To install click the Add extension button. That's it.

The source code for the WIKI 2 extension is being checked by specialists of the Mozilla Foundation, Google, and Apple. You could also do it yourself at any point in time.

4,5
Kelly Slayton
Congratulations on this excellent venture… what a great idea!
Alexander Grigorievskiy
I use WIKI 2 every day and almost forgot how the original Wikipedia looks like.
Live Statistics
English Articles
Improved in 24 Hours
Added in 24 Hours
What we do. Every page goes through several hundred of perfecting techniques; in live mode. Quite the same Wikipedia. Just better.
.
Leo
Newton
Brights
Milds

Logarithmic mean temperature difference

From Wikipedia, the free encyclopedia

In thermal engineering, the logarithmic mean temperature difference (LMTD) is used to determine the temperature driving force for heat transfer in flow systems, most notably in heat exchangers. The LMTD is a logarithmic average of the temperature difference between the hot and cold feeds at each end of the double pipe exchanger. For a given heat exchanger with constant area and heat transfer coefficient, the larger the LMTD, the more heat is transferred. The use of the LMTD arises straightforwardly from the analysis of a heat exchanger with constant flow rate and fluid thermal properties.

YouTube Encyclopedic

  • 1/3
    Views:
    17 603
    13 748
    5 013
  • Log Mean Temperature Difference
  • Log Mean Temperature Difference
  • Heat Exchanger and LMTD of parallel flow , counter flow heat exchanger.

Transcription

Definition

We assume that a generic heat exchanger has two ends (which we call "A" and "B") at which the hot and cold streams enter or exit on either side; then, the LMTD is defined by the logarithmic mean as follows:

The LMTD illustrated in a countercurrent temperature profile[1]

where ΔTA is the temperature difference between the two streams at end A, and ΔTB is the temperature difference between the two streams at end B. When the two temperature differences are equal, this formula does not directly resolve, so the LMTD is conventionally taken to equal its limit value, which is in this case trivially equal to the two differences.

With this definition, the LMTD can be used to find the exchanged heat in a heat exchanger:

where (in SI units):

Note that estimating the heat transfer coefficient may be quite complicated.

This holds both for cocurrent flow, where the streams enter from the same end, and for countercurrent flow, where they enter from different ends.

In a cross-flow, in which one system, usually the heat sink, has the same nominal temperature at all points on the heat transfer surface, a similar relation between exchanged heat and LMTD holds, but with a correction factor. A correction factor is also required for other more complex geometries, such as a shell and tube exchanger with baffles.

Derivation

Assume heat transfer [2] is occurring in a heat exchanger along an axis z, from generic coordinate A to B, between two fluids, identified as 1 and 2, whose temperatures along z are T1(z) and T2(z).

The local exchanged heat flux at z is proportional to the temperature difference:

The heat that leaves the fluids causes a temperature gradient according to Fourier's law:

where ka, kb are the thermal conductivities of the intervening material at points A and B respectively. Summed together, this becomes

where K = ka + kb.

The total exchanged energy is found by integrating the local heat transfer q from A to B:

where D is the distance between the two fluids.

Use the fact that the heat exchanger area Ar is the pipe length BA multiplied by the interpipe distance D:

In both integrals, make a change of variables from z to ΔT:

With the relation for ΔT found above, this becomes

Integration at this point is trivial, and finally gives:

,

from which the definition of LMTD follows.

Assumptions and limitations

  • It has been assumed that the rate of change for the temperature of both fluids is proportional to the temperature difference; this assumption is valid for fluids with a constant specific heat, which is a good description of fluids changing temperature over a relatively small range. However, if the specific heat changes, the LMTD approach will no longer be accurate.
  • A particular case for the LMTD are condensers and reboilers, where the latent heat associated to phase change is a special case of the hypothesis. For a condenser, the hot fluid inlet temperature is then equivalent to the hot fluid exit temperature.
  • It has also been assumed that the heat transfer coefficient (U) is constant, and not a function of temperature. If this is not the case, the LMTD approach will again be less valid
  • The LMTD is a steady-state concept, and cannot be used in dynamic analyses. In particular, if the LMTD were to be applied on a transient in which, for a brief time, the temperature difference had different signs on the two sides of the exchanger, the argument to the logarithm function would be negative, which is not allowable.
  • No phase change during heat transfer
  • Changes in kinetic energy and potential energy are neglected

Logarithmic Mean Pressure Difference

A related quantity, the logarithmic mean pressure difference or LMPD, is often used in mass transfer for stagnant solvents with dilute solutes to simplify the bulk flow problem.

References

  1. ^ "Basic Heat Transfer". www.swep.net. Retrieved 2020-05-12.
  2. ^ "MIT web course on Heat Exchangers". [MIT].
  • Kay J M & Nedderman R M (1985) Fluid Mechanics and Transfer Processes, Cambridge University Press
This page was last edited on 28 February 2024, at 08:45
Basis of this page is in Wikipedia. Text is available under the CC BY-SA 3.0 Unported License. Non-text media are available under their specified licenses. Wikipedia® is a registered trademark of the Wikimedia Foundation, Inc. WIKI 2 is an independent company and has no affiliation with Wikimedia Foundation.