Superimposed Renewal of Industrial Heritage under the Guidance of Low Maintenance and Sustainability—Renewal of Refinery Site in Jinan Tianhong Community
Abstract
:1. Introduction
2. Literature Review
2.1. Research on the Reuse of Industrial Heritage
2.2. A Review of Low Maintenance Sustainable Design Research
2.3. Research Gapa
2.3.1. The Lack of Research on Secondary Renewal of Industrial Heritage
2.3.2. The Lack of Research on the Application of Sustainable Design in the Renewal of Industrial Heritage
3. Method: Secondary Renewal Method under the Guidance of Low Maintenance Sustainability
3.1. Strategy 1: Build a Water Circulation System
3.2. Strategy 2: Choose Energy Efficient Materials
- Municipal drainage, urban waterlogging and excessive water accumulation on the road surface, and ensure the circulation of surface water and the storage of underground water sources;
- Reduce noise pollution;
- Ensure the permeability, water retention and air permeability of the ground;
- Adjust temperature, improve air quality and regulate ecological balance.
3.3. Strategy 3: Low Maintenance Plant Selection
- Choose plants that are native and have low management costs. Native plants are easy to source, inexpensive to purchase, have a high survival rate, require less maintenance, less irrigation, pruning and management costs at a later stage, while choosing plants with a long growth cycle, high survival rate and pruning resistance. Avoid using a large number of grasses and potted flowers [35].
- Choose participatory plants. Social participation in greenery planting activities can indirectly reduce maintenance costs for managers. Public welfare landscape forestry which is easy to maintain can better attract social participation, such as economic fruit trees, not only for people to enjoy, and their fruits also have a certain economic benefit, so the costs saved can be used for later plant maintenance, and it indirectly reduces the cost of landscape maintenance.
- Ensure community planting, by trying to create a small lawn, a moderate number of trees and a sufficient number of shrubs. The plants in the community are more viable and require lower late-management costs. In the construction of the plant community, we should insist on the combination of trees, shrubs and grasses, with trees being the main design plan. Trees have a longer growth cycle and are easier to maintain. In order to create a spatial hierarchy and walking experience in dense forest areas, the plant configuration should be richly layered, enclosing the space with the help of plants and distributing them with flowering and fragrant plants to stimulate people’s desire to explore, such as using soapberry, loblolly pine, elm and cedar for trees, pearl plum, red raspberry, purple magnolia and golden silver wood for shrubs, and paving loblolly pine, iris, maidenhair and cassia for ground cover plants.
- Choose plants with a strong self-cleaning ability, such as an outer barrier plant configuration to absorb harmful gases, dust and noise-blocking plants, for trees choose big-leaved maidenhair, acacia, cedar and long-clawed acacia, for shrubs choose golden-leaved maidenhair, sea tree, zinnia and purple yucca, for ground-cover plants choose pavement loblolly pine, iris, maidenhair and cassia. Secondly, the use of wetland landscapes, which are relatively stable due to the complexity of the system, requires little human intervention as they are self-maintaining and can be used more often when available. The plant configuration of the ecological wetland area is based on plants that are resistant to water and humidity, such as weeping willow, sequoia, red maple and peach trees for trees, and aquatic iris, Chiffchaff, lotus, water lilies, reeds, cattails and water bamboo in terms of aquatic plants.
- The use of green roofing techniques [36] on landscape structures also enhances roof insulation and soundproofing. Choose light-loving, temperature-resistant, cold-resistant, heat-resistant, drought-resistant, barren and vigorous flowering plants to achieve a staggered height of plants and flowers. The main plant species include red-leaved heather balls, small-flowered gardenias, small-leaved boxwoods, golden-sided boxwoods, Hellebore balls and self-purchased finished potted plants, and select vine plants to increase ornamental properties.
3.4. Strategy 4: Rational Terrain Treatment for Energy Recycling and Low Maintenance Costs
3.5. Strategy 5: The Use of Solar Energy
3.6. Strategy 6: Use Natural Air for Ventilation Circulation
3.7. Strategy 7: Design of a Play Tower Based on the Combination of Bionics with Thermal Energy Use and Water Circulation Systems
3.8. Strategy 8: Integration of Industrial Heritage and Nature
4. Results
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Subject Word | Web of Science | CNKI |
---|---|---|
(Industrial Heritage) | 2323 | 3835 |
(Sustainable Design) | 54702 | 1201 |
(Industrial Heritage) AND (Sustainable) | 276 | 126 |
(Industrial Heritage) AND (Renewal) | 52 | 558 |
(Industrial Heritage) AND (Reuse) | 130 | 875 |
(Low-Maintenance Design) | 612 | 66 |
(Low-Maintenance Design) AND (Sustainable) | 52 | 15 |
(Industrial Heritage) AND (Secondary Renewal) | 0 | 2 |
Ecosystem Service | Examples | Strategic in Site | Description |
---|---|---|---|
Soil formation | Weathering of rock and the accumulation of organic material. | Terrain treatment | The balance of earthwork and the natural slope angle. |
Pollination | Provisioning of pollinators for the reproduction of plant populations | Plants | Low maintenance plant selection. |
Biological control | Keystone predator control of prey species, reduction of herbivory by top predators. | ||
Refugia | Nurseries, habitat for migratory species, regional habitats for locally harvested species, or over wintering grounds. | ||
Food production | Production of fish, game, crops, nuts, fruits by hunting, gathering, subsistence farming, or fishing. | ||
Genetic resources | Medicine, products for materials science, genes for resistance to plant pathogens and crop pests, ornamental species (pets and horticultural varieties of plants). | ||
Raw materials | The production of lumber, fuel, or fodder. | Materials | Use of energy efficient materials. |
Gas regulation | Co2/o2 balance, o3 for uvb protection, and sox levels. | Heat, wind | The use of solar energy Use natural air for ventilation circulation. |
Climate regulation | Green-house gas regulation, dms production affecting cloud formation. | ||
Disturbance regulation | Storm protection, flood control, drought recovery, and other aspects of habitat response to environmental variability mainly controlled by vegetation structure. | Water | Build a water circulation system. |
Water regulation | Provisioning of water for agricultural (e.g., irrigation) or industrial (e.g., milling) processes or transportation. | ||
Water supply | Provisioning of water by watersheds, reservoirs, and aquifers. | Bionic structures | Design of a play tower based on the combination of bionics with thermal energy use and water circulation systems. |
Erosion control and sediment retention | Prevention of loss of soil by wind, runoff, or other removal processes, storage of silt in lakes and wetlands. | ||
Nutrient cycling | Nitrogen fixation, n, p, and other elemental or nutrient cycles. | ||
Waste treatment | Waste treatment, pollution control, detoxification. | ||
Recreation | Eco-tourism, sport fishing, and other outdoor recreational activities. | ||
Industrial building renewal | Integration of industrial heritage and nature. | ||
Cultural | Aesthetic, artistic, educational, spiritual, and/or scientific values of ecosystems. |
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Share and Cite
Li, Z.; Gai, Q.; Qin, L. Superimposed Renewal of Industrial Heritage under the Guidance of Low Maintenance and Sustainability—Renewal of Refinery Site in Jinan Tianhong Community. Sustainability 2022, 14, 7486. https://doi.org/10.3390/su14127486
Li Z, Gai Q, Qin L. Superimposed Renewal of Industrial Heritage under the Guidance of Low Maintenance and Sustainability—Renewal of Refinery Site in Jinan Tianhong Community. Sustainability. 2022; 14(12):7486. https://doi.org/10.3390/su14127486
Chicago/Turabian StyleLi, Zijia, Qiyu Gai, and Luofeng Qin. 2022. "Superimposed Renewal of Industrial Heritage under the Guidance of Low Maintenance and Sustainability—Renewal of Refinery Site in Jinan Tianhong Community" Sustainability 14, no. 12: 7486. https://doi.org/10.3390/su14127486
APA StyleLi, Z., Gai, Q., & Qin, L. (2022). Superimposed Renewal of Industrial Heritage under the Guidance of Low Maintenance and Sustainability—Renewal of Refinery Site in Jinan Tianhong Community. Sustainability, 14(12), 7486. https://doi.org/10.3390/su14127486