- Research Article
- 10.1016/j.cemconres.2026.108177
In-situ CO2-reactive limestone calcined marine clay cement (LMC3) system fully derived from recycled solid waste
- May 01, 2026
- Cement and Concrete Research
- Lu Zhu + 9 more +9
Publications from 2021 to 2026
Showing 10 of 51 papers
In-situ CO2-reactive limestone calcined marine clay cement (LMC3) system fully derived from recycled solid waste
Can trustworthiness be trusted? Board chair swift trust in CEOs and R&D investment
Flash Joule heating-driven transformation of phosphogypsum into high-activity calcium sulfide: A green strategy for phosphogypsum upcycling
A Divide-Merge Clustering Algorithm Based on Dimension Importance and Inter-Subcluster Tightness
Unraveling the anti-poisoning mechanism of highly dispersed Ni atoms enhanced porous MnOx catalysts in the selective reduction of NOx by NH3.
Site selection of wind-photovoltaic coupling hydrogen production project with the assistant of geographic information system: A multi-criteria decision-making study under the hybrid fuzzy environment
Process optimization and mechanism for removal of chlorine from ultrasonic-enhanced Municipal Solid Waste Incineration fly ash water washing
High-performance laser power converters for simultaneous wireless information and power transfer
This paper presents recent progress in the material growth of laser power converters (LPCs), with a particular focus on the development of high-performance tunnel junctions. Additionally, advancements in LPCs device research are discussed, including the performance of 808nm LPCs devices. We used 808nm LPCs with different junctions and areas for simultaneous wireless information and power transfer (SWPT) application. We successfully realized a power transmission of 1.59 watts and an information transmission rate of 200 kbps with the 10-junction LPCs as the receiver.
Read moreCoupled low NOx control of MSW incineration based on flue gas recirculation and flow field optimization
ABSTRACT Reducing NOx emission in flue gas is currently an essential issue in municipal solid waste incineration. Based on an 850 t/d waste incinerator, the denitrification roles of secondary air arrangement, flue gas recirculation (FGR), and SNCR technologies in the waste incineration process were studied using numerical simulation. The impact of different secondary air layouts, secondary air injection angles, and air distribution ratios on the temperature field and NOx emission inside the incinerator were investigated. The denitrification effect of the combined application of these measures was also considered. The findings indicated that the flue gas temperature was lower, and the mixing degree was higher in the double cut-circle layout than in the hedging layout, which enhanced the NOx removal performance of FGR. Appropriately increasing the SA ratio and the FGR injection angle contributed to reducing NOx emission. By increasing the injection angle from 15° to 55°, the NOx concentration at the third flue outlet was decreased by 29.71 mg/Nm3, and the NOx removal effect was improved by 12.2%. When both FGR and SNCR were utilized, the best NOx removal performance (76.21%) was achieved with the optimized secondary air arrangement, demonstrating that combining denitrification technologies based on flow field optimization could achieve lower NOx emission during incineration.
Read moreEfficient and stable PEI@MSF adsorbents for CO2 removal in confined space: Insights into silica foam support with ultra-large pore structure