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Tuesday, 4 December 2018
Fruit Texture: How to measure flesh firmness of prepared homogeneous fruit samples
A compression test may be the preferred test method, but where fruit samples vary in size this will immediately reflect in the magnitude of force measured as it is subject to surface area differences and consequently the reproducibility of results will be poor.
In this instance, the fruit will be required to be prepared into pieces of accurate dimensions – usually cubes or cylinders.
Tuesday, 27 November 2018
Fruit Texture: How to measure the overall firmness of a weight or quantity of fruits
This type of test commonly applies to:
a: Soft fruits: drupelets and berries – e.g. cranberries, blueberries, blackberry, raspberry, strawberry, pomegranate arils, grapes
b: Fibrous samples: such as pomegranates, citrus fruits, pineapples which have been prepared into pieces.
c: Pieces of fruit that have been prepared into smaller pieces e.g. apple cubes.
The primary issue of these types of samples is that they are usually of varying sizes or are of non-homogeneous nature and therefore make comparisons difficult. They therefore have a high variability from piece to piece within the same batch and require a large sample set to be tested. Puncture or compression tests to rupture are possible but usually produce results with poor repeatability.
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| Kramer Shear Cell |
a: Soft fruits: drupelets and berries – e.g. cranberries, blueberries, blackberry, raspberry, strawberry, pomegranate arils, grapes
b: Fibrous samples: such as pomegranates, citrus fruits, pineapples which have been prepared into pieces.
c: Pieces of fruit that have been prepared into smaller pieces e.g. apple cubes.
The primary issue of these types of samples is that they are usually of varying sizes or are of non-homogeneous nature and therefore make comparisons difficult. They therefore have a high variability from piece to piece within the same batch and require a large sample set to be tested. Puncture or compression tests to rupture are possible but usually produce results with poor repeatability.
Tuesday, 20 November 2018
Fruit Texture: How to measure the firmness of whole fruit by compression
Fruit can alternatively undergo a mild non-destructive test where the deformation response of a large cylinder probe or platen is measured to effectively mimic the compression between one’s fingers. However this has the problem of measurement variability due to differing contact area with the fruit surface which varies because of irregularities in fruit shape and size and results may then be compromised for the convenience of using such a test.
Tuesday, 13 November 2018
Fruit Texture: How to assess skin strength and flesh firmness of whole fruits
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| Penetration test of avocado sample using a P/3 Cylinder Probe and the Circular Support |
Firmness can be an indicator of immaturity or overmaturity. Excessive peach firmness, for example, can indicate an immature peach with little free juice. Conversely, an overmature, soft peach can be excessively juicy and prone to bruises.
Where individual fruits are to be tested, penetration testing (using a cylinder or ball probe smaller than the fruit) provides a constant surface area for testing which often reduces the variability of results when compared to compression testing data.
Measuring the skin strength and flesh firmness of whole fruit
A penetration test destructively measures firmness by registering the force required for a Cylinder Probe (generally from 2mm – 8mm in diameter), Magness-Taylor Puncture Probe, or Ball Probe, to penetrate the fruit’s flesh to a chosen distance and is frequently used for testing firmness of a wide variety of fruits. Magness-Taylor probes are commonly used, widely accepted in the field of testing of whole fruit and have historically been the reference measure for firmness in many fruits as this method has shown good correlation with consumer acceptability for firmness. With probes of this size and shape the skin will yield once penetrated and the underlying flesh can also be measured.
Penetration testing has the benefit of not requiring samples to be of the same size and does not require sample preparation. However, orientation of the penetration is important as samples of this nature are anisotropic. The depth of penetration varies according to the fruit size and proximity to e.g. pits, cores and it is sometimes possible to perform tests on both sides of each fruit tested e.g. peaches. Some larger berries are commonly penetrated using a small (e.g. 2-3mm) Cylinder Probe and the maximum force taken as the firmness value.
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| Penetration test of apple using a Needle Probe |
This type of test primarily assesses skin strength/toughness and elasticity, yield point and resilience, the ripening and softening profile and the firmness of the underlying flesh. Some researchers prefer to remove a small section of the skin/peel with a razor blade so that penetration can be performed on the flesh only and the test is isolated to the measurement of flesh firmness.
A Penetration Test of Whole Fruit can be applied to:
a: Fruit with pits: where the outer skin covers a soft, fleshy fruit and the fruit surrounds a single, hard stone, or pit, which contains the seed – cherries, apricots, nectarines, peaches, plums, avocado, olives
b: Fruit with cores: where there is a central seed-containing core surrounded by a thick layer of flesh – apples, pears
c: Large fruits without cores: melons – large, juicy fruits with thick skins and many seeds
d: Citrus fruits where a measure of the peel characteristics are required: these possess a thick outer rind and a thin membrane separates the flesh into segments – e.g. oranges, tangerines, grapefruits, kumquats, lemons, limes
e: Starchy fruits: banana – pasty homogeneous starchy fruits with very soft texture; easily mashed to pulp or follow viscous behaviour when squashed
f: Large berries
g: Tropical fruits – papaya, figs, dates, guavas, mangoes, kiwis.
Interpretation of Whole Fruit Penetration Curve
The firmness of ripe and unripe samples can be tested by penetrating a small diameter cylinder probe into the whole fruit (around the equatorial region) and measuring the subsequent force to rupture the skin and further penetrate through the underlying tissue to a chosen distance of e.g. 5mm.
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1: Curves of ripe vs. unripe pears
tested using a 2mm cylinder probe |
This stage ends abruptly when the probe punctures through the skin and begins to penetrate into the sample flesh, which event is represented by the sudden change in slope called the “yield point” (or “bioyield point”). The yield point (maximum force) occurs when the probe begins to penetrate into the food, causing irreversible damage.
The third phase of the puncture test, namely the plateau of the force after the yield point, is an indication of the underlying flesh firmness of the fruit (1).
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2: Penetration force/distance curve
and parameters
|
Stiffness, is the slope of the first part of the curve measured from the beginning of the curve to Fmax. Work of penetration (W1) is the mechanical work needed to reach the rupture point, as is taken as the area under the curve to Fmax. Flesh firmness (Ff) is the average value of the forces measured after skin rupture. W2 is the work measured (area under the curve) after the skin rupture.
These values can be automatically calculated with the use of a simple macro within Exponent software, making collection of parameters quick and intelligent.
Watch the video below to see a summary of the types of testing possibilities that are available for the measurement of fruit and vegetable texture to provide quality control tools and ultimately, consumer satisfaction:
For more information on how to measure texture, please visit the Texture Analysis Properties section on our website.
The TA.XTplus texture analyser is part of a family of texture analysis instruments and equipment from Stable Micro Systems. An extensive portfolio of specialist attachments is
available to measure and analyse the textural properties of a huge range of
food products. Our technical experts
can also custom design instrument fixtures according to individual
specifications.No-one understands texture analysis like we do!
To discuss your specific test requirements, click here...
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Tuesday, 6 November 2018
Fruit Texture: a world of food development possibilities with fruit / fruit firmness/ripeness
Only relatively recently have modern techniques in texture analysis been implemented in the fruit sector. The embracement of more advanced testing methods and technologies has been led by increased fruit consumption in the consumer sphere, in turn boosted by increased health awareness and a global trend towards healthier living. Historically considered a ‘low value-added’ commodity, agricultural produce such as fruit has failed to attract the same level of investment and sophistication of analysis into the correlations between structural characteristics and consumer acceptability as processed foods have.
Tuesday, 30 October 2018
Biaxial Film Testing using a Texture Analyser – Calculating Fundamental Parameters
The
use of the Film Support Rig can provide a very useful test for
monitoring the quality of irregular objects, such as the toughness of
sliced meat. However, this test setup can also provide more fundamental
stress-strain data if the sample has a known uniform thickness and
homogeneous structure.Sometimes the properties of a thin film are under investigation, but the film might be unsuitable for any other type of testing. An example would be a film of dried nail polish; depending on its properties, this can be too brittle to clamp in tensile grips, it is too thin to test under compression and it may not be large enough for bend testing. In cases such as this, the Film Support Rig is ideal, as the sample is clamped at the edges and put under “biaxial tension” by a spherical probe pushing into the centre.
Tuesday, 23 October 2018
Contained Compression Testing using a Texture Analyser – Calculating Bulk Modulus
Bulk
modulus is a defined as the relative change in a sample’s volume when a
unit compressive or tensile stress acts uniformly over its surface. It is a measure of how resistant a substance is to pure compression. Its measurement is possible by the use of a Texture Analyser, providing care is taken over the sample setup.
Tuesday, 16 October 2018
The Measurement of Hysteresis using a Texture Analyser
Hysteresis
in the context of deforming a material is the loss of energy in the
form of heat when a sample is loaded then unloaded. This occurs due to internal friction, and so the effect is larger for a material such as rubber, which requires the movement of large molecular chains each time it is stretched or compressed. If a piece of rubber is deformed several times in the hands, this loss of energy can be felt directly as the sample heats up.
As can be seen on the graph, the deformation of a viscoelastic material follows a different path on the load and unload cycles. The unload cycle shows that the material is slower to recover compared to the load cycle. This difference in recovery is known as hysteresis, which is due to energy dissipation by the generation of heat.
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