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I'd love to hear more about his. I've got some space that would be way more usable with retaining walls but the cost of concrete block deters me.
by intrepidhero 5y ago
I'd love to hear more about his. I've got some space that would be way more usable with retaining walls but the cost of concrete block deters me.
- quag 5y agoThis video doesn’t go into using the technique in your backyard, but it does introduce the idea. https://youtu.be/0olpSN6_TCc https://youtu.be/0olpSN6_TCc
- pontifier 5y agoYou beat me to it, but I'll say this video, also by Practical Engineering expands on the technique and shows how binding rock can have amazing properties. https://youtu.be/xNDppVTVUss https://youtu.be/xNDppVTVUss
- kragen 5y agoQuoting http://www.coripa.com.ar/view/uploads/articles/article_file-332.PDF http://www.coripa.com.ar/view/uploads/articles/article_file-..., a document in the public domain by the US Department of Transportation: Retaining structures are essential elements of every highway design. Retaining structures are used not only for bridge abutments and wing walls but also for slope stabilization and to minimize right-of-way for embankments. For many years, retaining structures were almost exclusively made of reinforced concrete and were designed as gravity or cantilever walls which are essentially rigid structures and cannot accommodate significant differential settlements unless founded on deep foundations. With increasing height of soil to be retained and poor subsoil conditions, the cost of reinforced concrete retaining walls increases rapidly. Mechanically Stabilized Earth Walls (MSEW) and Reinforced Soil Slopes (RSS) are cost-effective soil-retaining structures that can tolerate much larger settlements than reinforced concrete walls. By placing tensile reinforcing elements (inclusions) in the soil, the strength of the soil can be improved significantly such that the vertical face of the soil/reinforcement system is essentially self supporting. Use of a facing system to prevent soil raveling between the reinforcing elements allows very steep slopes and vertical walls to be constructed safely. In some cases, the inclusions can also withstand bending from shear stresses, providing additional stability to the system. Inclusions have been used since prehistoric times to improve soil. The use of straw to improve the quality of adobe bricks dates back to earliest human history. Many primitive people used sticks and branches to reinforce mud dwellings. During the 17th and 18th centuries, French settlers along the Bay of Fundy in Canada used sticks to reinforce mud dikes. Some other early examples of man-made soil reinforcement include dikes of earth and tree branches, which have been used in China for at least 1,000 years and along the Mississippi River in the 1880s. Other examples include wooden pegs used for erosion and landslide control in England, and bamboo or wire mesh, used universally for revetment erosion control. Soil reinforcing can also be achieved by using plant roots. The modern methods of soil reinforcement for retaining wall construction were pioneered by the French architect and engineer Henri Vidal in the early 1960s. His research led to the invention and development of Reinforced Earth®, a system in which steel strip reinforcement is used. The first wall to use this technology in the United States was built in 1972 on California State Highway 39, northeast of Los Angeles. In the last 25 years, more than 23,000 Reinforced Earth structures representing over 70 million m2 (750 million ft2) of wall facing have been completed in 37 countries. More than 8,000 walls have been built in the United States since 1972. The highest wall constructed in the United States was on the order of 30 meters (98 feet). It mentions costs of US$200 to US$400 per square meter of wall, with wall heights up to 30 meters, and massive savings due to not needing deep foundations. Naively, that suggests that you could build a 12 m x 12 m x 8 m square skyscraper-like thing for about US$100k; how much space could you keep open within? 600 cubic meters? Or would your dirt tower slump over to one side and collapse as soon as it rained?