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相关概念视频

Pozzolans01:21

Pozzolans

470
Pozzolans are siliceous or aluminous materials blended with Portland cement. They interact with the calcium hydroxide produced during the hydration of Portland cement and contribute to improved strength and durability of concrete. The pozzolanic activity, a measure of a pozzolan's effectiveness, is typically assessed using the strength activity index, as defined in ASTM C 618-93, which calculates the ratio of the compressive strength of cement mixtures with and without pozzolan.
Fly ash is...
470
Additives and Fillers in Concrete01:29

Additives and Fillers in Concrete

323
Additives and fillers are integral to enhancing the properties of concrete. Pozzolans and blast-furnace slag are additives or admixtures due to their reactions with calcium hydroxide released during cement hydration. Fillers, which are finely ground and similar in fineness to Portland cement, improve concrete attributes such as workability density, and reduce capillary bleeding or cracking. Some fillers possess hydraulic properties or participate in benign reactions within the cement paste.
The...
323
Portland Cement01:21

Portland Cement

590
Portland cement is the essential binding ingredient in concrete, made from finely ground materials including lime, iron, silica, and alumina. Lime is derived primarily from limestone, marble, marl, seashells, and clays, which also supply iron and alumina, while silica is sourced from sand, chalk, and bauxite. Contemporary manufacturing of Portland cement is a significant source of carbon dioxide emissions, prompting research into reducing its content in concrete through alternative...
590
Types of Cement II01:22

Types of Cement II

382
Portland blast-furnace cement is made by blending Portland cement clinker with granulated blast-furnace slag, which accounts for 25 to 65 percent of the cement's weight. Despite its similarities to ordinary Portland (Type I) cement in terms of fineness and setting times, its early strength is lower, though it achieves comparable strength later on. It's particularly suited for mass concrete structures and marine environments due to its lower heat of hydration and superior sulfate...
382
Manufacture of Concrete Masonry Units01:27

Manufacture of Concrete Masonry Units

368
The process of manufacturing concrete masonry units begins by mixing stiff concrete composed of Portland cement, aggregates, and water. This mixture is then poured into metal molds. To ensure the concrete settles uniformly and to avoid separation of its components, the mixture in the molds is subjected to vibration. Shortly after, the still-wet blocks are removed from the molds and placed on racks.
These wet blocks are then transported for curing, which can occur in one of two environments: a...
368
Porosity in Cement Paste01:18

Porosity in Cement Paste

428
The porosity of concrete is a measure of the void spaces within its structure. These spaces impact its strength and durability significantly. When water and cement interact, a chemical reaction called hydration creates a semi-solid paste. This paste includes combined water, making up approximately 23% of the cement's dry mass, and gel water, which fills minuscule voids known as gel pores, accounting for about 28% of the cement gel volume.
The balance of water to cement in the mix is...
428

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陶泡颗粒物来自被撞毁的克林克铺路器.

Alexander Karamanov1, Ilian Djobov1, Feyzim Hodjaoglu1

  • 1Institute of Physical Chemistry, Bulgarian Academy of Sciences, "Acad. Georgi Bonchev" str. bld.11, 1113 Sofia, Bulgaria.

Materials (Basel, Switzerland)
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PubMed
概括

将陶废弃物回收成高质量的泡颗粒物是可行的. 这一过程产生了适合耐火应用的不透,轻质聚合物.

关键词:
陶泡是一种陶泡.克林克尔 (克林克尔) 是一种发泡机制的发泡机制重复使用是重复使用.

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科学领域:

  • 材料科学 材料科学 材料科学
  • 陶工程 陶工程
  • 废物价值化 废物价值化 废物价值化

背景情况:

  • 陶废弃物对处置提出了一些挑战.
  • 发展工业副产品的可持续用途至关重要.

研究的目的:

  • 为了研究陶碎片的转化成高质量的泡颗粒.
  • 描述发泡机制和产生的颗粒的特性.

主要方法:

  • 在高温下研究泡过程 (150-200°C高于生产).
  • 使用的技术:热阶段显微镜 (HSM),差异热分析-热重量测量分析与质谱学 (DTA-TG-MS),X射线衍射 (XRD) 和扫描电子显微镜 (SEM) 相结合.

主要成果:

  • 发泡机制与氧气从Fe3+释放到Fe2+减少的化和伪化溶解后的发泡机制.
  • 在1280°C下30分钟生产的颗粒对水是不透的.
  • 获得的属性:密度 (0.4-0.7 g/cm3),孔隙度 (70-85%),压力强度 (0.7-1.1 MPa).

结论:

  • 将陶废弃物转化为泡颗粒是一种可行的过程.
  • 由此产生的泡颗粒物符合高质量,耐火轻质聚合物的标准.