Showing posts with label sustainability. Show all posts
Showing posts with label sustainability. Show all posts

Monday, October 8, 2018

Why is Urban Sustainability so Hard? The Trap of the Sanitary City


A few months ago, I was having a lively discussion with some serious and dedicated undergraduates at a university I was visiting.  The fact that they were disappointed with their training in sustainability came up -- They felt they weren't being told how to practice sustainability.  This provided an opportunity for interesting engaged discussion, and helped me clarify some of my own thoughts.  Here's what came up for me.  I'll frame these thoughts in the context of urban ecology, since that's where I usually think about sustainability.  In fact it is hard to think about sustainability in any kind of ecosystem without including urban connections.

There are two basic reasons for the difficulty.  Sustainability is technically complex, and sustainability, unlike traditional strategies of urban management, doesn't yet have a recipe.  Here I'm following a distinction between complicated and complex (Allen and Starr 1982).

Sustainability is Technically Complex

Sustainability was first introduced in the 1970s.  But its most famous articulation is that of the Bruntland Commission in 1987.   This canonical definition emphasizes not only the need to consider the effect of current decisions on future generations and on people and places distant from the seat of decision making, but it also emphasizes that three things must be considered jointly: environmental integrity, economic vitality, and social equity.

Right off the bat, it is clear that sustainability is a multifaceted pursuit.  So it is likely to be complex because there are many components of each facet, and the facets will most likely interact.  If one acknowledges that sustainability tacitly assumes the subject to be a "human ecosystem," the reason for the resulting complexity of sustainability becomes clear.  Human ecosystems contain, at the minimum, biological components, physical environmental components, constructed components, technology, social structures, political processes, and economic resources.  And this long list is only indicative.  The interactions between and among components guarantee that efforts to assess and guide sustainability must involve all the components.  Non-linearities, multiple and scale-crossing feedbacks, and temporal lags would all lend considerable complexity to sustainability.

The Classic Sanitary Approach to Cities Is, in Contrast, Complicated

Contrast the complexity of sustainability to the way that cities have mostly been considered.  Most cities in areas that have experienced a history of industrialization can now be called "sanitary cities" (Melosi 2000).  The rise of the industrial city, especially when powered by coal, was a polluted affair.  Acidic and particle-laden smoke from factories and home fires made the air a "foul and pestilent congregation of vapours," to quote Shakespeare (Hamlet Act II, Scene 2).  The concentration of so many people in new settlements hurriedly built to house the new industrial workers who flocked from the countryside, led to fecal pollution of streams and even in many cases well water.  The industrial cities on Europe and North America, although desirable to waves of new migrants due to economic opportunity and intellectual and other freedoms, were clearly bad for people's health.  Bouts of mortality from waterborne diseases characterized these cities, and as late as the 1950s, significant mortality resulted from the "killer smogs" in some cities.

From the waste and disease of these industrial behemoths a new model of the city emerged.  Called by Martin Melosi (2000) "the sanitary city," this city model involved new ways of laying out cities and the development of infrastructure to provide clean water and convey sewage away from the city, for example.  In addition, the sanitary city model required new forms of governance, new modes of financing infrastructure, and new zoning regulations aimed at reducing hazards and promoting health.  In some cities, these structures began to emerge in the mid to late 1800s, while in other cities of the Global North, the physical and institutional structures did not emerge until the early 20th century.  In the United States, the efforts to clean up both urban and non-urban environments continued through the passage of the Clean Water Act in 1972, and the Clean Air Act in 1970.

Sanitary cities are governed through various departments charged with generating and maintaining the key infrastructure, or managing the solid and water-borne waste flows so that people were usually separated from the most noxious threats.  "Late" Sanitary Era development changed the strategy from shunting wastes "away" from the city, or at least away from districts inhabited by the wealthy and empowered, to reducing and treating wastes.  The ethical attention to populations and locations downstream and downwind was an important development in the sanitary city strategy, one that recognized the integration of urban areas with larger regional, and in the case of air pollution, continental-scale areas.

Constraints of the Sanitary City

The sanitary city strategy can be considered a success.  Sanitary cities are not the killers that the smoke shrouded, sewage drenched killers that Charles Dickens novelized.  But when compared with the more comprehensive strategy of sustainability, the sanitary city has some real shortcomings.  Some of these are in fact problematic legacies that must be overcome.  In the language of resilience theory, a sanitary city can harbor "rigidity traps" that hamper the transition to sustainability.  Here are some examples:

  • Sanitary cities are governed from the top down, with resources provided by public funds.  Shortfalls in city funding can impair the functioning and maintenance of the massive physical infrastructure required for sanitation.  The sustainable city may benefit from alternative funding structures.

  • Sanitary cities are managed by licensed specialists who are responsible to specific, issue oriented departments.  For example, drinking water, sewage, planning, justice, finance, housing, may each be managed by different departments or bureaus.  The sustainable city requires that all structures and functions in an urban place be thought of and managed as a system, not a series of loosely connected administrative units.

  • The sanitary city may be seen as a tool to preserve the health and productivity of an industrial work force.  The sustainable city must adopt a stance of environmental and social equity, rather than be driven by the economic interests of a wealthy elite.
Other contrasts can be drawn between the sanitary city and the sustainable city models (Grove 2010; Pickett et al 2013).  However, this short list points out that there are key differences between the two.

New Recipes for Sustainable Urban Transformation

To return to the question of why it is hard to learn the sustainable city, much less actually promote sustainable trajectories in real cities, another point must be made.  Urbanists, politicians, planners, designers, management professions, and even residents of cities, have had something on the order of 150 years to visualize, develop, and improve the sanitary city model.  Authors such as Graham and Marvin (2001) and Gandy (2003) have explained in depth the complicated nature of the sanitary city, and the long time it took to develop and deploy the physical, political, and social structures needed to build and operate it.  Yet, for many of us "urban/suburban fish" in the Global North, the sanitary city is the "water we swim in."  It hardly elicits a second thought.  We don't have to be taught what it means to run it.  We may be troubled by environmental injustices within it, or its growing susceptibility to climate change, or the buffeting by shifting global economic investment.  But we fundamentally understand what kind of thing and experience a sanitary city is.

Not so the sustainable city.  Those who are committed to the future of cities are in the process of creating a new model -- a new recipe -- for cities.   The recipe for sustainability must facilitate the internal environmental integrity, the regional effects, the social livabilities and equitability, and of course the hoped for economic productivity of urban places.  And this recipe hasn't had long to mature.  The fact that sustainability requires input from a diversity of residents, citizens, and officials makes the initial visioning process difficult, yet crucial.  The fact that sustainability governance in many cases has to be built on top of existing legal structures, and indeed, to compensate for the fragmented management of what should be dealt with as an integrated system, adds its own kind of complexity.  But, from an ecological perspective, perhaps the biggest hurdle facing urban sustainability is beginning to see cities as hybrid systems -- having inextricably linked biological and social-economic features.  The recipe can't just deal with ingredients as independent parts.

It is no wonder that learning and practicing sustainability is so difficult.  But the students who today are struggling mightily with what sustainability is, how to apply that thinking to the hobbled sanitary urban systems they may have inherited, and how to make trajectories toward sustainability in and outside of cities the norm, are the folks who will ultimately be able to say: "This is the new post-sanitary model of urban systems, this is how the sustainable city works, this is how you apply the model to cities that are brand new or the large number of cities in the Global South and East that haven't even had an industrial and sanitary phase, and this is how you structure governance networks to operate it."  One day, the sooner the better, the Sustainable City models will be off the shelf recipes with high altitude and tropical variants, and suggestions for culturally different flavors.

Bon appetit!

Steward T.A. Pickett

Background Publications.

Allen, T.F.H. and T.B. Starr. 1982. Hierarchy: Perspectives for Ecological Complexity. University of Chicago Press, Chicago.
Cadenasso, M. L., S. T. A. Pickett, and J. M. Grove. 2006. Dimensions of ecosystem complexity: Heterogeneity, connectivity, and history. Ecological Complexity 3:1–12.

Childers, D. L., M. L. Cadenasso, J. M. Grove, V. Marshall, B. McGrath, and S. T. A. Pickett. 2015. An Ecology for Cities: A Transformational Nexus of Design and Ecology to Advance Climate Change Resilience and Urban Sustainability. Sustainability 7:3774–3791.

Gandy, M. 2003. Concrete and clay: reworking nature in New York City. MIT Press, Cambridge.

Graham, S., and S. Marvin. 2001. Splintering urbanism: networked infrastructures, technological mobilities and the urban condition. Routledge, New York.

Grove, J.M. 2010. Cities: Managing Densely Settled Social–Ecological Systems. Pp 281-294 In F. Stuart Chapin, III, Gary P. Kofinas and Carl Folke (eds.) Principles of Ecosystem Stewardship Resilience-Based Natural Resource Management in a Changing World. Springer, New York.
 
Melosi, M. V. 2000. The Sanitary City: Environmental Services in Urban America from Colonial Times to the Present. University of Pittsburgh Press, Pittsburgh.

Pickett, S. T. A., C. G. Boone, B. P. McGrath, M. L. Cadenasso, D. L. Childers, L. A. Ogden, M. McHale, and J. M. Grove. 2013. Ecological science and transformation to the sustainable city. Cities 32, Supplement 1:S10–S20.

Monday, November 6, 2017

Outcomes of an Urban Sustainability Research Network


From 2011 through 2017, the National Science Foundation (NSF) supported a collaborative research project on "Urban Sustainability: Research Coordination and Synthesis for a Transformative Future."  This project was jointly organized and directed by the Baltimore Ecosystem Study LTER and the Central Arizona Phoenix LTER.  Prof. Daniel L. Childers and I were Co-Directors of the project. 

The text here is the "plain language" public outcomes report as submitted to the Research.gov website.  We hope it gives you some sense of how BES and its partners are helping to promote the understanding and application of the popular and important idea of sustainability.  The report is divided into the two sections required by the National Science Foundation -- Intellectual Merit and Broader Impacts.

Intellectual Merit

The Urban Sustainability Research Coordination Network (RCN) was designed to improve the understanding of urban sustainability and to better position ecologists to interact with policy makers and managers concerned with sustainability in cities, suburbs, and urban regions.  It was important to focus on urban areas because sustainability research and practice had mainly focused on natural resources, rural systems, or conservation.  Because urban systems are becoming ever more important in the United States and around the world, improving the understanding of urban sustainability is a crucial need.  Intentionally limited to working with existing data, the Urban Sustainability RCN had four main objectives: 1) to improve the availability of knowledge about the sustainability of urban systems; 2) to generate conceptual frameworks that unify the crucial disciplines needed to understand and facilitate urban sustainability; 3) to identify research needs to enhance the future understanding and application of urban sustainability; and 4) to build a diverse network of sustainability researchers and practitioners. 

This RCN began with 37 participants from the United States and 4 other countries.  The Network grew to engage 80 researchers, educators, and practitioners from 50 cities in 20 countries.  This extensive network brought together a large amount of data, broad experience with cities of different sizes and types, and the insights of various cultural and professional backgrounds.  The large size of the Network helped to spread the insights of the intellectual integration very widely around the nation and globe.  The growth of the Network also reflected the widespread interest in the topic.

The RCN convened three meetings of the entire group over the course of the grant, plus smaller thematically oriented meetings.  The themes evolved during the project based on the "all hands" meetings, and the activities of the working groups.  Ultimately, the RCN addressed these themes: 1) conceptual models for urban sustainability; 2) the influence of different formal and informal governance structures on urban sustainability; 3) the role of interdisciplinary insights and contributions of the humanities to improved urban sustainability;  4) how ecologically informed urban design can improve sustainability through attention to adaptive resilience; 5) how urban metabolism, that is, the control of nutrient and energy flow, contributes to  sustainability; and 6) the use of scenario planning as a tool to improve sustainable urban futures.  

The RCN increased understanding of the social, economic, and environmental triggers that have led cities to crisis and transition, including discriminating the different scales on which the triggers act.  This information has been especially useful to reinforcing partnerships with urban sustainability officers.  The RCN also employed the idea that urban areas are complex systems, in which triggers affect the adaptive mechanisms that lead toward or away from sustainability.   Finally, the RCN employed the interactions between water resources and energy resources to understand important trade-offs that can affect the ability of cities to transition to sustainability.

Broader Impacts

Several specific outcomes illustrate the practical success of this RCN.  One is its serving as a seed bed for the Urban Resilience to Extremes Sustainability Research Network (UREx SRN).  This multi-institutional program of research and application, headquartered at Arizona State University, uses several of the conceptual advances generated by our RCN as the stimulus for new data collection.   A second major project that emerged from this RCN was funded by Future Earth to investigate sustainability from the perspective of urban phosphorus dynamics.  Phosphorus is a significant limiting nutrient in ecosystems and a can be a serious pollutant of surface waters.  A third outcome is cementing interactions with the Research Center for Eco-Environmental Sciences of the Chinese Academy of Sciences, to help develop sustainability research in the context of the rapid urbanization now underway in China and elsewhere in developing countries.  Interchanges with Network members in South Africa and in Latin America ensure that the insights and needs of very different kinds of urban change have been accounted for in our concepts and in our communication with urban design, planning, and management practitioners.  An additional important outcome of the RCN was better linking engineering and urban design perspectives with the important biological basis of sustainability in urban systems. 

The RCN trained several students and early career scientists.  A total of 20 post-doctoral associates participated as full members of the RCN.  The RCN employed Post-doctoral associate Meredith Garten for 2.5 years. She is now a faculty member at Ohio University.  Chris Sanchez, Laboratory Manager for PI Childers, assisted with logistics for the RCN after Dr. Gartin’s departure; he is now a doctoral student at Arizona State University.  Nicholas Weller, also a doctoral student with Childers, won an NSF EASPI grant to assist with field work on the urban sustainability pilot project funded by the CAS in Beijing in Summer 2016.  The interactions with many sustainability practitioners are ongoing.  So the network established by this RCN project, continues to advance the conceptual understanding and pathways for application of sustainability.

Publications

Some of the key or recent publications produced by the members and working groups of the RCN are these:

Books

Grove, M., M.L. Cadenasso, S.T.A. Pickett, G. Machlis, and W.R. Burch, Jr (2015). The Baltimore School of Urban Ecology: Space, Scale, and Time for the Study of Cities  Yale University Press.  New Haven.  ISBN: 978-0-300-10113-3

Steiner, F. R., G. F. Thompson, and A. Carbonell, editors. (2016). Nature and cities: the ecological imperative in urban design and planning  The Lincoln Institute of Land Policy.  Cambridge, MA. 

Book Chapters

Cadenasso, M.L. and S.T.A. Pickett (2018). Situating sustainability from an ecological science perspective: Ecosystem services, resilience, and environmental justice. Situating Sustainability: Sciences/Humanities/Societies, Scales and Social Justice.  Sze, Julie, Editor.  New York University Press.  New York.  ISBN: 9781479870349, in press.

McPhearson, T. and K. Wijsman (2017). Transitioning complex urban systems: The importance of urban ecology for sustainability in New York City. P 65, in Urban Sustainability Transitions  Frantzeskaki, N, V. Castan Broto, L Coenen, and D. Loorbach.  Springer.  New York.  ISBN: 978-1-315-22838-9.

Steiner, F.R. (2016). Preface/Vorwort. Energy x Change: München und Austin: regionale Zentren nachhaltiger Entwicklung/Munich and Austin regional centers of sustainable innovation  Petra Liedl.  Beuth Verlag GmbH.  Berlin.  pg 8.

Steiner, FR, and D Pieranunzi (2016). Sites v2. Ecological Urbanism Revised ed. Mohsen Mostafari and Gareth Doherty.  Lars Müller Publishers.  Zürich.  pg. 514.

Papers in Journals

Bois, P, D.L. Childers, T. Corlouer, J. Laurent, A. Massicot, C. Sanchez, and A. Wanko. (2017). Confirming a plant-mediated "biological tide" in an aridland constructed treatment wetland.  Ecosphere. 8 (3),  e01756. 

Bunn, D., B. Büscher, M.L. Cadenasso, D.L. Childers, M. McHale, S.T.A. Pickett, L. Rivers, L. Swemmer. Golden Wildebeest Days: South Africa’s Wild Life Economy from Apartheid to Neolibralism.  Environment and Planning D: Society and Space, submitted.   

Childers, Daniel, M.L. Cadenasso, J.Morgan Grove, Victoria Marshall, Brian McGrath, S.T.A. Pickett (2015). An Ecology for Cities: A Transformational Nexus of Design and Ecology to Advance Climate Change Resilience and Urban Sustainability.  Sustainability. 7  3774. DOI: 10.3390/su7043774

Grimm, N.B., S.T.A. Pickett, R.L. Hale, and M.L. Cadenasso (2016). Does the Ecological Concept of Disturbance Have Utility in Urban Social-Ecological-Technological Systems?.  Ecosystem Health and Sustainability. 3 (1),  e01255. DOI: 10.1002/ehs2.1255

Groffman, P.M., M.L. Cadenasso, J. Cavender-Bares, D.L. Childers, N.B. Grimm, J.M. Grove, S.E. Hobbie, L.R. Hutyra, G.D. Jenerette, T. McPhearson, D.E. Pataki, S.T.A. Pickett, R.V. Pouyat, E. Rosi-Marshall, and B.L. Ruddell (2017). Moving toward a new urban system science.  Ecosystems. 20. DOI: 10.1007/s10021-016-0053-4

Hersperger, A.M., C Ioja, F. Steiner, and C.A. Tudor. (2015). Comprehensive consideration of conflicts in the land-use planning process: a conceptual contribution.  Carpathian Journal of Earth and Environmental Sciences. 10 (4). 

McHale, Melissa R., Scott M. Beck, Steward T.A. Pickett, Daniel L. Childers, Mary L. Cadenasso, Louie Rivers III, Louise Swemmer, Liesel Ebersohn, Wayne Twine, David Bunn (). Democratization of ecosystem services – A radically revised framework for assessing nature’s benefits.  Ecosystem Health and Sustainability, under revision.

McHale, Melissa R., Steward TA Pickett, Olga Barbosa, David N Bunn, Mary L Cadenasso, Dan L Childers, Meredith Gartin, George Hess, David M Iwaniec, Timon McPhearson, M Nils Peterson, Alexandria K Poole, Louie Rivers III, Shade T Shutters, and Weiqi Zhou (2015). A New Global Urban Realm: Complex, Connected, Diffuse, and Diverse Socio-Ecological Systems.  Sustainability. 7  5211. DOI: 10.3390/su70566

McPhearson, Timon, S.T.A. Pickett, N. Grimm, J. Niemelä, M. Alberti, T. Elmqvist, C. Weber, J. Breuste, D. Haase, and S. Qureshi (2016). Advancing Urban Ecology Towards a Science of Cities.  BioScience.   DOI: 10.1093/biosci/biw002

Metson, G.S., S.M. Powers, R. Hale, J. Sayles, G. Oberg, G.K, MacDonald, Y. Yuwayyama, N. Springer, A. Weatherley, K. Hondula, K. Jones, R.B. Chowdhury, A.H.W. Beusen, A.F. Bouwman. Socio-environmental assessment of phosphorus flows in the urban sanitation shain of diverse cities.  Regional Environmental Change, under review

Muñoz-Erickson, T.A., C. Miller, and T. Miller. (2017). How cities think: knowledge co-production for urban sustainability and resilience.  Forests. 8 (6) DOI: 10.3390/f8060203

Muñoz-Erickson, T.A., Lindsay K. Campbell, Daniel L. Childers, J. Morgan Grove, David M. Iwaniec, Steward T. A. Pickett, Michele Romolini, Erika S. Svendsen. (2016). Demystifying governance and its role in transitions in urban social-ecological systems.  Ecosphere. 7 (11),  e01564. DOI: 10.1002/ecs2.1564

Pickett, S.T.A. and Weiqi Zhou (2015). Global Urbanization as a Shifting Context for Applying Ecological Science toward the Sustainable City.  Ecosystem Health and Sustainability. 1  art5. DOI: 10.1890/EHS14-0014.1

Pickett, S.T.A., M.L. Cadenasso, Emma J. Rosi-Marshall, Kenneth T. Belt, Peter M. Groffman, J. Morgan Grove, Elena G. Irwin, Sujay S. Kaushal, Shannon L. LaDeau, Charles H. Nilon, Christopher M. Swan, Paige S. Warren. (2017). Dynamic Heterogeneity: A Framework to Promote Integration and Hypothesis Generation in Urban Systems..  Urban Ecosystems. 20 (1), DOI: 10.1007/s11252-016-0574-9

Pickett, S.T.A., M.L. Cadenasso (2017). How many principles of urban ecology are there?  Landscape Ecology.   DOI: 10.1007/s10980-017-0492-0

Pickett, S.T.A., M.L. Cadenasso, Daniel Childers, Mark McDonnell, Weiqi Zhou (2016). Evolution and future of urban ecological science: Ecology in, of, and for the city.  Ecosystem Health and Sustainability.  DOI: 10.1002/ehs2.1229

Pieranunzi, D., F.R. Steiner, and S. Rieff (2017). Advancing green infrastructure and ecosystem services through SITES.  Landscape Architecture Frontiers. 5 (1), 22. DOI: 10.15302/J-LAF-20170103

Romolini, M., R.P. Bixler, and J.M. Grove. (2016). A social-ecological framework for urban strewarship network research to promote sustainable and resilient cities.  Sustainability. 8:956. DOI: 10.3390/su8090956

Sanchez, CA; Childers, DL; Turnbull, L; Upham, RF; Weller, N (2016). Aridland constructed treatment wetlands II: Plant mediation of surface hydrology enhances nitrogen removal.  Ecological Engineering. 97  658. DOI: 10.1016/j.ecoleng.2016.01.002

Shutters, S.T. (2016). Interdependent Preferences and Prospects for Global Sustainability.  International Journal of Sustainability Policy and Practice. 12 (3),  DOI: 10.18848/2325-1166/CGP

Steiner, F.R. (2016). Opportunities for Urban Ecology in Community and Regional Planning.  Journal of Urban Ecology. 2 (1), DOI: 10.1093/jue/juv004

Steiner, F.R. (2016). The application of ecological knowledge requires a pursuit of wisdom.  Landscape and Urban Planning. 155:108.

Steiner, FR, AW Shearer (2016). Geodesign-Changing the World, Changing Design.  Landscape and Urban Planning. 156:1.
 
Zhou, Weiqi, S.T.A. Pickett, and M.L. Cadenasso (2017). Shifting concepts of urban spatial heterogeneity and their implications for sustainability.  Landscape Ecology. 32 (1),  DOI: 10.1007/s10980-016-0432-4

Steward T.A. Pickett, Director Emeritus

Sunday, August 30, 2015

American Urban Ecology Comes of Age



The 100th Anniversary meeting of the Ecological Society of America was held in Baltimore this year.  Some 4,600 members of the society gathered to share scientific insights, hold workshops on better connecting the science to the larger world, and promoting the diversity of its own community.  In addition there were field trips to both urban and non-urban sites, and a celebration at the Union Craft Brewery.  

Many attendees remarked to me that urban ecological science seemed to be particularly  well represented at the meeting.  An news article in Nature (http://www.nature.com/news/ecologists-embrace-their-urban-side-1.18237) brought several of these impressions together.  The article estimates that some 10% of the activities and presentations at the meeting had something to do with urban ecology.  This is a far cry from the early days of BES when there were but one or two presentations, and very often they were isolated in the last few hours of the meeting, after the numbers of attendees had begun to dwindle.  Notable was a well attended symposium on the first afternoon of the meeting which highlighted Baltimore and other urban ecological research.

Another notable role of urban perspectives was the ecological urban design project led by Alex Felson of Yale's Schools of Architecture and of Forestry and Environmental Studies.  The Society's Earth Stewardship Initiative provided a venue for this series of workshops, design charettes, and studios involving students from several architecture schools along with Baltimore secondary school students.  Several communities and the city Office of Sustainability had suggested opportunities for ecological urban design and these were the focus of creative, socially, and ecologically well founded designs that emerged during the week.  The fruits of these efforts were shared with the city and communities toward the end of the week.

Another jewel in the urban crown at the ESA meeting was the presentation by Beth Strommen, Director of the Baltimore City Office of Sustainability.  At a lunch honoring the members of the Society's Rapid Response Team, Beth described the city's sustainability plan, initiated in 2009, and subsequent specific projects and milestones that she and her colleagues have been working on in close collaboration with other city agencies, communities, and environmental non-governmental organizations.  The climate action plan, the forest canopy plan, the urban agriculture initiative, and the disaster preparedness plans are an impressive suite of activities aimed at improving Baltimore's environment and the well being of its residence.   The team left the lunch convinced that Baltimore is in fact one of the nations most successful sustainably oriented cities.  

All of these activities clearly symbolize the position of urban ecology as a component of the discipline's mainstream in the United States.  It was very fitting that this acknowledgement coincided with the arrival of ESA in Baltimore.