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<br><br>Plants are supported in an inert medium, for example a rockwool cube, and are fed a nutrient option. Some growers may possibly be astonished to discover that they can keep giant plants with a scant 400 ppm nutrient concentration, basically simply because the plants will procedure the nutrients additional effectively with the super lev- els of oxygen accessible at the roots. It is more hassle to set up a deep water culture (DWC) technique than it is to set up a soil grow, or hydroponics systems such as drip irrigation or ebb and flow.<br><br>If you have any kind of inquiries concerning where and exactly how to make use of [http://bestgrowlightsguide.com/best-hydroponic-system-determining-one-suits-your-needs/ best hydroponic system – determining one suits your needs], you could contact us at our own web-site. For instance, parsley and watercress develop nicely in milder nutrient formulas with an EC closer to that of lettuce (1. EC), even though English Spinach grows far better at considerably higher EC's (two.five-three.five EC). Metal halide lights or T-five higher-output fluorescent fixtures with 6500K tubes are great options for a hydroponic herb garden. Great air movement keeps the plants cool while providing a continuous provide of fresh carbon dioxide for photosynthesis.<br><br>[http://Dasdisdus.com/very-best-hydroponic-system-ever/ Lettuce] is a plant that calls for a extended days' worth of sunlight, If you are able to give it 18 hours of light a day from a great hydroponic lighting method, you will get good final results. If you do it correct, within a very brief space of time you will have some excellent totally grown lettuce that will reinforce to you the concept that expanding hydroponic lettuce is easy, fun, productive and healthier. Bibb lettuce is also recognized as butterhead or butter lettuce.<br><br>Bush cucumbers will produce bountiful hydroponic crops, but they are likely to need some assistance to hold them from tipping more than as they develop. Miniature cucumber plants, such as these developed for container increasing, function greatest in a hydroponic raft system.  Verify the cukes day-to-day as soon as they begin to type, given that the hydroponic environment might outcome in plants that grow significantly quicker than you may well count on. Hydroponic systems may possibly be active or passive.<br><br>Most vegetables do most effective sprouted in tiny starter pots or flats prior to transplanting to the planting bed. Hydroponic seeds get lost, wash away with the nutrient option, or they fail to get enough moisture to sprout. Never use peat pellets, jiffy pots or potting soil in a hydroponic program, as they break down and clog the pump. If you want to "keep it uncomplicated", just skip this step, your plants should really nonetheless survive.<br><br>You might be unsure of whether or not to buy or build a hydroponic method. It will give you a far better understanding of how hydroponics operates and the hands-on encounter can be worth the price of the program as you will be able to reuse the parts when you choose to create 1. Generally in a hydroponic program, nutrition is effectively directed to the roots of the plants.  Growing tomatoes hydroponically can be extremely handy.
[[Image:Fiederung.svg|thumb|right|300px|'''Figure 1''' Pennate muscle fiber arrangements. The green lines represent PCSA; the blue lines represent ACSA]]
 
In [[pennate muscle]]s, the '''physiological cross-sectional area''' (PCSA), as opposed to the anatomical one (ACSA), is the  total area of the cross-sections perpendicular to the muscle fibers.
 
== Definition ==
 
One advantage of pennate muscles is that more muscle fibers can be packed in parallel, thus allowing the muscle to produce more force, although the fiber angle to the direction of action means that the maximum force in that direction is somewhat less than the maximum force in the fiber direction.<ref name = Gans>
C. Gans (1982). Fiber architecture and muscle function. Exercise & Sports Science Reviews. 10:160–207.</ref><ref name = Otten>
E. Otten (1998). Concepts and models of functional architecture in skeletal muscles. Exercise & Sports Science Reviews. 16:89–137.</ref>
 
The muscle cross-sectional area (blue line in figure 1, also known as anatomical cross-section area, or ACSA) does not accurately represent the number of muscle fibers in the muscle. A better estimate is provided by the total area of the cross-sections perpendicular to the muscle fibers (green lines in figure 1). This measure is known as the physiological cross-sectional area (PCSA), and is commonly calculated and defined by the following formula, developed in 1975 by Alexander and Vernon:<ref>
R. McN. Alexander, A. Vernon (1975). The dimension of knee and ankle muscles and the forces they exert, Journal of Human Movement Studies, 1:115–123.</ref><ref name="Narici">
Narici M.V., Landoni L., Minetti A.E. (1992). Assessment of human knee extensor muscles stress from in vivo physiological cross-sectional area and strength measurements. European Journal of Applied Physiology & Occupational Physiology. 65(5):438–444.</ref><ref name="Maganaris">
Maganaris C.N., Baltzopoulos V. (2000). In vivo mechanics of maximum isometric muscle contraction in man: Implications for modelling-based estimates of muscle specific tension. In Herzog W. (Ed). Skeletal muscle mechanics: from mechanisms to function. Wiley & Sons Ltd, p.267-288.</ref>
 
:<math>\text{PCSA} = {\text{muscle volume} \over \text{fiber length}} =
                    {\text{muscle mass}  \over {\rho \cdot \text{fiber length}}},</math>
 
where ρ is the density of the muscle:
:<math>\rho = {\text{muscle mass} \over \text{muscle volume}}.</math>
 
PCSA increases with pennation angle, and with muscle length. In a pennate muscle, PCSA is always larger than ACSA. In a non-pennate muscle, it coincides with ACSA.
 
=== Estimating muscle force from PCSA ===
The total force exerted by the fibers in their oblique direction is proportional to PCSA. If the ''specific tension'' of the muscle fibers is known (force exerted by the fibers per unit of PCSA), it can be computed as follows:<ref name="Sacks">R.D. Sacks, R.R. Roy (1982). Architecture of The Hind Limb Muscles of Cats: Functional Significance. Journal of Morphology, 185–195.</ref>
 
:<math>\text{Total force} = \text{PCSA} \cdot \text{Specific tension}</math>
 
However, only a component of that force can be used to pull the tendon in the desired direction. This component, which is the true ''muscle force'' (also called ''tendon force''<ref name="Maganaris" />), is exerted along the direction of action of the muscle:<ref name="Maganaris"/>
 
:<math>\text{Muscle force} = \text{Total force} \cdot cos \Phi</math>
 
The other component, orthogonal to the direction of action of the muscle (Orthogonal force = Total force × sinΦ) is not exerted on the tendon, but simply squeezes the muscle, by pulling its aponeuroses toward each other.
 
Notice that, although it is practically convenient to compute PCSA based on volume or mass and fiber length, PCSA (and therefore the total fiber force, which is proportional to PCSA) is not proportional to muscle mass or fiber length alone. Namely, the maximum ([[tetanic contraction|tetanic]]) force of a muscle fiber simply depends on its thickness (cross-section area) and [[Skeletal muscle#Muscle fibers|type]]. By no means it depends on its mass or length alone. For instance, when muscle mass increases due to [[Human development (biology)|physical development]] during childhood, this may be only due to an increase in length of the muscle fibers, with no change in fiber thickness (PCSA) or fiber type. In this case, an increase in mass does not produce an increase in force.  
 
Sometimes, the increase in mass is associated with an increase in thickness. Only in this case it will have some effect on fiber force, but this effect will be proportional to the increase in thickness, not to the increase in mass. For instance, in some stages of physical development, the increase in mass may be due to both an increase in PCSA and in fiber length. Even in this case, muscle force does not increase as much as muscle mass does, because the mass increase is partly produced by a variation in fiber length, and fiber length has no effect on muscle force.
 
== Alternative definition ==
In 1987 a different definition of PCSA, herein denoted PCSA<sub>2</sub>, to facilitate comparison with the previous definition, was introduced by Sacks & Roy:<ref name="Sacks"/>
 
:<math>\text{PCSA}_2 = {\text{muscle volume} \cdot cos \Phi \over \text{fiber length}} =
                      {\text{muscle mass}  \cdot cos \Phi \over {\rho \cdot \text{fiber length}}},</math>
 
The comparison shows that
:<math>\text{PCSA}_2 = \text{PCSA} \cdot cos \Phi.</math>
 
in a pennate muscle, since cosΦ is always smaller than 1, PCSA<sub>2</sub> is always smaller than PCSA. Hence, it cannot be described as the total area of the cross-sections perpendicular to the muscle fibers (green lines in figure 1). It can be interpreted two ways:
# Projection of PCSA (green line in figure 1) on the anatomical cross-section plane (blue line).<ref>This is because the angle between the anatomical and physiological cross-section planes (angle between blue line and green line in figure 1) coincides with &Phi;, by definition.</ref>
# ACSA of a non-pennate muscle with the same force as the pennate muscle.<ref>In a non-pennate muscle, ACSA = Muscle force / Specific tension, and Muscle force = PCSA<sub>2</sub> × Specific tension, hence PCSA<sub>2</sub> = Muscle force / Specific tension = ACSA.</ref>
 
This implies that, in a muscle such as that in figure 1A, PCSA<sub>2</sub> coincides with ACSA. The disadvantage of this definition is its more complex interpretation, its advantage is that muscle force can be computed more directly:
 
:<math>\text{Muscle force} = \text{PCSA}_2 \cdot \text{Specific tension}</math><ref name="Sacks"/>
 
Currently, some authors keep using the original definition of PCSA,<ref name="Narici" /><ref name="Maganaris" /> probably because of its intuitively appealing geometrical interpretation (figure 1).
 
== References ==
{{reflist}}
 
{{Muscle tissue}}
 
[[Category:Muscular system]]
[[Category:Physiology]]

Revision as of 20:21, 9 October 2013

Figure 1 Pennate muscle fiber arrangements. The green lines represent PCSA; the blue lines represent ACSA

In pennate muscles, the physiological cross-sectional area (PCSA), as opposed to the anatomical one (ACSA), is the total area of the cross-sections perpendicular to the muscle fibers.

Definition

One advantage of pennate muscles is that more muscle fibers can be packed in parallel, thus allowing the muscle to produce more force, although the fiber angle to the direction of action means that the maximum force in that direction is somewhat less than the maximum force in the fiber direction.[1][2]

The muscle cross-sectional area (blue line in figure 1, also known as anatomical cross-section area, or ACSA) does not accurately represent the number of muscle fibers in the muscle. A better estimate is provided by the total area of the cross-sections perpendicular to the muscle fibers (green lines in figure 1). This measure is known as the physiological cross-sectional area (PCSA), and is commonly calculated and defined by the following formula, developed in 1975 by Alexander and Vernon:[3][4][5]

PCSA=muscle volumefiber length=muscle massρfiber length,

where ρ is the density of the muscle:

ρ=muscle massmuscle volume.

PCSA increases with pennation angle, and with muscle length. In a pennate muscle, PCSA is always larger than ACSA. In a non-pennate muscle, it coincides with ACSA.

Estimating muscle force from PCSA

The total force exerted by the fibers in their oblique direction is proportional to PCSA. If the specific tension of the muscle fibers is known (force exerted by the fibers per unit of PCSA), it can be computed as follows:[6]

Total force=PCSASpecific tension

However, only a component of that force can be used to pull the tendon in the desired direction. This component, which is the true muscle force (also called tendon force[5]), is exerted along the direction of action of the muscle:[5]

Muscle force=Total forcecosΦ

The other component, orthogonal to the direction of action of the muscle (Orthogonal force = Total force × sinΦ) is not exerted on the tendon, but simply squeezes the muscle, by pulling its aponeuroses toward each other.

Notice that, although it is practically convenient to compute PCSA based on volume or mass and fiber length, PCSA (and therefore the total fiber force, which is proportional to PCSA) is not proportional to muscle mass or fiber length alone. Namely, the maximum (tetanic) force of a muscle fiber simply depends on its thickness (cross-section area) and type. By no means it depends on its mass or length alone. For instance, when muscle mass increases due to physical development during childhood, this may be only due to an increase in length of the muscle fibers, with no change in fiber thickness (PCSA) or fiber type. In this case, an increase in mass does not produce an increase in force.

Sometimes, the increase in mass is associated with an increase in thickness. Only in this case it will have some effect on fiber force, but this effect will be proportional to the increase in thickness, not to the increase in mass. For instance, in some stages of physical development, the increase in mass may be due to both an increase in PCSA and in fiber length. Even in this case, muscle force does not increase as much as muscle mass does, because the mass increase is partly produced by a variation in fiber length, and fiber length has no effect on muscle force.

Alternative definition

In 1987 a different definition of PCSA, herein denoted PCSA2, to facilitate comparison with the previous definition, was introduced by Sacks & Roy:[6]

PCSA2=muscle volumecosΦfiber length=muscle masscosΦρfiber length,

The comparison shows that

PCSA2=PCSAcosΦ.

in a pennate muscle, since cosΦ is always smaller than 1, PCSA2 is always smaller than PCSA. Hence, it cannot be described as the total area of the cross-sections perpendicular to the muscle fibers (green lines in figure 1). It can be interpreted two ways:

  1. Projection of PCSA (green line in figure 1) on the anatomical cross-section plane (blue line).[7]
  2. ACSA of a non-pennate muscle with the same force as the pennate muscle.[8]

This implies that, in a muscle such as that in figure 1A, PCSA2 coincides with ACSA. The disadvantage of this definition is its more complex interpretation, its advantage is that muscle force can be computed more directly:

Muscle force=PCSA2Specific tension[6]

Currently, some authors keep using the original definition of PCSA,[4][5] probably because of its intuitively appealing geometrical interpretation (figure 1).

References

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Template:Muscle tissue

  1. C. Gans (1982). Fiber architecture and muscle function. Exercise & Sports Science Reviews. 10:160–207.
  2. E. Otten (1998). Concepts and models of functional architecture in skeletal muscles. Exercise & Sports Science Reviews. 16:89–137.
  3. R. McN. Alexander, A. Vernon (1975). The dimension of knee and ankle muscles and the forces they exert, Journal of Human Movement Studies, 1:115–123.
  4. 4.0 4.1 Narici M.V., Landoni L., Minetti A.E. (1992). Assessment of human knee extensor muscles stress from in vivo physiological cross-sectional area and strength measurements. European Journal of Applied Physiology & Occupational Physiology. 65(5):438–444.
  5. 5.0 5.1 5.2 5.3 Maganaris C.N., Baltzopoulos V. (2000). In vivo mechanics of maximum isometric muscle contraction in man: Implications for modelling-based estimates of muscle specific tension. In Herzog W. (Ed). Skeletal muscle mechanics: from mechanisms to function. Wiley & Sons Ltd, p.267-288.
  6. 6.0 6.1 6.2 R.D. Sacks, R.R. Roy (1982). Architecture of The Hind Limb Muscles of Cats: Functional Significance. Journal of Morphology, 185–195.
  7. This is because the angle between the anatomical and physiological cross-section planes (angle between blue line and green line in figure 1) coincides with Φ, by definition.
  8. In a non-pennate muscle, ACSA = Muscle force / Specific tension, and Muscle force = PCSA2 × Specific tension, hence PCSA2 = Muscle force / Specific tension = ACSA.