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"Selecting the Right Transmission Cell for Spectrophotometric Liquid Analysis"

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"New Digital Qualification Notebook Generator Transforms Quality Control Procedures"

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"Spectrophotometers for Monitoring Shelf Life of Hamburger Meat Improves Marketability"

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"Using the Gardner Scale to Enhance Quality and Create Color Consistency in Edible Oils"

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"Should You Use Glass or Plastic Sample Holders? The Pros and Cons of Each Method"

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"RGB v Tristimulus Color Scales – HELP!"

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"Basics of Color Theory"

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Selecting the Right Transmission Cell for Spectrophotometric Liquid Analysis

Posted on Feb 09, 2024 by HunterLab

Selecting the right transmission cell for liquid analysis is essential to ensuring the highest level of accuracy and safety. Image Source: Pexels user Wesley Wilson

Modern spectrophotometric instrumentation has created opportunities for qualitative and quantitative liquid analysis that could only be imagined just a few short years ago. Today, spectrophotometers are an essential part of liquid analysis across industries, opening the door to greater levels of insight and control than ever before. Selecting a spectrophotometer of the highest quality specifically designed for your purposes will allow you to perform even the most complex analytics with ease and precision to obtain meaningful spectral and colorimetric data. However, the spectrophotometer itself is not the only variable to take into consideration; pairing your instrument with the best transmission cells optimizes performance and gives you the highest level of accuracy while ensuring safety. By understanding your options, you can choose the appropriate cell for your sample type and analytical requirements.

Do you need the optical clarity of glass or do you prioritize the affordability of plastic transmission cells? Image Source: Flickr user Georgios Liakopoulos

Posted in Color Measurement

New Digital Qualification Notebook Generator Transforms Quality Control Procedures

Posted on Feb 09, 2024 by HunterLab
Posted in Validation And Compliance

Spectrophotometers for Monitoring Shelf Life of Hamburger Meat Improves Marketability

Posted on Feb 09, 2024 by HunterLab

Quality hamburgers start with fresh ground beef, which many consumers measure by the color quality of the raw meat. Image Source: Flickr’ user bour3

Hamburgers are the All-American food and nothing screams summer like the smell of sizzling ground beef on a backyard grill. This summertime tradition has been around for ages and hamburger was once the staple food in the American household. I remember when I was growing up, my mom put hamburger in everything — from the ever-popular varieties of family casseroles to the excitement of the huge metal mixing bowl filled to the brim with ground beef, just waiting for the influx of guests to arrive. Old friends of mine still refer to my mom’s “famous hamburgers” that she would meticulously mix by hand and form into the perfect patty.

While my mom adored her ground beef, she was also quite picky about the quality of meat she chose. We always bought our hamburger meat fresh from the butcher and my mom would carefully inspect the color before purchasing. "Always choose the freshest meat for the best burgers," she would say, as the butcher would hold up a bright pink handful in his gloved hands. As an adult, I now consider myself somewhat of a connoisseur of quality hamburgers and have developed some new favorite recipes that challenge even the best burger joints in town.

Myoglobin is the protein found in ground beef that gives it its red coloring and is recognized as a sign of meat quality and freshness. Image Source: Flickr’ user Artizone

Posted in Color In Food Industry

Using the Gardner Scale to Enhance Quality and Create Color Consistency in Edible Oils

Posted on Feb 09, 2024 by HunterLab

In edible oil production, the color of the product says a lot about its processing, storage, and overall quality. Olive oil is a prime example. Some olive oils are deep gold while others are pale yellow or dark brown. These colors vary widely based on the type of olive that manufacturers use as well as how the product is handled and stored before it's added to the shelves.

Edible oil manufacturers can apply the Gardner scale to create the color consistency they need in their products.

The Gardner scale can be used to give you greater insight into your edible oil products. Image Source: Pexels user Pixabay

Posted in Color In Food Industry

Should You Use Glass or Plastic Sample Holders? The Pros and Cons of Each Method

Posted on Feb 09, 2024 by HunterLab

Achieving the best color measurement results depends on choosing the right tools, including the best sample holders. Image Source: Shutterstock user Rattiya Thongdumhyu

In a broad range of industries, obtaining accurate color data and maintaining color consistency of liquid products is essential. This is particularly true when color has a significant impact on both the functionality and appeal of a liquid, which is why spectrophotometric color measurement is an integral part of quality control protocols for virtually endless array of products. However, the spectrophotometer is not the only factor to consider when establishing analytical methods; you must also consider the suitability of spectrophotometric accessories.

This is where a common question arises: should I use glass or plastic sample holders? Both glass and plastic sample cups are versatile, widely available, and can often be effectively employed for reliable color measurement of liquids. Therefore, when choosing which of two types to use, it is important to consider the pros and cons of each material.

Glass vs. Plastic Sample Holders

At the most fundamental level, the question of whether you should use a glass or plastic sample holder to measure the color of a liquid product has a simple answer: either option is likely to be sufficient. There are certain benefits to glass sample holders that render them slightly preferable to plastic sample holders, but if plastic sample holders are used properly, they can often be just as effective for color consistency measurement; as long as you are familiar with the potential pitfalls of plastic sample holders, they can achieve the same level of reliability as glass sample holders. However, there are certain circumstances in which it may be optimal to take advantage of the benefits of glass sample holders.

Choosing the right sample holder can ensure accuracy of color measurement and enhance safety in your lab. Image Source: Shutterstock user science photo

Posted in Color Measurement

RGB v Tristimulus Color Scales – HELP!

Posted on Feb 09, 2024 by HunterLab

At my new quality assurance job, one of our product quality checks is to measure the color of our product and to ensure that we are producing our product that is within a preset acceptable color range. We use an instrument, a spectrophotometer, that reports Hunter L, a, b; XYZ, and L*a*b scales. I’ve always thought that color was measured in terms of RGB, like the way computer monitors and TV screens describe color. I’ve even created custom colors for fonts on my computer by manually adjusting the RGB quantities. Can someone explain why we would measure color using Hunter L, a, b; XYZ, and L*a*b instead of RGB?

It depends on what you want. Do you want White, Yellowish White, or Bluish White?

In simple terms, the primary difference between CIE Tristimulus Scales (Hunter L, a, b; XYZ, and L*a*b scales) and RGB is their purpose within the color world. RGB is a device dependent method of producing color and is not exact enough to be used to describe a color for quality control purposes. CIE XYZ color scales represents the true color of an object, while RGB describes a flat solid color representation of the average color of an object is displayed on a screen. One is used to provide color directionality (RGB), the other is used to precisely quantify a color (Tristimulus values). let’s illustrate…

Let’s take a drive to the Lincoln Memorial

Let’s pretend the Lincoln Memorial is not a physical object but rather a specific color, let’s say white, since in fact it is made of a very specific white concrete. To get there, should I use RGB or Tristimulus values? This will depend on how close to the Lincoln Memorial, or its specific color of ‘white’ you want to get. Using RGB to measure the color white and expecting analytical precision would be like trying to get to the Lincoln Memorial without the exact address and a GPS/map to guide you. While you may know that the Lincoln Memorial is located in Washington D.C., getting to the specific address would be a challenge.

RGB is very much like this in that you might know the general area of red, blue, green, or in this case ‘white,’ but getting to a precise color takes more than a general direction. Much like GPS, which uses three-dimensional physical coordinates that can guide you to within three feet of the desired address, CIE Tristimulus scales provide three-dimensional color coordinates to give you the exact address of a specific color with extreme precision. While RGB might drop you off on the Mall without any further direction, tristimulus coordinates will direct you precisely to a specific color with decimal precision, much like GPS will guide you to the Lincoln Memorial within three feet.

Posted in Color And Appearance Theory

Basics of Color Theory

Posted on Feb 09, 2024 by HunterLab

Color theory is all around us — in the products we use, the images we see and the nature in our backyards. Understanding color theory is critical to anyone in design, and it plays a crucial role in product development and brand imagery. Even color theory psychology is a growing trend. So what is it exactly?For starters, modern color theory has no shortage of definitions, but generally, it refers to the concepts behind our perceptions of color. So, to understand the basics of color theory, you must know how colors work.

What Is Color?

The way we perceive color makes it seem like the objects around us all have inherent visual properties attached to them. For instance, an apple is red, grass is green and the sky is blue, with little deviation.

What we find out, however, is that color is a matter of perception. It requires three things:

  • An object
  • A light source
  • An observer

The light source can be natural or human-made, and the observer doesn’t necessarily need to be a living creature — it can also include machines like cameras and spectrophotometers.

When light bounces off an object, photons and electrons interact, with electrons absorbing or reflecting the light. In the process of reflection, the electrons release specific wavelengths of energy that correspond to certain colors, which our brains process.

How Do We See Color?

While light reflections release specific wavelengths, our brains interpret them as the colors we know and love. First, the reflected light enters the eye through the cornea. Then, a lens focuses it into the retina, the layers of nerve cells at the back of the eye.

The retina contains cells called photoreceptors, mainly rods and cones, that detect light waves.

  • Rods activate in low or dim light and do not process colors.
  • Cones activate in bright environments and contain specific pigments that correspond to our perceptions of red, green and blue.

These photoreceptors weave their way to the brain, connecting the communication patterns from the neurons in the retina to the brain.

Color vs. Appearance

In the common vernacular, color is typically a characteristic of appearance. For our purposes, appearance refers to surface features, like gloss and texture.

As light reflects off an object, it can take a few differing paths, based on the smoothness of the surface.

  • Specular reflection: Specular reflections occur on surfaces with relatively few imperfections. You might see specular light in a still lake. It would reflect the trees and the clouds above it, so you could make out the image.
  • Diffuse reflection: A diffuse reflection is much more common. It happens when the surface is rough or textured. The light reflects in random directions and won’t maintain an image of the source light.
  • Combinations: Both specular and diffuse reflections can occur at the same time. Usually, this happens with scattered light distributed in a specific group. Semi-gloss and textured metals are an example of these mixtures. You may be able to see a low-resolution reflection of the image around it.

These surface characteristics can influence how we interpret color. For instance, coarse texture is going to reflect the light in more directions and appear lighter in color than a smooth, high-gloss surface. This effect occurs because less of the light is reaching your eyes when it scatters.

Posted in Color And Appearance Theory
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