Environmental Identities and the Sustainable City. The Green Roof Prospect for the Ecological Transition
Abstract
:1. Introduction
1.1. Disciplinary Issues. Valuation and Project
1.2. The House–City–Landscape System from a Green Perspective
- -
- valuation validates an “action” (a project option) with reference to some value attributes, the contents of the value function; from the perspective of valuation, the project needs to match some prefixed requirements;
- -
- the project aims at innovating functions, language and identity by preserving their consistency; the project creates a “surplus of shape” by recognizing and at the same time overcoming the usual rules; from the project perspective, valuation must explain and measure such a surplus.
1.3. Contents and Scopes
- the first, mainly descriptive, consists in the investigation of the historical and urban profile of the Borgata di Santa Lucia and, subsequently, in the systematic and orderly collection of data on the scale of the Building Unit (BU) and in the transformation of the data, through the construction of synthetic indices, into information units aimed at the definition of the valuation profile of each BU in relation to the operational purposes of the model application;
- the second, typically methodological, consists in the logical coordination of the different operational phases and in the definition of the calculation functions necessary to outline the intervention strategies, evaluate and compare them and choose the best one;
- the third, operational, involves the formation of the strategies in groups of 20, with each group formed based on one of five different approaches prefigured by implementing specific logical conditions; finally, all strategies were evaluated against the four value matrices whose terms of trade-off and convergence were indicated.
2. Materials
2.1. The “Borgata di Santa Lucia” in Syracuse
2.1.1. Historical Background and Urban Development
2.1.2. The Borgata Today
2.1.3. Rules: The Plan
- solar systems may only be installed on flat roofs or terraces and must not be visible from public spaces;
- heat pumps may only be installed in the building courtyards, exclusively on the ground floor, or in special technical rooms; the façade of the building must not in any way be used for the installation of motor bodies or cables.
2.1.4. The Building Fabric Critical Analysis: Denotation and Connotation
- Major Mansions
- Minor Mansions
- Typical Basic Buildings
- Dethatched Buildings
- High Rise Buildings
- Row Houses
- Block Buildings
2.2. Green Roof
2.2.1. Why Green
2.2.2. Rules: Green Roof
- extensive green roof: a system that uses plant species that are able to adapt and develop in the environmental conditions in which they are placed, thus requiring minimal maintenance;
- intensive green roof: a system using plant species able to adapt and develop in the environmental conditions in which they are placed, with the necessary medium for high intensity maintenance, depending on the plant species associations.
- Load-bearing element
- Watertight element
- Root protection element
- Mechanical protection element
- Draining layer
- Water storage layer
- Filter element
- Cultivation layer
- Vegetation layer
- Geometry: Standard UNI 8627-1:2019 defines two possible functional schemes of roofing systems, distinguishing between flat and pitched roofs. Three possible functional schemes are identified: horizontal roofs, characterized by a 1% pitch to ensure the effective drainage of rainwater; sub-horizontal roofs, with a pitch between 1% and 5%; pitched roofs, with a pitch greater than 5%. The cost of construction and maintenance increases as the pitch increases;
- Type of installation: Extensive green roofs are blankets that use plant species that can easily adapt to environmental conditions, with high reproduction efficiency and resistance to the water and thermal stresses to which they are exposed. They therefore require a low level of maintenance. On the other hand, the plant species used in intensive green roofs are characterized by organic, deeper layers of cultivation and therefore require a higher level of maintenance and a flat, horizontal layout;
- Accessibility/accessibility: this classification consists of 6 classes: roofing accessible for maintenance work only; roofing accessible for maintenance work pertaining to both functional layers and installed systems; roofing accessible to pedestrians (max kN/m2); roofing accessible to pedestrians and light vehicles (<2 t); roofing accessible to pedestrian and vehicular circulation; intensive roofing, capable of withstanding the relevant mechanical and chemical stresses.
2.3. Blue Roof
2.4. Green-Blue: A Further Possibility
2.5. Grey Roof
3. Method
3.1. The Conceptual Model
- The Analysis provides a detailed description and characterization of each BU according to different attributes concerning both Evaluation and Project, within the general perspective of a semiotic valuation approach [97,98]:
- ∘
- Concerning the Evaluation, the Attributes are relevant, because they outline the Aptitude of the roofs to more or less sustainable uses;
- ∘
- Concerning the Project, the Constraints are relevant, because their progressive release gradually enables more transformative (from green to blue or grey) RWTs;
- The Evaluation assumes as its basic raw material of “what actually matters” in the dialectics between the green–natural and the urban–social instances; as a consequence, the evaluation works on both the building and urban scales:
- ∘
- on a building-scale (“Green matters!”), some “Object Aspects” (building sizes, distances, typologies and so on) enable the Sorting functions by means of which the Green, Blue or Grey RWT is attributed to each BU; at this stage, due to possible multiple correspondences between the BU profile and the RWT, evaluation may provide ambiguous sorting of the Bus; the next Project (decision-making) functions solve this ambiguity as later explained;
- ∘
- when projected on an Urban District scale (“City matters!”), the evaluation functions are aimed at the final selection of the best strategy according to the above-mentioned axiological matrices by means of a Multi-Attribute Value Theory tool;
- The project concerns the generation of overall Strategies according to two different Modalities of releasing the Constraints. These modalities differ in a) the starting Strategy and b) how to resolve ambiguities in the sorting of BUs between RWTs. In fact, due to the multiple sorting of the same BU between more than one RWT, four further different Approaches have been applied in Modality 2:
- ∘
- Modality 1, inspired by a general prospect of sustainability, generates the first 20 strategies according to Approach 0, which assumes, as the starting Strategy, the maximum development of green roofs and resolves the above-mentioned ambiguous sorting by choosing the Green option;
- ∘
- Modality 2 arranges a further 80 strategies, assuming, as starting Strategy 0, Option (“do nothing”) and solving the ambiguous sorting according to four further approaches: Approach 1 solves the multiple-sorting by choosing green; Approach 2, choosing green–blue; Approach 3, choosing blue; Approach 4, choosing grey.
- if from the point of view of the “main necessary conditions” a building admits green roofing, then the algorithm assigns Green RWT and chooses, on the basis of the “secondary conditions”, the green roof system A1 (Pitched roof extensive greening,), Ba1 Flat roof not practicable extensive greening) or Bb (Flat roof practicable);
- if not, the algorithm verifies whether the conditions for Blue RWT are met, and if so, it associates the type compatible with pitched or flat roofing;
- if not, the algorithm checks whether the DP permits the vertical extension for that building and assigns the Gray RWT to the extent and under the conditions permitted.
- The Physical Reference, which is the building as a physical object represented in the evaluation/project communication system through a set of characteristics;
- The Signifier, which means the above characteristics to which a value judgement is attributed;
- The Signified, which is the content of the value judgement.
3.2. The Programming Model
3.2.1. Green
- -
- Main or necessary conditions:
- Minimum surface area: the algorithm allocates a BU to a green roof RWT if the roof size is bigger than a minimum hypothesized standard size: the bigger the size, the lower the number of green roofs.
- Degree of fragmentation: it is a three-degree scale attribute assigned to each BU by direct observation: the higher the fragmentation, the smaller the green roofs.
- Geometry: the ratio of the length by the width of the roof affects the feasibility and cost of the green roof: the higher the ratio, the smaller the number of green roofs.
- Building type: simpler building types make it easier to realize green roofs: the simpler the type that is deemed suitable, the many more green roofs.
- -
- Secondary or ancillary conditions:
- Number of floors: a lower number of stories makes the green roof more visible from public spaces, so that lower buildings have priority for the allocation of a green roof.
- Characteristics of the roof (referring to RWT Bb2):
- Accessibility of the roof; priority is given to buildings with easy access to the roof, which facilitates maintenance, cultivation and enjoyment.
- Age of the building: older buildings are more at risk in terms of structural strength and, therefore, less suitable for green roofs.
- Maintenance degree of the roof: a lower maintenance degree claims renovation works, encouraging a new and innovative use of the roof.
3.2.2. Blue
- -
- Main or necessary conditions:
- Visibility of the roof: visibility of the photovoltaic panels from public spaces is due to the height of the building and to the width of the street/square in front of it: a greater visibility requires panels to be set back from the façade of the building, thus reducing the usable area and possibly discouraging installation.
- Shading: a higher degree of roof shading reduces the performance of the panels, making the investment less cost-effective.
- -
- Secondary or ancillary conditions:
- Roof characteristics: fragmentation, scarce accessibility, irregular geometry, height differences and presence of canopies make canopies make the installation and maintenance of the panels more difficult.
- Building type: the basic dwelling types are more suitable for blue roofs than palaces due to landscape matters.
- Surface area of the roof: even small areas are easily used for the installation of photovoltaic panels, and very large ones would not be fully utilized given the low tariffs applied to surplus energy produced.
- width of the main façade: although not considered by the DP in force, the landscape impact of the blue roof visible from private areas (the upper floors of neighboring building) is taken into account by this model; therefore, BUs with roof surfaces further back from the eaves line are favored.
3.2.3. Grey
- -
- Main or necessary conditions:
- Prescription of the Detailed Plan (DP); this opportunity is limited just to the building allowed by the DP.
- Building type; the DP excludes the possibility of vertical extension only for the most valuable palace typology. On the merits, the model adopts a more restrictive hypothesis by admitting this possibility only for the less valuable types; only in the hypothesis of maximum expansion of this RWT does the model consider the possibility of allowing extensions to the medium value palaces as well, complying with the DP.
- -
- Secondary or ancillary conditions:
- Surface: just the smaller BU should be allowed to increase their volume;
- Building maintenance: a very low maintenance degree could encourage a general and systematic plan of renovation with volume increase and building energy retrofit.
3.3. Evaluation Model
3.3.1. Multiple Criteria Analysis
- The quadrilinear functions take, as reference values, the minimum, the maximum and the three quartiles of the performance measurements of the 1075 BUs against each criterion;
- The bilinear functions take as reference values the minimum, maximum and average performance measures that the 20 approach strategies take with respect to each of the indicators of the four neighborhood sustainability matrices.
- the landscape matrix refers to the diffusion of the practice of green roofing as an index of the broadest sharing of a sustainability perspective; other aspects supporting this perspective are the perceptibility of green roofs from public spaces, which depends on the height of the building and the type of roof (green pitched roofs on lower floors are more visible);
- the identity matrix refers to the type of greening (lawn or Sedum on a sloping roof or roof garden on a flat roof) and the greening attitude of the building type;
- the energy–environmental matrix refers to the energy from renewable sources that can potentially be produced and to the sequestration rate of greenhouse gases;
- the economic matrix refers to (a) the real estate advantage connected to the increase in the building volume, as well as to the net benefit of the investment in photovoltaic systems and to (b) the disadvantage connected to the costs of green roofs, not repaid by the small associated energy savings.
3.3.2. Cost Calculation
Work Group | Id. Cod. | RWT | UM | Materials | Labor | Capital | Total Unit Price |
---|---|---|---|---|---|---|---|
Removal | A1 | Sq. m | 4.70 € | 17.70 € | 1.44 € | 23.84 € | |
Ba1 | Sq. m | 0.98 € | 3.67 € | 1.44 € | 6.09 € | ||
Bb1; Bb2 | Sq. m | 1.96 € | 7.35 € | 3.83 € | 13.14 € | ||
all | Sq. m | 0.69 € | 2.58 € | 3.27 € | 6.54 € | ||
Restoration | GR100GN | all | rmt | 23.00 € | 10.75 € | -€ | 33.75 € |
Materials | DIFU STOP ALU 1500 | Ba1; Bb2 | Sq. m | 2.28 € | 1.19 € | 0.00 € | 3.47 € |
DELTA ®-NOVAFLEXX | A1 | Sq. m | 3.37 € | 1.01 € | 0.00 € | 4.38 € | |
Durock Energy Plus [119] | A1; Ba1 | Sq. m | 12.90 € | 3.52 € | 1.13 € | 17.55 € | |
BauderPIR FA TE | Bb1; Bb2 | Sq. m | 14.70 € | 6.88 € | 1.08 € | 22.66 € | |
BauderSMARAGD | all | Sq. m | 19.90 € | 10.66 € | 0.00 € | 30.56 € | |
Bauder FSM 600 | all | Sq. m | 3.90 € | 1.34 € | -€ | 5.24 € | |
Bauder PE 02 | Bb2 | Sq. m | 0.70 € | 0.66 € | -€ | 1.36 € | |
Bauder SDF | A1; Ba1 | Sq. m | 8.90 € | 0.81 € | -€ | 9.71 € | |
Bauder DSE 40 | Bb1 | Sq. m | 12.10 € | 0.80 € | -€ | 12.90 € | |
Bauder WSP 75 | Bb2 | Sq. m | 20.00 € | 1.25 € | -€ | 21.25 € | |
Bauder FV 125 | all | Sq. m | 1.20 € | 0.66 € | 0.00 € | 1.86 € | |
Bauder LBB-E | A1 | Sq. m | 1.13 € | 2.44 € | 0.01 € | 3.58 € | |
Bauder LBB-E | Ba1 | Sq. m | 1.13 € | 2.44 € | 0.01 € | 3.58 € | |
Bauder Intensive | Bb1 | Sq. m | 2.82 € | 6.10 € | 0.01 € | 8.93 € | |
Bauder Intensive | Bb2 | Sq. m | 4.23 € | 9.14 € | 0.01 € | 13.39 € | |
DAKU GRID 3 | A1 | Sq. m | 4.60 € | 1.19 € | 0.00 € | 5.79 € | |
DAKU GEO 75 | A1 | Sq. m | 7.80 € | 1.19 € | 0.07 € | 9.05 € | |
Accessories | Wooden stand | A1 | rmt | 4.29 € | 4.29 € | -€ | 8.58 € |
Daku Pro 80—AL | A1 | rmt | 14.20 € | 0.94 € | -€ | 15.14 € | |
Fixing bracket | A1 | rmt | 7.50 € | 1.50 € | -€ | 9.00 € | |
Daku controller | all | apiece | 55.50 € | 2.62 € | -€ | 58.12 € | |
Bauder 150/60 MR | all | rmt | 90.00 € | 2.00 € | -€ | 92.00 € | |
Connecting element | all | rmt | 9.10 € | -€ | -€ | 9.10 € | |
Closing element | all | apiece | 26.00 € | -€ | -€ | 26.00 € | |
Greening | Sedum | A1; Ba1 | Sq. m | 7.00 € | 6.00 € | 12.46 € | 25.46 € |
Small plants | Bb1 | Sq. m | 8.40 € | 7.20 € | 12.46 € | 28.06 € | |
Ph. panel | LG Solar Neon2 | C1 | apiece | 240.00 € | 75.79 € | -€ | 315.79 € |
BIPV | Tegosolar | C2 | Sq. m | 87.19 € | 37.04 € | 0.00 € | 124.24 € |
3.3.3. Calculation of Available Areas for Photovoltaic Systems
4. Applications and Results
4.1. Modality 1, Approach 0
4.2. Modality 2
- Green roofs until Strategy 10,
- Blue roofs until Strategy 17 and
- Grey roofs until Strategy 20
- it is no longer possible to outline homogeneous clusters of strategies, with almost similar evaluations;
- despite the gradual release of constraints, sudden valuation gaps occur between successive strategies;
- it is no longer possible to identify almost continuous paths of convergence;
- fully dominant strategies are identified, albeit characterized by very different performance profiles.
4.2.1. Approach 1
4.2.2. Approach 2
4.2.3. Approach 3
4.2.4. Approach 4
Number and Types of Roofs Involved | Qualitative Assessment Score by Axiological Matrix | |||||||||
---|---|---|---|---|---|---|---|---|---|---|
Modality | Approach | Preferable Strategy | Green | Blue | Green–Blue | Gray | Landscape | Identity | Energy-Environmental | Economic |
1 | 0 | 4 | 713 | 33 | 0 | 0 | 1.74 | 1.96 | 0.38 | 0.29 |
2 | 1 | 20 | 541 | 277 | 7 | 46 | 0.96 | 1.62 | 1.17 | 0.80 |
2 | 2 | 20 | 193 | 620 | 12 | 46 | 0.96 | 0.63 | 2.00 | 2.00 |
2 | 3 | 20 | 427 | 277 | 121 | 46 | 2.00 | 1.30 | 1.54 | 1.07 |
2 | 4 | 16 | 222 | 81 | 103 | 316 | 1.58 | 1.15 | 0.73 | 1.77 |
5. Discussion
6. Conclusions
- a flexible planning approach allowing decision makers to explore the potential creation of overall value by generating and real-time evaluating multiple layouts of the arrangement of the RWT to be associated to the BUs;
- the reduction of the decision-maker’s arbitrariness, since every single layout is generated as a whole strategy operating on the rules, not on the BUs;
- the statement of the rules by which the function of multiple (convergent and/or conflicting) preferences is optimized through the creation of the preferable strategy.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Cappello, C.; Giuffrida, S.; Trovato, M.R.; Ventura, V. Environmental Identities and the Sustainable City. The Green Roof Prospect for the Ecological Transition. Sustainability 2022, 14, 12005. https://doi.org/10.3390/su141912005
Cappello C, Giuffrida S, Trovato MR, Ventura V. Environmental Identities and the Sustainable City. The Green Roof Prospect for the Ecological Transition. Sustainability. 2022; 14(19):12005. https://doi.org/10.3390/su141912005
Chicago/Turabian StyleCappello, Cheren, Salvatore Giuffrida, Maria Rosa Trovato, and Vittoria Ventura. 2022. "Environmental Identities and the Sustainable City. The Green Roof Prospect for the Ecological Transition" Sustainability 14, no. 19: 12005. https://doi.org/10.3390/su141912005