out really nicely and putting an ad on Craigslist for a volunteer videographer worked well. We had more than a dozen people volunteer their services. In the future, we'd like to have an OFS staff walk around with the videographer to make sure he's able to film all of the projects. We would have also liked filming of the predatory planning meetings if possible.

We created educational signage and a poster summarizing all of the projects for the students. These sorts of occupant engagement efforts partnered very well with the more typical energy conservation measures and helped make for a more complete event.

We were able to get reusable cups and glasses from Harvard University Hospitality and Dining Services and used all compostable plates and silverware (with composting bins that the OFS staff took home afterwards and brought back to work on Monday). All of the dishes from Veggie Planet for lunch were vegetarian. A number of students commented on appreciating that we made sure to use sustainable dining practices and this is of course something we'd like to do again in the future. A number of people also mentioned that it might be easier to eat pizza instead of rice dishes while outside working.

There were also comments about the project being more for awareness than energy savings, and it may have been nice to have contractors there actually implementing some of the more significant energy saving opportunities at the same time. We identified another 15 to 20 projects that had good payback and would save significant energy, but would require a professional contractor to implement. It might be worth combining the installation wtih the student work in the future. It is also worth noting that the vast majority of the project costs came from planning the weatherization event and not from the actual materials. Using student labor to thoroughly weatherize a building in this manner does not seem to be the most cost effective way to get the job done assuming you have to pay for the staff time needed for planning. The benefits, of course, go well beyond the immediate energy savings from the ECM projects.

There were a few ECMs that really only allowed a couple of people to work on them at a time. In order to engage more students, we would have needed more team leaders and possibly more tools (such as drills). This was only true for a couple of projects like the plumbing projects or door sweeps, but something to keep in mind. Trying to keep 50 or more students engaged simultaneously requires a lot of advanced planning and a lot of knowledgeable leaders.

A critical lesson to share is that early coordination with all stakeholders is critical and that doing so allowed the project to happen without any last minute concerns or hang ups. It requires motivated student leaders, knowledgeable sustainability staff, and facilities leader willing to invest in this kind of project (thank you Jay Phillips). If coordinated with all parties early, potential obstacles can be identified and solutions suggested.

Everybody involved felt this project was a success and that future projects would be even better. It is difficult to succinctly share all of the lessons learned, but the OFS team is very optimistic that if we were able to do a similar event in the future they'll be even more successful than the first.

Quick Look at Embodied Energy of Two Roof Solutions

A friend who is proposing a vaulted roof made from compressed earth blocks / tiles asked me to take a look at embodied energy between his proposed solution and a typical concrete roof. My response is below. Note the initial roof area, thickness, and materials for both the proposed and typical roof were provided by the friend. It appears that the compressed earthen blocks have significantly less embodied energy compared to a concrete dome solution. Another comparison might be the domed earthen blocks to a flat (less area) concrete roof, but this is not represented below. Let me know if you have any questions. Nathan Gauthier

Here is a summary of your emissions and embodied energy comparisons for the two roof options. The earthen dome option has significantly less embodied CO2 emissions (81% less). See below. All conversion factors come form the Inventory of Carbon and Energy (ICE v2.0) put out by Bath University.

 
Most of your savings comes from the tile roof not having steel reinforcement (very high embodied energy compared to other materials) and the earthen tile roof thickness (150 mm) being much less than the concrete (250 mm). Sand, aggregate and cement have the same CO2 per unit for each roof, but there is more volume / mass in the thicker concrete roof. I had to make a number of assumptions (type of lime, strength of concrete, percent recycled content for steel, etc.) but they don’t have a significant impact. Detailed breakdowns follow:
 

All volume to mass conversions from: http://www.simetric.co.uk/si_materials.htm
 
I didn't have Rwanda-specific emissions data, but sand, water, aggregate will all be collected locally with hand labor (aggregate will be crushed by hand), the earthen blocks are hand pressed (machine originally from South Africa), and concrete, steel, and anything else that is imported will come by truck into Rwanda and probably by boat to Mombasa, Kenya. 
 
 

Sunday, March 10, 2013

Earthen Ducts Question

EMAIL QUESTION ABOUT EARTHEN DUCTS:
 
Nathan,

My husband and I are designing a modest home in northern Indiana to passive house standards. We have a beautiful building site on a south-facing ridge in the middle of forty acres. Picture a house earth sheltered on three sides and open to the south to incorporate passive solar heating/cooling. We will not need a furnace or AC. What we do need is a well-designed whole house ventilation and dehumidification system. I’ve been researching these topics for over a year.

My conclusion: I want to explore the concept of using an earth tube or tubes to precondition our fresh air intake. If I can build a tube system that will achieve a 50% reduction in moisture load on incoming air in the dog days of summer, then tubes are the way to go. My math is not up to the task of evaluating the design. I’ve been trying to connect with a mechanical engineer who could give advice on the psychrometrics. If I can’t find someone to help me geek out the system variables for our site (tube diameter/length, depth, rate of air flow, pressure) then we will have to go with a purely mechanical system to be on the safe side. And then I will always wonder if we missed a grand opportunity.


EMAIL RESPONSE:

I love the idea of Passivhaus, though haven’t been able to work on any projects yet.  Good luck on the project.
 
Calculating the benefits of earth ducts is probably above my math too (I’m not an engineer).  Not one of the easier systems to analyze – I was expecting something easier J   We recently looked at it for a project in Durban, South Africa and besides calculating the potential energy savings, issues to consider include risk of condensation, fan power, and cost of construction.
 
The ground temperature below a couple of meters is usually around the average annual air temperature for your location.  The ground temperature tends to lag the air temperature by a couple of months and the deeper you go the less the ground temp changes.  Using data from South Bend – Michiana Regional Airport, we get the graph below, showing your ground temperature average is about 50 degrees F, but ranges from 40 to 62 at 13 feet and from 30 to 72 at 1.6 feet (this was all in meters originally – so the units for feet aren’t regular).
 
 
 With enough surface area for incoming air to duct contact, you can eventually get the outdoor air almost to the same point (dry bulb) as the ground temperature.  This means that in September, if your duct was 13 feet below ground, you could get the air to about 60 degrees even if it is 90 F outside.  Conversely, you could get the incoming air as high as 45 degrees (13 foot duct) in February, even if it is 0 degrees outside.  Unfortunately, to change the temperature that much, you need longer duct runs.  Assuming you need about 55 cfm of ventilation (2500 sf x 0.01 cfm/sf + 4 people x 7.5 cfm/person), the graph below shows what percentage of the temperature difference (between earth temperature and outside air temperature) you could make up  with different diameter ducts and different lengths (I assumed square / rectangle ducts).  This says that 20 meters of 0.1 x 0.1 duct would make up 90% of the difference between outdoor air and ground temperature.  For example, when it was 0 degrees outside and 50 degrees in the ground in January, you could make up 45 degrees just from going through the duct.
 
 
 
It doesn’t look like fan power will be that big of a deal for you (if you’re providing 55 cfm), regardless of the distance.  When I looked at the project in Durban we were trying to move 8,000 cfm and the fan power penalty was significant.  It looks like you’d really only need a 1 watt of fan power (though you’ll probably have to get one bigger just because that is what is available).  1 x 365 days / year x 24 hours / day / 1000 Wh / kWh = 8.76 kWh per year (about $0.88 per year in fan energy).  I’m only looking at 55 cfm as the ventilation requirement – this air isn’t meant to heat or cool. 
 
 
 
Finally, the last thing you’d want to consider is condensation.  The psychrometric chart below shows one dot for every hour of a typical year (8,760 dots) in South Bend.
 
 
 
The same chart below shows just the dots for a typical August.  During this month, your ground temperature could be around 60 degrees (assuming 13 feet deep).  During the hour that I’ve highlighted (point 1), the air temperature is about 87 degrees, 70% Rh.  When you cool this down towards 60 degrees, you start to get condensation at about 76 degrees (point 2 – the air is now 100% Rh).  By the time you get to point 3, you will have gone from 0.019 grains of water per pound of air to 0.011, with the water that is no longer in the air condensing out in your ducts.  I honestly don’t know how big of a concern this is, but in a typical air conditioner you’d collect the condensation at a specific point and be able to deal with it.  There may be concern about bacteria if you have standing water running the length of your ducts during the summer.  You wouldn’t have to worry about this in the winter.
 
 
 
That’s all I have for now.  If you have specific questions about your system, I might be able to do the calculations for you.  I made a few assumptions in the calcs above (6 bends in each duct work, turbulent flow, concrete ducts for example) and adapted calculations we already had for a larger commercial system, so if we had a real system and started from scratch the numbers could be tightened up  a bit, but I think this info is close.  Thanks to Alejandra Menchaca, PhD and Director of Operations for the Boston offfice of EA Buildings, who did most of the original calculations for our project in Durban.

Nathan

Wednesday, March 6, 2013

Ground Source Heat Pump Question

EMAIL QUESTION ABOUT HEAT PUMPS
Wed, 6 Mar 2013

Hi Nathan,  I am writing about our house in Lexington which my son and family are living in. He has contacted a firm who is planning to install heat pumps to heat/cool 2 floors of our split 3-level house. It is estimated to cost $20,000 with an interest free loan. I just am somewhat skeptical that heat can be supplied reasonably cheaply with electricity and heat pumps in this climate. I wonder if you are able to send me to appropriate literature or home owners who are using this equipment or perhaps give me your opinion. Sam


RESPONSE

Sam,

I usually think of GSHPs in terms of their coefficient of performance (COP). A good one can get around a COP of 4, meaning for every one unit of energy (electricity) you put in you get 4 units out as heat. According to the 2009 Residential Energy Consumption Survey (http://www.eia.gov/consumption/residential/data/2009/index.cfm?view=consumption#end-use) the average house in Massachusetts uses 65,200,000 Btu of energy on heating per year (652 therms about $652 cost). Since most homes use a regular boiler or furnace of around 80%, I'd estimate they only need 52,192,000 Btu of heat (the other 20% is inefficiencies from the boiler). This is the same energy as 15,296 kWh. To get this from a GSHP with a COP of 4, you'd need 3,824 kWh of electricity (about $382 cost). Conversely, if you provided the same 52 MMBtu of heat with a 95% condensing boiler, you'd use 54,939,000 Btu of natural gas (549 therms and $549 cost). GSHPs will save some energy, but the payback is usually pretty long.

As to whether or not the GSHP will work in Boston, it definitely can. We used a lot at Harvard. I know a guy in Somerville who has one for his house (case study link below). Average ground temperature in Boston is about 50. At shallow depths it ranges between about 30 to 70 (see attached from Logan). The ground temperature usually lags behind the air temperature by a month or two (the coldest months for ground temp are a couple of months behind the coldest air months). Still more efficient than trying to use an air source heat pump where the delta T is greater and less in your favor.

The GSHP will also be more efficient than a typical air conditioner, but the annual air conditioning cost is less than the heating cost. Assume you could save 25% or so on your AC bill (say going from a COP of 3 to 4).

I hope this helps.

Nathan

Sunday, February 27, 2011

Green Building Benefits

QUESTION:

Hello Nate,I hope all is well. I just had a class last night and one of the students is interested in doing a research paper on green building. I recall that this is your specialty - is that right? She is a bit lost and I can't help much with that subject. I was wondering if you could recommend any good books, or ideally, any good journal articles which discuss the economics of green building - ie. cost benefits analysis/ long term benefits. Anything you could suggest would be appreciated.


RESPONSE:

No problem. There aren't nearly as many resources on the cost effectiveness as I'd like to see, but I'll share what I know. The USGBC tries to collect all of this and has a list under "Research Publications" Here's the link: http://www.usgbc.org/DisplayPage.aspx?CMSPageID=77

One of the sub-headings is "Cost Analysis of Whole Buildings". The 2009 Kats and the 2007 paper by Langdon are probably your best bets for general cost / benefits studies.

As for the value of green buildings, CoStar Advisor has put out some reports: http://www.costar.com/josre/doesGreenPayOff.htm

I think the New Buildings Institute has one as well, but I didn't find it in my quick search.

Here's one on the benefits of increased productivity: http://www.costar.com/uploadedFiles/JOSRE/JournalPdfs/04-Green-Buildings-Productivity.pdf

Here's another good one on financial benefits / feasibility of green buildings (globally focused): http://www.wbcsd.org/Plugins/DocSearch/details.asp?DocTypeId=25&ObjectId=MzQyMDQ

This should get your student started. The USGBC site has lots of papers, but I should warn you that they're a mix of quality, with very few being from peer reviewed journals. If she refines the research question a bit more (what component of green buildngs? energy efficiency? re-sale value? increased occupant comfort? reduced risk of cancer? which type of green building? commercial offices? schools? homes? etc.) feel free to contact me for additional info. Not really any good books on the benefits, but some decent ones on how to design / build a green building if she does a search on the subject.

Nathan

Thursday, January 21, 2010

CO2 Sensor Placement

EMAIL: I've been curious for a while about the discrepancy between the recommendations for sampling locations expressed in ASTM D6245 and the ASHRAE and US GBC requirement for being in the breathing zone. After reviewing some of monitoring data for a nearby school, I'm finding that there are significant problems associated with this sampling location requirement, so I thought I'd pass it along.


RESPONSE: Thanks for the paper (indicating temporary CO2 spikes of over 1,000 ppm due to people exhaling near the sensor). I think CO2 sensor placement is like occupancy sensor or thermostat placement in that it must be located intelligently. For an occupancy sensor, it has to sense the people coming in but not be falsely triggered by people in the halls or miss people behind obstacles. For thermostats, they need to be close enough to the occupants to represent their conditions w/o getting direct sunlight to artificially read hot. For CO2 sensors, they need to be in the breathing zone to represent the air that people are actually breathing but not so close to people as to get artificially high readings from nearby exhalation. You always hear about stratification of air and this is why I’d want the CO2 sensor in the breathing zone “strata”. In a well mixed room, I guess it wouldn’t matter, but I don’t know how many rooms are well mixed or how you’d be sure yours was one. I’ve seen a number of engineers place them in a return air duct which is fed from a ceiling mounted grate, but in these same rooms the warm supply air is provided from ceiling diffusers and it seems like fresh warm air could stay along the ceiling and go straight to the exhaust, giving the CO2 sensor an artificial low reading. In the scenario I just described, ASHRAE 62 gives that style of room a 0.8 zone air distribution factor and assumes the room isn’t adequately mixed. In those rooms I’d much rather see it in the breathing zone. We’ve worked on a couple of day cares and talked about demand control ventilation for children and felt the CO2 sensor should be even lower to get the air quality where the kids were actually breathing.

Of course, I’m not the IAQ expert, so I’d defer to you as to the likelihood of adequate room air mixing. Maybe a similar study with CO2 sensors at different elevations would help, though most building owners aren’t going to want to pay for this.

Tuesday, September 15, 2009

Integrated Design and LEED


On Monday, September 14th, I taught my first full lecture at our ENVR 119, Green Building Design, Construction and Operations class at the Harvard Extension School. The class was well attended (about 40 people in the classroom) and was watched by many more live via the web. For the first time we had an online chat room up so that people could talk to each other during the class and ask questions, which teaching fellow Andrea Ruedy Trimble would read aloud. We know at least one student watched from Brazil and we expect the class from Tsinghua University in China to watch the recorded version. Tsinghua University has partnered with the Extension School to offer our class at their University, watching our lectures and using our assignments, but grading their own papers and supplementing our lectures with their own introductions.

The class on Monday was extended to three hours instead of its usual two hour format. For the first hour, I spoke about Integrated Design. The class asked lots of good questions and we had excellent participation. Rafal Shurma spoke next for one hour about international green building rating systems. It always makes me smile to see BREAM for Prisons as a formal rating system. Finally, I spoke from 9:30 to 10:30 pm about the US Green Building Council's LEED Rating System. I talked about the overall structure of the LEED system and then walked through the specific environmental attributes identified in the 2009 version of LEED for New Construction and Major Renovations. We also announced a study group for students wanting to prepare for the LEED Green Associate examination. A surprisingly high percentage of students stayed in class until 10:30 and about 5 even stuck around to ask questions. Copies of both of my presentations are attached.

Saturday, September 12, 2009

LEED for Homes Platinum


Walked by 2 Grant Street the other day. This is Harvard's first LEED for Homes Platinum building. It was a full-gut renovation of a 1,000 square foot house originally built in 1867. The project used a Mitsubishi Heat Recovery Ventilator (HRV) to ventilate the house in an energy efficient manner (pictured). This is a preferred method of ventilation compared to ventilating by leaving the building envelope really leaky (the more common method) and is especially effective in a hot-roof application where insulation is applied directly to the underside of the roof (as was done in 2 Grant). The project uses a high efficiency condensing furnace (95.5% efficient) for heat and air conditioner (13 SEER) for cooling and Icynene spray insulation to improve the envelope performance. Domestic hot water is provided by an instantaneous water heater as needed by the occupants (no storage tank) and all appliances were selected to be Energy Star rated. The team selected all low-emitting materials and otherwise environmentally friendly materials, water efficient fixtures (saving 40%), and carefully designed the project to be durable and avoid mold or moisture damage. This is only the second LEED for Homes Platinum at any university and the fist renovation.

Friday, September 4, 2009

Green Building Class

On Monday, we had the first ENVR 119, Green Building Design, Construction, and Operations class of the year. So far there are more than 75 students signed up for the class that is offered live and via distance learning. This is the fourth time we've offered ENVR 119. Jack Spengler (pictured above right) provided the course introduction as well as a lecture on the impacts of buildings on the environment and human health. Dr. Spengler is the Akira Yamaguchi Professor of Environmental Health and Human Habitation in the Exposure, Epidemiology & Risk Program, within the Department of Environmental Health, at Harvard University's School of Public Health, Boston, Massachusetts and is a world renowned expert on indoor air quality. Andrea Trimble followed with a review of the course syllabus and schedule. Andrea (pictured to the left) is manager of the Harvard Office for Sustainability Green Building Services. Rafal Schurma and Agnes Vorbrodt-Schurma introduced themselves and spoke briefly about their experiences starting the Polish Green Building Council. I followed with a very brief introduction of myself and a quick presentation on integrated design and the design and construction process (time was limited). A copy of my presentation can be found below.


Thursday, July 9, 2009

"Advertising" Green Buildings

Question: I work for the Office of Sustainability at ### University. I was wondering if you could direct me to the individual in your office who would know about green building done at Harvard. Specifically, I'm interested to know if any of the Harvard's green buildings have innovative ways of advertising their innovations.

Response:

We have a pretty big campus and over 60 green building / LEED projects and each advertises their innovation a little differently. We have real time utility displays in some:

http://buildingdashboard.com/clients/harvard/byerly/

http://buildingdashboard.com/clients/harvard/cowperthwaite/

http://buildingdashboard.com/clients/harvard/10akron/

All completed projects get case studies (eventually):

http://www.green.harvard.edu/theresource/case-studies/

We put the technologies used in an online database:

http://www.green.harvard.edu/theresource/tech-prod/

And a lot of projects have comprehensive signage programs, lab hood CFM displays, tours that are publicly available, etc. We usually try to write an article about new projects for our website:

http://www.green.harvard.edu/node/35

We then try to link to this site on the AASHE bulletin.

http://www.aashe.org/publications/bulletin.php

A couple of years ago we published a map of all our green building projects in the Harvard Gazette (click on the image on the bottom right):

http://www.news.harvard.edu/multimedia/specials/green/index.html

Hope this helps,

Nathan

Thursday, January 29, 2009

MMA Cadet Housing


The Massachusetts Maritime Academy, the nation’s oldest co-ed maritime college, is a four-year public institution located on the Cape Cod Canal in Bourne, Massachusetts. The new cadet housing is a $13 million, 36,000 square feet, two story build over atop two existing four story structures. Construction was completed in early Summer of 2007. The building is LEED NC version 2.0 Gold certified. 100% of its electricity comes from the 82 kW photovoltaic array on the roof and the nearby 660 kW wind turbine. The building uses 48% less domestic water than a typical building, recycled or salvaged 97% of its C&D waste, and selected a high percentage of materials that were locally manufactured and extracted and contained recycled content. A full case study for the project can be found here.

Saturday, January 10, 2009

Half Moon Outfitters

The Half-Moon Outfitters’ new Distribution Center is a renovated, one-story, 9,600 square foot combined office and warehouse in North Charleston, South Carolina. It was the world's first LEED NC v2.2 Platinum project, completed in December 2006. The building reduces it's energy use by 46% (modeled), domestic water use by 78% and its irrigation water by 100%. Much of the materials were salvaged, fluorescent lights dim according to the presence of daylight, rainwater from the roof is collected to flush toilets, and there are 4.9 kW of photovoltaic panels on the roof. The project cost just over $750,000. Sustainable Design and Construction Solutions was the sustainability consultant. The full case-study can be found here. A link to an article from Plenty Magazine can be found here.