Ken

I understand your position, and I wasn't attempting to suggest you and your
co-authors were guilty of 'bad science'.  However, the problem with your
approach is that, in the absence of broader papers, it is not clear how
policy makers could react to the risks I've outlined.  The risk is that
'limited' papers, such as yours, could potentially give false hope to policy
makers, when 'abject screaming panic' is actually a more appropriate
response.

My suggestion is that we can approach this problem mathematically.  Instead
of modelling each factory, you look at the first, second and possibly third
differentials on per-capita emissons, and then combine them with population
figures to derive maximum transition rates for emissions.  The first
differential is the rate of technology implementation - equivalent to the
potential rate of decommissioning.  The second differential is the rate of
political/technological change - how quickly the social system is moving to
prefer one carbon intensity path or another, equivalent to the potential
rate of 'steer' onto a new, low carbon path. The third differential would (I
think) be related to the volatility of the political/technological process -
how suddenly or otherwise new solutions propagate.

This is all perhaps a little abstract, but it's a lot easier than counting
planning applications for car factories.  This will then give you a
somewhat-tolerable estimate of the political and technical intertias in the
system.  By reversing the observed accelerations, you can work out what a
realistic level of decommissioning or diversion of development may be
possible.

You can also approach the problem sociologically, but examining uptake rates
for previous energy technologies.  These will be a function of the price
differential, but the transition from industrial steam to industrial
electricity is a reasonable example, and from my relatively limited
knowledge of industrial history I reckon it was about 80yrs for the
transition to fully complete, based on the timescale of first application
(about 1890 to 1960).  If we take the first low-carbon technologies to be
wind turbines in about 1985, we can derive from that an end date of around
2060 for the global carbon economy - provided the renewable capacity is
capable of delivering the energy needs of the globe.  If we are to consider
another milestone and assume that we're about 10yrs away from commercially
available organic thin-film photovoltaics, we're probably looking at a date
of 2100 for a decarbonised world.  This is a very different approach, but
one which I believe has some historical credibility.  I'd suggest an S-curve
during this time, to model a technology transition which peaks at around 40
years into the process.  If you look at communications technologies, we're
probably on a shorter timescale, but it's conceivable that we're about half
way through the replacement of fixed phones with mobile phones at present.

I appreciate that this is possibly a little 'off topic', but I believe it is
worth considering as it addresses a key issue in geoengineering policy, and
that is whether it's currently Plan A or B.  My suggestion is that
geoengineering is now likely to be essential.  It is no longer a possible
reaction to potential political failure, but rather an inevitable need in
the face of insurmountable rates of political social and technological
change.

A

On 26 July 2011 11:09, Ken Caldeira <[email protected]> wrote:

> Not considering everything under the sun is not a problem with our paper,
> it is what makes a scientifically defensible quantification possible.
>
> We note in the paper that in quantifying future co2 emissions from existing
> co2-emitting devices, we are quantifying only a piece of infrastructural
> commitment.
>
> We started that paper thinking we would show that existing co2-emittig
> devices were enough to send us over 450 ppm and 2 c.  We never intended to
> present s realistic scenario.
>
> I believe that existing infrastructure that does not directly emit co2 (eg
> automobile factories), not to mention political inertia, are enough to push
> us beyond these levels (in the absence of dramatic political change and
> engineering effort).
>
> Sometimes, when writing scientific papers, it is better to answer a limited
> question well rather than answer a broader question poorly.
>
> Scientific papers are like statements in a discussion. We generally try to
> say the first word on a topic, not the last word.
>
> Insofar as different sources of commitment can be quantified in a
> technically defensible way, I encourage others to do so. If we think of a
> good way to do so; hopefully we will beat you to it.
>
> When i have access to my laptop, I will send a copy of the paper.
>
> Ken Caldeira
> [email protected]
> +1 650 704 7212
> http://dge.stanford.edu/labs/caldeiralab
>
> Sent from a limited-typing keyboard
>
> On Jul 26, 2011, at 11:25, Andrew Lockley <[email protected]>
> wrote:
>
> thanks for that.  I forwarded it.
>
> The Caldeira paper has the problems anticipated, ie that the
> political/construction/sociological trajectory isn't included.  There's no
> way China can stop it's emissions growth dead.  It's simply not going to
> happen.
>
> I couldn't see the other graph, it didn't come out very well.  I assume
> it's dt vs CO2e ppm.
>
> I maintain that the evidence supports SRM as plan A
>
> A
>
> On 26 July 2011 04:54, < <[email protected]>
> [email protected]> wrote:
>
>>  Andrew -  This is to ask you to forward the following to the geo list.  I
>> am sure it won't be successful from my computer These further provide detail
>> on the diagrams that a geo list member has asked for (and in the "Word"
>> attachment)
>>
>> List and Andrew
>>
>>    As a subscriber to (behind a pay-wall) Science magazine,  I was asked
>> if I could provide the graphs I was working with from the Davis-Caldeira
>> paper I commented on a few hours ago.  I think this should not violate any
>> copyright prohibitions - and might even sell more for the journal Science
>> (my favorite).
>>
>>   The necessary three data point-pairs are the right most in parts C and
>> D   (I couldn't find a way to remove A and B.).
>>
>>     These 3 point-pairs for the year 2060 can then be put in the (free)
>> material I referenced by Dr David Wasdell. - found at
>> <http://www.apollo-gaia.org/Climate_Sensitivity.htm>
>> http://www.apollo-gaia.org/Climate_Sensitivity.htm
>> .
>>      The second graph is taken from the attachment article by Dr. Wasdell
>> that you provided on 20 July.  This  is the best copy I could find/copy.  If
>> one rotates it CCW, one will find that the horizontal axis runs from 140 ppm
>> to 560 ppm with 280 ppm in the middle, plotted on a log base 2 scale.  The
>> three point - pairs will be found to lie to the left of the 440 ppm dotted
>> line and below the "Charney" diagonal - a region that Dr. Wasdell says
>> mis-reads the historical evidence.
>>
>>    I hope this is helpful.
>>
>> Ron
>>
>
>

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