Smart Eco-City Strategies and Solutions for Sustainability: The Cases of Royal Seaport, Stockholm, and Western Harbor, Malmö, Sweden
Abstract
:1. Introduction
2. Eco-City as an Approach to Sustainable Cities
2.1. Definitions
2.2. Eco-City Models
2.3. Eco-City Ideals
2.4. Research Gaps and Issues
3. Research Methodology
3.1. Case Study Inquiry
3.2. Descriptive Case Study Characteristics
- Using a narrative framework that focuses on the eco-city as a real-world problem and provides essential facts about it, including relevant background information.
- Introducing the reader to key concepts, strategies, and policies relevant to the problem under investigation.
- Explaining the actual solutions in terms of plans, the processes of implementing them, and the outcomes.
- Offering analysis and evaluation of the chosen solutions and related issues, including strengths, weaknesses, tradeoffs, and lessons learned.
3.3. Selection Criteria, Unit of Analysis, and Data Collection and Analytical Methods
- Review of city data (i.e., master plans, programs, policy documents, and project descriptions, etc.) and the scientific literature that is related to the eco-city model. The outcomes of this process are numerous themes that are associated with this model. It is important to obtain a comprehensive understanding of the content of the documents and scientific literature and to be familiarized with all aspects of the data. This step provides the foundation for the subsequent analysis.
- Pattern recognition (searching for themes) entails the ability to see patterns in seemingly random information. The aim is to note major patterns within the result of the first step. This second step looks for similarities within the sample and codes the results by concepts and themes. Coding involves identifying passages of text that are linked by a common theme, indexing the text into categories and therefore establishing a framework of thematic ideas about it. In this step, the preliminary codes identified are the features of the data that appear interesting and meaningful, and the relevant data extracts are sorted according to overarching themes. It is important to allude to the relationship between codes and themes.
- Reviewing and naming themes are about combining, separating, refining, or discarding initial themes, as well as naming them, in accordance with the three dimensions of sustainability as related to the eco-city model. Data within themes should cohere together meaningfully and be clear and identifiable in terms of the distinction between them. A thematic ‘map’ is generated from this step. Subsequently, theme names are provided with clear working definitions capturing the essence of each theme.
- Producing the report involves transforming the analysis into an interpretable piece of writing by using vivid and compelling data extracts that relate to the themes, research question, and literature. The report must go beyond a mere description of the themes and portray an analysis supported with empirical evidence that addresses the research questions.
3.4. On the Case Study Cities and Districts
- To reduce CO2 emissions from 4.5 tonnes in 2008 to a level below 1.5 tonnes per inhabitant by 2020.
- To be fossil fuel free and climate + by 2030.
- To be adapted to a changed climate, i.e., increasing precipitation.
4. Results: The Core Eco-City Strategies and Solutions for Achieving Urban Sustainability
4.1. Environmental Sustainability
4.1.1. Sustainable Systems
- To use digitalization and new technologies to make it easier for residents and businesses to be environmentally friendly;
- To reduce energy consumption and carbon footprint;
- To provide sustainable solutions for modern transport;
- To use digitalization and new technologies to stimulate biological diversity and conservation;
- To produce goods and services in a resource efficient way with minimal environmental impact.
- BigBelly: Waste bins using solar power and packing trash automatically when needed, with notification of when they need emptying.
- Smart lighting: Sensor-controlled LED lighting for pedestrian and bicycle paths, self-controlled-LED street lights with preset lighting schedules, and remote-controlled lights.
- Green IT for reducing environmental impacts: Energy-efficient buildings (monitoring and optimization), transportation (intelligent transport solutions), and digital meetings and mobile workings.
- (1)
- kilowatt-hours per square meter,
- (2)
- carbon dioxide equivalents per capita,
- (3)
- kilowatt-hours of primary energy per capita, and
- (4)
- share of renewables percentage.
- Sustainable long-term management of the district,
- Long-term monitoring of its metabolism,
- Silo thinking within the district administrations, and
- The transition from pilot to large-scale implementation.
4.1.2. Sustainable Transportation
- Walking and cycling,
- Public transport (metro, buses, tram, boats),
- Car pools (biogas and electric), and
- Private cars (biogas and electric).
4.1.3. Green Structure—Green and Water Areas
4.2. Economic Sustainability
4.2.1. Mixed Land Use and Attractiveness
4.2.2. Business Development
- An attractive, innovative and growing city, with the perspective of making an investment or establishing a business;
- A central node in a global network of successful cities;
- One of the best start-up scenes in the world;
- Develops and grows through entrepreneurship and intrapreneurship in digitalization and new technologies;
- Attracts talent and visitors, both international and national;
- Manages its public operations cost efficiently by making full use of digitalization and new technologies.
4.3. Social Sustainability
4.3.1. Physical Planning and Social Interaction
4.3.2. Social Cohesion
4.3.3. Citizen Participation
4.3.4. Socio-Economic and Spatial Segregation
5. Discussion
6. Conclusions
- Sustainable energy systems
- Local production of electricity—solar energy;
- 100% locally renewable energy—sun, wind, and water;
- Bio-fueled CHP system;
- Passive houses;
- A large-scale smart grid;
- Behavioral change.
- Sustainable waste management
- Smart waste collecting system;
- Vacuum waste chutes system;
- Food waste disposers;
- Wastewater and sewage treatment system;
- Behavioral change.
- Sustainable materials
- Recycled and reused materials;
- High performance and resource-effective materials.
- Sustainable transportation
- Cycling and walking;
- Public transport (metro, buses, tram, etc.);
- Car pools (biogas and electric);
- Mobility management;
- Behavioral change.
- Greening and ecological diversity
- Multi-functional green structure for ecosystem services;
- Green factor planning tools.
- Mixed land use
- Physical land use mix (horizontal/spread of facilities, vertical mix of uses, amenity, public space, etc.);
- Economic mix (business activity, production, consumption, etc.);
- Some aspects of social mix (housing, demography, lifestyles, visitors, etc.).
- Economic growth and business development
- Green-tech innovation;
- Green-tech production and export;
- R&D activities;
- Entrepreneurial and innovation-based startups;
- Industrial and technological investment;
- Job creation and skill development;
- Government, industry, and academia collaboration;
- International cooperation.
- Social equity
- Social integration;
- Flexible design of housing in terms of types and forms;
- Affordable housing by means of an efficient, careful process;
- Greater accessibility to facilities and services.
- The quality of life
- Meeting places for social interaction;
- Ready access to recreational and green areas;
- Natural surveillance: safety and security;
- Housing design enabling residents to remain throughout all stages of life.
- Social cohesion
- Citizen participation and consultation;
- Multi-stakeholder cooperation;
- Well-being of all inhabitants.
- At what stage of the planning process should environmental, economic, and social concerns introduced and even balanced, and what kind of measures are needed to have an effective integration of such concerns early on?
- To what extent can advanced technologies support joined-up planning, a form of integration which enables system-wide sustainability effects to be tracked, understood, and built into the very responses and designs characterizing the operations and functions of the eco-city district, especially in relation to energy, waste, transport, and utilities?
- What kind of advanced technologies are available and can be implemented to make the planning process dynamic based on constantly updated information on the operations and functions of the eco-city district?
- What is the potential of weaving intelligence functions into the fabric of the eco-city district in terms of its institutions to advance sustainability, optimize efficiency, strengthen resilience, improve equity, and enhance the quality of life for citizenry?
- To what extent can emerging technologies leverage the design strategies and the implementation and operation of other urban technologies associated with the eco-city district in ways that enhance and optimize its processes and practices and evaluate its contribution to sustainability?
Author Contributions
Funding
Conflicts of Interest
References
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Influencing Behavior, and Dialogue | A Physical Structure for Walking, Cycling, and Public Transport |
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Districts | Mixed Land Use Features |
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SRS | A key strategy for sustainable urban development underlying the sustainability program for SRS is ‘vibrant city’ (Stockholm City 2009) [65]. The program for SRS aims at a mix of housing, offices, shops, amenities, and public services and facilities combined with well-designed, varied public spaces—streets, parks, and squares—as important meeting places that create conditions for a lively atmosphere between the buildings [66]. It was planned that: ’Quayside walkways will be laid out along the port areas, with offices, restaurants, bars, and shops [in addition to conference centers, theaters, gyms, and hotels] helping to create a mixed urban development full of life and activity… The dynamic of the city will be reflected in the diversity of living accommodation and the range of amenities, culture, and entertainment. Housing, amenities, and public spaces will be distinguished by accessibility and modernity’ [65] (pp. 16, 18). |
Western Harbor | Western Harbor is ‘a district with a mixture of housing, services, industries, workplaces, education, and recreation. The district has a unique, attractive location with urban and natural features; it is within walking distance of the inner city, has good transport links.… By continuing to develop these qualities and building a mixed city, it will be possible to link Western Harbor to the central parts of Malmö’ [69] (p. 9). |
Districts | Attractiveness and Safety |
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SRS | A variety of spaces is planned in SRS—intense, peaceful, and quiet settings, and busy walkways (Stockholm City 2019) [66]. SRS entails ‘a diverse offering of homes and office space [that] will attract a multitude of inhabitants and businesses… Diversity leads to freedom of choice. People living in the district will be able to select welfare services to meet their needs and requirements, SRS will have space for everyone’ [65] (p. 23). The results achieved in 2017 show, according to the sustainability report for SRS [66,73], that 91% feel safe in SRS compared with an average of 71 percent for the City of Stockholm. The amalgam of land use forms a network that connects both internally and with surrounding areas, favoring of safety [66]. |
Western Harbor | One planner from Malmö Municipality said, ‘Greater diversity gives a district life that is attractive and creates a feeling of security’. Western Harbor strives to provide a safe district where people feel a sense of belonging and security, with access to services and public spaces and thus opportunities to meet. ‘The urban environment should offer natural meeting points and a well-balanced mix of housing, activities, education, service, and green areas. Human needs for a variety of sensory impressions like beauty, human proportion, nature, water, contact, and safety should be met’ [76], (p. 7). |
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Bibri, S.E.; Krogstie, J. Smart Eco-City Strategies and Solutions for Sustainability: The Cases of Royal Seaport, Stockholm, and Western Harbor, Malmö, Sweden. Urban Sci. 2020, 4, 11. https://doi.org/10.3390/urbansci4010011
Bibri SE, Krogstie J. Smart Eco-City Strategies and Solutions for Sustainability: The Cases of Royal Seaport, Stockholm, and Western Harbor, Malmö, Sweden. Urban Science. 2020; 4(1):11. https://doi.org/10.3390/urbansci4010011
Chicago/Turabian StyleBibri, Simon Elias, and John Krogstie. 2020. "Smart Eco-City Strategies and Solutions for Sustainability: The Cases of Royal Seaport, Stockholm, and Western Harbor, Malmö, Sweden" Urban Science 4, no. 1: 11. https://doi.org/10.3390/urbansci4010011