Showing posts with label RE. Show all posts
Showing posts with label RE. Show all posts

Saturday, March 1, 2014

Renewable Energy, the Star of the Show

Renewable Energy has been the step-child of energy policy, which has been dominated by Energy Efficiency (EE). This emphasis on EE is really a relic of the energy crises of the last century, when it was thought the cost of energy and energy independence were the issue, and not so much the environmental dimension. Times have changed. Reducing Green House Gas emissions (GHG-emissions) now has taken center stage. Renewable Energy (RE) is the only path that will get us the reduction in GHG-emissions which are now generally seen as a priority. The simple truth is that Energy Efficiency is not a generating technology, it only improves the performance of whatever system you have, be it based on fossil fuels, or based on renewable energy, therefore, it is equally applicable to both. The only real choice is between Fossil Fuels (FF) and Renewable Energy (RE), and RE is what we want, not more FF, or for our addiction to FF to last longer.
In the public dialog, and in public policy, EE is mostly treated as an end in itself, which results in policies that achieve the opposite of what we want to achieve, assuming that a reduction of GHG-emissions is really our goal. The reason for this is simple. Our existing systems are overwhelmingly based on Fossil Fuels, and if you improve them with EE, you are throwing good money after bad by making FF economically more attractive. If we make fossil fuels cheaper to use, people will use more of them and will use them for a longer time, which is strongly regressive for climate risk. If the government is subsidizing EE without further qualification, they are subsidizing the fossil fuel industry, which is the opposite of what they want to do.
The only rational policy towards GHG-reductions is one that minimizes GHG-emissions through Renewable Energy, and leaves it to the Fossil Fuel industry and their customers to make their systems as efficient as possible. It is not rational to subsidize Fossil Fuels indirectly by subsidizing Energy Efficiency without qualification.

Renewable Energy Failure in NYC

Despite many signature projects that demonstrate what's possible, New York City overall has fallen into the trap of prioritizing EE, hand in hand with state programs like NYSERDA, as well as various federal programs. Even worse, the NYC Clean Heat program diverted a large portion of the housing stock to natural gas for heat, in a laudable attempt to reduce particulates emissions and GHG-emissions, but by doing so missed the opportunity to begin the serious conversion to RE, which would have produced quantum advances in reducing GHG-emissions. As we now know, the switch from coal to gas, and from heavy fuels to gas, yield no reductions in GHG-emissions, except a displacement. So nominally NYC wins a little in the short run, but in the long run it is meaningless.
Typical EE projects yield 15-25% reductions in energy costs, mostly "savings" on fossil fuel bills, and these seem easily justifiable, however in many cases we are missing the opportunity for radical conversions to RE, which could easily produce over 50% reductions in GHG-emissions, and be financially successful for building owners, far more so than the EE projects that are now the norm. If proper capital budgeting were utilized throughout, it would become quickly apparent that in many cases integrated RE solutions for buildings have superior long-term economics, and PACE financing is a readily available vehicle to address the heavy up-front capital investment required for these projects. Simply put, every RE component we can retrofit in a building comes with a lifetime of no energy bills equivalent to the amount of energy it provides.
In the winter of 2014 New Yorkers paid the price for the massive shift to natural gas. Electricity in January 2012 was 7 cents/kWh (ConEd), in 2013 it was 13 cents and in 2014 it was 22 cents. Winter normally had low electric rates, now it has some of the highest rates of the year. New York City has become massively, recklessly and unnecessarily dependent on a single fuel: natural gas. Building resilience has been made infinitely worse as a result, while at the same time we're spending money on improving building resilience. The single biggest thing we could do for building resilience is to stop converting buildings to natural gas, and encourage them to switch to renewable energy instead.

It's all economics and finance

The problem is not technology, there are more options every single day, The big things that are holding us back are practicing proper economic and financial analysis, to understand how rewarding RE retrofits really are. Thirty years worth of free energy will beat out 15-25% energy savings in most projects, especially if there are integration opportunities that produce legitimate engineering synergies which compound the returns from individual technologies. That geothermal heat pump combined with a wind turbine, or solar PV, becomes an energy harvesting system, and hot water storage tanks are cheaper and more environmentally friendly than batteries.
The primary importance of economics and finance is driven home forcefully by the fact that the 2014 Draft New York State Energy Plan cites the inroads of solar PV on Long Island as a success.  This is a success that is driven by Asset Backed Lending/Leasing based on marginal energy savings, and achieves shallow results, compared to what could be done if financial analysis were done right, and projects were engineered for the long-term. If property owners were to use proper capital budgeting techniques and did 30 year models, there is no way that 17% efficient solar PV should win over 98% efficient solar thermal installations. People are saving 10% on their electric bill, when with the same roof space they could do central HVAC and Domestic Hot Water for their entire property. This approach is more work, so it does not get done, but we as a society lose. Property owners who sign for these solar panels in most cases miss an opportunity for a major value enhancement to their properties.

C40Cities needs to prioritize renewable energy

I have submitted an Open Letter to C40Cities in hopes that this group will start addressing these issues, and not have the rest of the world repeat the mistakes that were made in New York. Appearances always deceive, and this case is no different: in the short run some reductions in GHG-reductions were realized, but because it all came from EE and from fuel switching, it merely extends the reign of fossil fuel and is therefore regressive with respect to climate risk in the long run.

Will New York become a leader in renewable energy?

Recently, I submitted an open letter to Governor Andrew Cuomo pertaining to the Green Bank. The Green Bank initiative could be coming at the right time for Mayor de Blasio, who has an interesting challenge. To his eternal credit, Mayor Bloomberg got climate change and energy policy the attention it deserved, but some key programs have been counterproductive, even if that is not widely recognized as yet. I have documented these issues with an open letter to Mayor de Blasio. Further clues are in my letter to C40Cities. Clearly, there is a big opportunity for the de Blasio administration to change course with some of the programs that have us going backwards instead of forwards. The opportunity for New York City to become a leader in this area is certainly there. Our infrastructure lends itself to rapid progress, but it will require the necessary regulatory changes to enable such developments, for besides bad financial analysis, regulatory hurdles are the principal brake on a breakthrough to clean energy.

Conclusion: Lasting Reductions in GHG-emissions from Renewable Energy

It is time to break the stranglehold of the fossil fuel era by pursuing renewable energy breakthroughs that are well within reach, but often ignored, because EE seemed "cheaper" and "easier." Heretofore, we did not realize that the short-term reductions in GHG-emissions from Energy Efficiency would ensure long-term losses. Therefore, the time has now come to focus on creating the breakthroughs in renewable energy with projects that achieve in excess of 50% reductions in GHG-emissions, and New York City can certainly become a leader in the context of the C40Cities, much to the benefit of its citizens.

Tuesday, January 28, 2014

Geothermal Heat Pumps Strategic Renewable for NYC

It is time to revisit geothermal heat pumps, and the battle of renewable energy versus energy efficiency. It has been noted with some regularity on this blog that NYC Clean Heat, and its comrade in arms the NYSERDA MPP are destroying real estate values in NYC, and not contributing much to reducing GHG reductions. I was an early advocate for geothermal heat pumps as the single most strategic renewable technology for energy retrofits in NYC buildings, and in April of 2013, then Mayor Bloomberg finally commissioned a serious study of geothermal energy for New York.  We had been advocates (with my consulting firm DaBX) since 2011 at least in our PlaNYC2020 report, and then hurricane Sandy did its bit to promote geothermal heat pumps. It is time now to demonstrate why not only does geothermal have "certain advantages," but is actually the single most important strategic renewable energy technology in the city.

Multi-family Buildings and Geothermal Heat Pumps

In general, if you are looking at any building, energy that you can generate on-site with renewable energy technology (Site Derived Renewable Energy, or SDRE) has numerous advantages. Most importantly, financially, if you analyze long-term (say 30 years) cash flows, thirty years of no cost energy often beats out the "savings" of 15-25% that are achieved by most energy efficiency overhauls. This pays for the heavy capital commitment up front.
  1. The first advantage is that you have no transportation losses.
  2. A second efficiency factor is that because there are no transportation losses, you can often save the conversion to electricity and pure thermal technologies win the day, because heating and cooling are the larger part of the energy budget, often 75%.
  3. On top of that, if you are operating with pure process heat, you have a pretty economical way of storing that either at high temperature (i.e. process heat from solar thermal), or as pre-heated hot water (from geothermal).
A geothermal heat pump is 400% efficient: for every joule of energy it uses (electricity), it returns 4. To take the simplest application in a building, for Domestic Hot Water (DHW), it was traditionally provided by a coil in the boiler, and the efficiency of such systems is typically in the range of 45-75%, in particular because those boilers were oversized relative to the need for hot water, and the need for hot water is year round.

Why the NYSERDA MPP marginalizes Renewable Energy (RE)

The NYSERDA MPP is built on a set of mistaken assumptions and foolish economics. It bundles a set of energy efficiency programs and incentivizes the building owner to deliver efficiency retrofits that score above (currently) 15% gain. It all but marginalizes renewable energy. It all results in owners trying to find the cheapest way to qualify for the incentives, and technologies are selected based on their marginal energy savings, just to get the incentives, in terms of advantaged financing etc. The program focuses on energy efficiency (EE), which always yields high returns at first,  but suffers diminishing returns later, and it is biased against renewable energy (RE) projects, which are capital-intensive at first, but come with a "long tail" of free energy.

The Math of Geothermal Heat Pumps

Here is the typical math for a geothermal heat pump in the DHW application - based on the assumption that the prices for the BTU inputs (oil, gas, electric) are all the same:
  1. Old situation: DHW from a coil in the boiler - oil/steam, usually 60% efficient (between 45-75%)
  2. New situation: DHW from geothermal heat pump (electric, 400% efficient), and natural gas secondary heat cum backup at 95% efficient, in about 70/30 proportions, so that the combined efficiency is 0.7*400+.3*.95 =280%+29%= 309% efficient.
  3. Let's round it off: 60% efficient vs 300% efficient
  4. Therefore, if the Btu pricing was all the same that would be the comparison, meaning in case OLD our marginal energy cost is 1.67x the Btu demand, and in case NEW it is 0.33x the Btu demand. In other words the marginal Btu input of the new system is ca 20% of what it would be under the old system.
  5. In real life this picture is then complicated by the pricing differences between oil/gas/electric,  but the point is clear, the innate efficiency of the solution is staggering.
  6. We should emphasize again, if we can generate any of our own electricity, with wind energy or solar PV, we can store it as pre-heated hot water, and get a higher return than selling it back to the utility.

Geothermal Heat Pumps: The Math of Effective Btus

Again, this beautiful equation will evidently have different outcomes depending on the actual pricing of the different energy sources.
  1. We were buying oil to heat the hot water, and the Btu value of #6 fuel is approximately 153,000 Btu per gallon. In the winter of 2014, in NYC, a gallon of #6 goes for $4.00, therefore, the cost per 1000 Btu is 2.61 cents.
  2. We are substituting this with electricity, which in the winter of 2014 in NYC, goes for about $0.25 per KwH, and the thermal value of a kWh is about  3,214 Btu. The cost per 1000 Btu therefore is ca. 7.78 cents; and with natural gas as a secondary fuel, which goes for about $1.25 per therm (100,000 Btu) and therefore costs ca 1.25 cents per 1000 Btu.
  3. For argument's sake, we needed 1,000,000 Btus for a given quantity of DHW, and the comparison now becomes: Old style (oil/steam): 1.67 x $0.0261 x 1000 = $43.59, and New style (geothermal plus gas): (0.7 x 7,78 x .25 + 0.3 x 1.25/.95) = 1.36 + 0.39 = 1.75 cents per 1000 Btu, or $17.50 for 1,000,000 Btu.
  4. Now, if we can generate some of that electricity ourselves with a wind turbine or with solar PV, we have the benefit of storage, which gives us a higher return than selling it back to the grid, and we are compounding our savings.
  5. In short, most building owners got taken to the cleaners when they invested lots of money in converting to natural gas, and made some small savings and efficiency improvements, but long-term they are still at the whim of energy prices. Their buildings have become LESS resilient. With DHW being 30-50% of Btu requirements in the typical apartment building, the geothermal solution would be a hands down winner, and perhaps a first step towards a mostly renewable heating and cooling solution...
  6. From the standpoint of clean energy and reducing GHG emissions, we are now servicing 70% of this Btu requirement (DHW) with electrically driven geothermal heat pumps, with 400% efficiency. In short, 75% of the 70% is GHG-free, representing over 50% of this requirement is now free of GHG-emissions.

What really happened...

The conversion to natural gas under the NYC Clean Heat program, combined with the NYSERDA MPP has been neutral event for GHG-emissions because, while gas burns cleaner, the production and transportation losses of methane make it about as bad as coal for overall air quality, although within city limits there would be some reduction of smog.
Only very few buildings made the conversion to geothermal hot water systems, and when they did, these systems were most often wrongly designed, as just water heaters, and not with a view to pre-engineering whole building energy solutions, in which boilers might eventually be replaced with a solar thermal plant, at most with only a simple boiler for backup.
In most cases, conversions were from oil to gas, which reduced building resiliency, for we are now in a city that is wholly dependent on a single fuel, and if you watched the news tonight, one pipeline explosion could cause a tremendous amount of havoc, as they are finding out in the Mid West.

Conclusion

Energy efficiency programs mean that building owners are paying for making energy from the grid more economical, instead of investing in their properties and generating their own energy with (mostly) thermal technologies. Though finally geothermal heat pumps seem to be getting some more recognition, it is clear again that energy efficiency gets prioritized by current programs at the expense of renewable energy, and ultimately to the financial detriment of building owners.