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Ueber das Zeitgesetz des kapillaren Aufstiegs von Flüssigkeiten

Richard Lucas
- 01 Jul 1918 - 
- Vol. 23, Iss: 1, pp 15-15
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This article is published in Colloid and Polymer Science.The article was published on 1918-07-01 and is currently open access. It has received 1052 citations till now.

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Substrate-Versatile Direct-Write Printing of Carbon Nanotube-Based Flexible Conductors, Circuits, and Sensors

TL;DR: In this article, a polymer-free, printable aqueous CNT ink was introduced and the relationship between printing resolution, ink rheology, and ink-substrate interactions was presented.
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A critical review on the absorptive glass mat (AGM) separators synergistically designed via fiber and structural parameters

TL;DR: A critical review on various experimental and theoretical studies aims to present a template for ‘designer’ AGM separator to fulfill the demands of any application of VRLA batteries.
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Influence of pressure and temperature on the electrolyte filling of lithium-ion cells: Experiment, model and method

TL;DR: In this paper , a simple model based on a capillary is introduced and clarifies the relation between wetting and the process parameters, showing that 2.5fold wetting speed has significant advantages in terms of throughput and line utilization.
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Modeling air–water interface in disordered fibrous media with heterogeneous wettabilities

TL;DR: In this article, a CPU-friendly semi-analytical algorithm for tracking the instantaneous shape and position of the air-water interface inside microstructures that resemble a collection of disordered parallel cylinders is presented.
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Binder jetting additive manufacturing: Three-dimensional simulation of micro-meter droplet impact and penetration into powder bed

TL;DR: In this paper , the effects of particle size and contact angle on the binder flow within the powder bed were investigated and the results suggest that smaller powder particle size does not always improve the accuracy, and excessive wettability may lead to gas bubble entrapped and thus lower density and accuracy.