Knowledge Center

Welcome to our Knowledge Center. Here our goal is to offer the user an easy way to navigate to all of our educational content.
Sieve Correlation Using Dynamic Image Analysis
Sieve correlation has been a well-established method in particle sizing for many years, but the development of automated dynamic image analysis is beginning to revolutionize the process. In this blog post, we will discuss how automated dynamic image analysis is becoming a complementary method to sieve correlation and how it provides more accurate and detailed results.
Is Dynamic Image Analysis Essential for Proper Fiber Particle Analysis?
Dynamic image analysis (DIA) is a digital method of particle characterization that enables a researcher to identify the shape, size, and number of particles in a sample. Due to its high accuracy and reproducibility, DIA is a widely used image analysis method across most industries to support quality control, compliance, and research applications.
Shape Matters: The Importance of Image Analysis for Measurement of Rods and Spherical Particles
The behavior of raw materials can typically be predicted by properly studying a sample and identifying physical characteristics such as particle size. Features most commonly analyzed include distribution, size, and shape. Particle size measurement is a crucial process in various industries, as understanding specific particles and their properties can enhance productivity, reduce waste and ensure product quality.
How & Why You Should Use Dynamic Imaging to Identify Agglomerates
Particle size is a crucial property to measure when dealing with particulate raw materials. It underlies key manufacturing parameters like flowability, packing, and wetting–each of which can have a demonstrable impact on the end quality of a part or product.
How Dynamic Image Analysis Helps Screen Metal Powders for 3D Printing
Creating parts using metal powders requires exceptional high-quality raw materials. Many analytical tools are used to pre-screen metal powders to ensure proper powder flowability, prevent clogging, and ensure adequate particle deposition to guarantee well-made parts.
How Particle Shape Analysis Compliments Size Measurements
Particle size reduction is a routine method of increasing surface area and making downstream processing more efficient. It is well documented that particle size distribution (PSD) affects powder flowability. However, studies have demonstrated the limitations of particle size analysis – particularly in applications with irregular particles. Ignoring particle shape can lead to significant under-estimation of the mean particle size which leads to errors in PSD results.
How Particle Shape Analysis Complements Abrasives
Particle size is a critical factor in qualifying abrasive powders. Larger particles typically produce an aggressive cutting action with fast material removal rates, albeit with a poor surface finish. Smaller particles, by contrast, offer a smoother finish with significantly reduced rates of removal.
Using Dynamic Image Analysis & Laser Diffraction for 3D Printing Metal Powder Identification
Material identification is a crucial part of the additive manufacturing process, particularly when dealing with metal powder feedstocks. Although metal powder 3D printing is increasingly common, there are various quality assurance and control (QA/QC) challenges that must be considered.
PARTICLE SHAPE APPLICATION EXAMPLE: Glass Fibers and Flake
The challenge Glass fiber particles have large aspect ratios. In this application, there was a need to quantify the aspect ratio of various populations of glass fibers. Correlation plots were generated to compare the length to width of the fibers as well.. Below are the results of the glass fiber samples. Please see the video [...]
PARTICLE SHAPE APPLICATION EXAMPLE: Coal Powder
The challenge Coal Powder has many industrial applications. It is generally processed by crushing, grinding or pulverizing of coal. Because of the brittle nature of coal, the sample shapes obtained are very irregular once processed. Powder shape has always influenced the way particles flow, compact and perform in their final use. Therefore, particle shape analysis [...]
PARTICLE SHAPE APPLICATION EXAMPLE: Stem Cells
The challenge Stem cells are undifferentiated cells being used these days in a therapeutic nature to take on the properties of cells in an area of need. Injecting stem cells in organs, for example, has been used to generate new cells of those specific organs. This new focus in regenerative medicine has given new attention [...]
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