On the profitability of investing in sustainable buildings
On the profitability of investing in sustainable buildings: a Noord-Brabant case study
Discussion-paper to be presented on behalf of the province of Noord-Brabant at the 4th SILCS-meeting on 5-6th of May 2011 in Portsmouth England(concept-report on finance)
Martin Bakker
Province of Noord-Brabant, [email protected]
Jochem Jantzen
TME, [email protected]Chris Posma
Syneff Consult, [email protected]
Rudy van Stratum
Stratum Strategie, [email protected]
This paper studies four case-studies within the province of Noord-Brabant to demonstrate that investing in sustainable buildings can be more profitable than investing in (non-optimized) mainstream buildings. This is demonstrated by using standard financial cash-flow driven techniques and by using conservative assumptions with respect to (for example) the increase in energy prices. To minimize the hurdles of existing liquidity-constraints of potential builders and to overcome focus on short-term profits from financial institutions, the authors suggest to create a public-private revolving fund for sustainable investments, while stopping giving subsidies for investments that are profitable already on their own terms. Key words: sustainability; profitability; case-study; Noord-Brabant; build environment; financial arrangements History: draft01 rvs 19-4-2011
1. Introduction
This report1 is written in the context of the POWER programme under the European Territorial Cooperation Program INTERREG IVC within its sub-project Strategies for Innovative Low Carbon Settlements (SILCS). In the justification for the project it is stated that: Societal Development is constrained by geographical boundaries. On a global scale and within a few decades, urban environments will increase in scale to support another 1.5 billion people. The central question is: how can we design buildings and urban environments so that carbon emissions through the whole product life cycle are reduced and the environment and its ecological systems are sustained whilst providing for an increased urban capacity. The aim of SILCS is to prove the effectiveness of low carbon building initiatives within the framework of sustainable development. Within the program there are stated separate research-questions for participation, financing, organization and technologies. The province of Noord-Brabant has taken the responsibility to dive deeper into the financing part of sustainable building. The key question here is: What kind of approaches can successfully enable change and have maximum impact on the way financial analyses are made and decisions taken, resulting in decisions not only based on initial investments costs and short-term profits but on total live-cycle costs and benefits? In the next section we set out our research-strategy to tackle the questions. In section 3 we will give a general description of the four cases that served as illustration of the approach. In section 4 we show the outcomes of the calculations of the four cases2. In section 5 we discuss the possibility of financial arrangements. Section 6 is about the possibility of up-scaling our results for an economic region like a province. Section 7 concludes the report.2. Research strategy
From our own experience from within the building process, we normally succeed in convincing the stakeholders that there is a problem when we keep building our buildings the traditional way. The arguments seem to be pretty clear especially since Al Gore's 'An inconvenient truth'. The problems to be addressed mainly deal with absolute scarcities on a global scale: scarcity of available geographical living space, scarcity of oil and natural gas, scarcity of all kind of building materials. But it is also scarcity of hitherto “free and abundant” goods like clean fresh air, water and biodiversity. In the end it's all about our future well-being and the well-being of our descendants. There is a common understanding that not changing our habits means that we will have to pay the price someday in the future. But there are financial barriers that should be taken, as often the initial investments to achieve a certain level of sustainability are higher than the “regular” needed investments, and the financial returns are often unclear, not exactly known at the start of a project. This leads to a higher level of uncertainty making it difficult to attract additional financial means in the initial stage of a building project (given the higher financial risks). And besides that, we are just recovering from a severe financial crisis, leading to tight budgets and a focus on the short-term profitability. To study these questions, we decided to go back to basics. We pose the question: is investing in sustainable building practices really more expensive and in what way? To answer this question, we made a stepwise analyses of the (additional or change in) investments and operational benefits in four cases from the on-going building and designing practice from Noord-Brabant (see next section). The main steps are:- inventory of sustainable interventions, compared to the base-case3;
- inventory of (changes in) investments and future (operational) cash-flows of the sustainable interventions, linked to: energy, water, health, productivity, maintenance, etc.;
- quantification of financial returns of the various interventions;
-
inventory of stakeholders and their financial returns.
- Case 1 concerns a public building which is the symbiosis or partnership of a city hall and a secondary school;
- Case 2 is about a new-style public-private sporting facilities complex;
- Case 3 concerns a primary school;
- Case 4 deals with the 'Brabant house', an innovative housing concept for starting families.
Case 4 is about the “Brabant house”. It concerns an innovative concept of dwellings for the starters on the housing market. The Brabant house wants to show that the concept of sustainability is not only for the more luxury segment in the housing market. Sustainability in housing can only get serious when it caters for larger numbers (multiplier effect) and foresees in a practical everyday need for larger amounts of people. The design caters for 4 types of housing in two or three layers, all with a footprint of around 50 square meter for the unit alone, ranging from 80 to 150 square meters including the garden area. The floor space for the 4 types ranges from 100 to 150 square meters. The idea is that these 4 types of units can be assembled into clusters of 8 units, totalling up to 10-12 clusters, giving a total of 80-100 sustainable Brabant houses. The concept is modular and free in the sense that every municipality in Brabant can assemble their own subset of houses including the outside looks and finish and green public spaces around it (the latter is not part of the design itself). The all-in price for the units (including land price and VAT) is in the range of € 180.000 - € 235.000. The units are designed from an integral perspective, not only looking at maximum energy-savings but also looking at the use of environmental friendly building materials, use of green roofs and walls for carbon-absorption but most importantly: they have to be friendly, comfortable and healthy to live in. Benefits associated with the sustainable interventions are: optimal use of space (low temperature heating requires less space, a green roof can replace part of the garden) and lower costs of operation (energy, water, maintenance).
4. The 4 cases of province Noord-Brabant: calculations on the profits of sustainable investments
In all four cases5 a detailed analysis was made of the original design (and investment cost-estimates) and the operational aspects with financial effects (energy, water, maintenance, health, performance). Next, for each design detailed calculations were made of all kinds of possible sustainable interventions. This revealed a bigger pattern in the approach to optimise existing (non-optimized) designs. It appears that optimising for sustainability can be done in three logical steps:- Step 1: Go for optimal space, synergy and symbiosis:
- use less space by make smaller and more compact buildings (as far as functionality allows);
- create higher utilisation rates of available spaces;
- share and multi-usage of spaces;
- Step 2: Aim at optimal performance of the space:
- orientate the building optimal with respect to available natural resources as light, sun, air and water;
- design for minimal use of energy and optimal air quality;
- use minimal machinery and installations (less space, less energy, less maintenance);
- use simple solutions, eschew complexity;
- use longer lasting materials (lowering maintenance and extending lifecycles);
- use smart solutions that fulfil more than one need (for example: roof-gardens);
- Step 3: Increases future flexibility and bring down future costs that reasonably can be foreseen already during construction. If the initial budget does not allow for it, create a financial arrangement that enable these additional investments.
- Design and build for the possibility of extra cellar space and foundation if reasonably can be foreseen that there will be need for a parking space in the future;
- Design flexible or modular so that the insides of the buildings can easily be transformed for other future uses;
-
Design for some extra space margins for future needs that can not be foreseen now.
|
|
Budget allocated in € | Optimal space saving in € |
% of budget |
Annual cash-flow effect |
| Case 1: town hall+school |
€ 40 mln |
- € 4 mln |
-10% |
+ € 200k |
| Case 2: sports centre |
€ 6 mln |
- € 0.3 mln |
-5% |
+ € 50k |
| Case 3: primary school |
€ 4 mln |
- € 0.13 mln |
-3% |
+ € 15k |
| Case 4: housing (100) |
€ 19 mln |
- € 0.19 mln |
-1% |
+ € 11k |
|
|
Budget allocated in € | Optimal performance extra investment in € |
% of budget |
Annual cash-flow effect |
| Case 1: town hall+school |
€ 40 mln |
€ 6 mln |
15% |
+ € 600k |
| Case 2: sports centre |
€ 6 mln |
€ 2.5 mln |
40% |
+ € 200k |
| Case 3: primary school |
€ 4 mln |
€ 1.8 mln |
45% |
+ € 130k |
| Case 4: housing |
€ 19 mln |
€ 1.9 mln |
10% |
+ € 95k |
|
|
Extra net investment steps 1+2 | Annual cash-flow effect steps 1+2 |
ROI steps 1+2 |
ROI steps 1+2+3 |
| Case 1: town hall+school |
€ 2 mln |
- € 800k |
40% |
24% |
| Case 2: sportscentre |
€ 2.2 mln |
- € 250k |
11% |
16% |
| Case 3: primary school |
€ 1.6 mln |
- € 150k |
9% |
12% |
| Case 4: housing |
€ 1.7 mln |
- € 100k |
6% |
n.a. |
Table 3: Total effects of integral approach
The main conclusion is that the calculated return on investment seems to be robust over all steps and for all cases except (partially). The ROI ranges from 6% to an extremely high 40%. Of course the outcomes will differ for other cases depending on the amount of sophistication already there in the existing design and depending on a number of other characteristics of the building. To conclude this section we want to do another clustering of the main drivers behind the ROI's. It is not always possible to draw a clear line between the investment itself and the kind of effects it generates. We decide to concentrate on the effects and came up with three main categories. Profit-increasing effects can be physical-capital-related (these effects have to do with the structure of the building itself and with the materials used), can be energy-savings-related (meaning lower costs of energy) or can be human-capital-related (mainly less replacement costs of employees and/or lower premiums for insurance for illness). The decomposition of the ROI of steps 1+2 taken together are summarized in table 4.
| Decomposition into: |
|
Case 1 Town hall +school ROI = 40% |
Case 2 Sports centre ROI = 11% |
Case 3 school ROI = 9% |
Case 4 housing ROI = 6% |
|
Buildings and materials |
Physical capital |
34% |
23% |
24% |
22% |
| Energy savings |
Energy |
24% |
60% |
36% |
78% |
|
Better human performance |
Human capital |
34% |
2% |
35% |
n.a. |
|
Other factors |
Various |
8% |
15% |
5% |
n.a. |
- Big buildings with lots of empty spaces and low utilization rates have a high energy-savings component (as in the sports-centre of case 2).
-
Building in which are a lot of people a lot of the time have a high human capital savings component (places for working and learning as in cases 1 and 3).
- Building with a lot of potential for space-sharing and multi-usage have a high buildings- and materials savings component (mainly the symbiosis-case 1);
- For housing energy plays a major role, but other harder to monetise factors like well being and comfort should also be considered.
5. Financial arrangements
So where does that lead us? We have seen that the return on sustainable investments in buildings can be quite high. So the main objection why the sector doesn't build sustainable on a larger scale has been tackled. Problem solved, case closed. Not! We spoke about our calculations and about the extra opportunities to make a profit with a number of decision-makers. And a new financial objection turned up a number of times during the conversations. Even if we want to invest in sustainable buildings, so we were told, we have to have the cash available or must be able to lend the money. In other words: the hurdle for investing in sustainable buildings could be a liquidity-constraint. So on we go, tackling the next hurdle. Can a financial arrangement between parties be made to solve the liquidity-constraint? It is our opinion that when returns on investment are that high a financial arrangement (swapping cash-flows between parties over time) can be set up that makes the extra investments feasible. We illustrate this by giving a simple numerical example. Let's take case 1 where the initial budget is 40 million Euro. This budget is catered for so should not give a problem. Now suppose that our calculations suggest investment in an extra sustainability package of 5 million Euro that generates a yearly extra cash-flow of 500k Euro (the ROI then is 10% which is lower than in our actual calculations). Suppose the bank for whatever reason is not willing to lend this amount of money. Our suggestion to the authorities would be to stop giving subsidies for investments that are profitable in their own right. Instead we suggest to use these subsidies to form a revolving investment fund where parties can lend the (additional needed) money for sustainable building. We think that banks can be persuaded to be partner in these revolving funds. The fund charges a moderate rate of interest if certain conditions are met, let's assume the rate of interest to be charged is 4%. This seems to be a win-win situation: the authorities get 4% return instead of giving it away for free, the sustainable investor gets his money and pays the rent (which in our example is 200k Euro a year) and cashes in a net extra cash-flow of 300k Euro a year. But what about the payback of the total amount of debt? This can be solved easily too. Standard accounting practice often says that the building lasts for only 40 years, which implies 40 years of depreciation and a net worth of zero for the building after year 40. Now ownership can easily be swapped after 40 years of use. The sustainable investor is the owner of the building during the first 40 years but agrees from the start upon giving the ownership to the revolving fund after that period. Giving it away for free accounts for redemption of the original loan of 5 million Euro. Now the fund is the owner of a building that can be sold for cash or rented to the existing or new users. Of course a lot of details have to be worked out, the only thing we are saying is that it cán be worked out. So again: problem solved? Guess what? In our conversations new objections came up. We can make a list of all kind of objections and we can come up with all kinds of possible solutions. This is beyond the scope of this paper however. We think it is for future research to look further into the psyche of the building chain and discover why finance for sustainability is so hard to find. 6. Thoughts about up-scaling We have studied four cases. Is it possible to upscale these cases to form conclusions at the level of a region? We take the region Noord-Brabant as an example7. Noord-Brabant has 2.45 million inhabitants, which live in 1 million houses. One in 5 inhabitants follow education in more than 1000 buildings. More than 800,000 people work in the service sector, with about 100,000 economic units registered. Each year up to 1% of the existing stock of buildings is new-built or (partly) replaced: around 10.000 houses, 150 buildings for non commercial services and 750 buildings for industry and commercial services (part office buildings). The total estimated annual turn-over in Noord-Brabant of the construction sector is € 4.5 billion for housing (new and renovation) and € 2.6 billion for public buildings, service building, offices, industries. We assume that about 50% of the market value concerns new buildings. For the relevant type of (new) buildings turn-over can be estimated at about € 2 billion for housing and € 500 mln for public buildings and offices in the service sector. If all new building projects in Noord-Brabant would be designed towards sustainability (Step 1 + 2), the additional investments could be 10% for housing and 20% for offices. So the additional needed finance would be € 200 million + € 100 million per year = € 300 million per year8. The return on investments would be initially € 12 mln per year for housing (6% ROI) and € 10 million for larger buildings (10% ROI). The pace in which the built-up environment of Noord-Brabant would be transformed towards sustainability if only attention is given to new houses and buildings is not by far fast enough to achieve the ambitious targets for energy and climate in the longer turn. If for example in 40 years time the majority (90%) of the built-up area needs to be “sustainable”, the pace of action would need to be at least 3 times higher than for new buildings and mainly directed towards existing buildings and houses. It would at least require an additional € 500 million (or more) per year in investments9, but would also lead to 3 or 4 times larger savings/revenues (up to € 100 mln per year).7. Conclusions
- Most if not all of existing designs for buildings can be re-designed from the perspective of sustainability and integration and show a reduction of initial costs (outlays) in the order of between 1% up to 10% of the original budget.
- The main part of initial cost reductions as meant in conclusion 1 can be attributed to:
- Physical orientation of the building with respect to optimal day-light, air circulation, energy-consumption and noise;
- Smarter use of installations and ICT;
- A plain reduction of square and cubic meters by multiple and symbiotic use of space;
- Still taking the redesigning a step further along the road of sustainability means most of the time an increase in the total initial costs in the order of 10-20% but up to 40% of the original budget. These cost increases can mainly be attributed to:
-
A more flexible building with respect to other possible future uses.
-
The use of longer lasting and/or more sustainable materials.
-
The use of other energy- and water-concepts (green roofs, solar-collectors etc).
-
- The extra initial outlay of conclusion 3 can most of the time be proven to be profitable in the longer run (30 years time horizon). The main drivers for the often high positive return on investment are:
-
Energy-savings.
- Less maintenance and/or adjustment costs. Less depreciation and/or higher life-span of the building.
- Higher productivity and less absenteeism of employees.
-
- Sometimes there are financial restrictions with respect to the initial budget and extra investments are not an option. In most of these cases a financial arrangement (swapping cash-flows between parties over time) can be set up that makes the extra investments feasible.
-
An idea is to skip subsidies for sustainable building and instead create a revolving fund, that takes up the loans in case the market/budget does not allow.
