Wenda Lu
- Recycling of waste gypsum from αlpha-hemihydrate phosphogypsum: Based on the atmospheric hydrothermal process. Dans: Construction and Building Materials, v. 377 (mai 2023). (2023):
- Influence of fluoride ion on the performance of PCE in hemihydrate gypsum pastes. Dans: Journal of Building Engineering, v. 46 (avril 2022). (2022):
- Properties of β-HPG pastes in the presence of α-HPG prepared from phosphogypsum. Dans: Construction and Building Materials, v. 334 (juin 2022). (2022):
- Preparation of eco-friendly lightweight gypsum: Use of beta-hemihydrate phosphogypsum and expanded polystyrene particles. Dans: Construction and Building Materials, v. 297 (août 2021). (2021):
- Effect of soil-structure interaction on the reliability of hyperbolic cooling towers. Dans: Structural Engineering and Mechanics, v. 7, n. 2 (février 1999). (1999):
- Low-Energy Consumption Preparation of Fine Waterproof Cementitious Material with High-Volume Phosphogypsum. Dans: Journal of Materials in Civil Engineering (ASCE), v. 32, n. 11 (novembre 2020). (2020):
- Effect of calcium sulphoaluminate cement on mechanical strength and waterproof properties of beta-hemihydrate phosphogypsum. Dans: Construction and Building Materials, v. 242 (mai 2020). (2020):
- Utilization of hemihydrate phosphogypsum for the preparation of porous sound absorbing material. Dans: Construction and Building Materials, v. 234 (février 2020). (2020):
- Preparation of α-hemihydrate gypsum from phosphogypsum in recycling CaCl2 solution. Dans: Construction and Building Materials, v. 214 (juillet 2019). (2019):
- Effect of unequal settlement of foundations on the stress resultants of hyperbolic cooling towers and the unequal settlement tolerance limit. Dans: Engineering Structures, v. 8, n. 1 (janvier 1986). (1986):
- Gust factors for hyperbolic cooling towers on soils. Dans: Engineering Structures, v. 13, n. 1 (janvier 1991). (1991):