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LMTD Calculator — Log Mean Temperature Difference

Enter hot and cold fluid inlet and outlet temperatures for a counterflow or parallel-flow heat exchanger to compute the LMTD — the effective temperature driving force used in the heat transfer equation Q = U × A × LMTD.

Flow arrangement

°C

Temperature of hot fluid entering the heat exchanger

°C

Temperature of hot fluid leaving the heat exchanger

°C

Temperature of cold fluid entering the heat exchanger

°C

Temperature of cold fluid leaving the heat exchanger
LMTD
60°C

Log Mean Temperature Difference — driving force for heat transfer

ΔT₁ (hot end)
60 °C
ΔT₂ (cold end)
60 °C
Hot fluid drop
40 °C
Cold fluid rise
40 °C
Max ΔT (inlet diff.)
100 °C
Min ΔT (closest approach)
60 °C
08.617.325.934.543.151.860.469ΔTminLMTDΔTmaxLMTD as log-mean between the two terminal temperature differences
Step by step
  1. 1

    ΔT₁ (hot inlet − cold outlet)

    120 − 60 = 60
  2. 2

    ΔT₂ (hot outlet − cold inlet)

    80 − 20 = 60
  3. 3

    LMTD = ΔT₁ (equal ends)

    60
    Both terminal differences are equal, so LMTD = ΔT by L'Hôpital's rule.
परिणाम केवल सामान्य जानकारी के लिए अनुमान हैं और पेशेवर सलाह नहीं हैं — महत्वपूर्ण परिणामों पर भरोसा करने से पहले हमेशा उन्हें स्वतंत्र रूप से सत्यापित करें। पूरा अस्वीकरण पढ़ें.
त्वरित उत्तर

यह कैलकुलेटर कैसे काम करता है?

LMTD = (ΔT₁ − ΔT₂) / ln(ΔT₁/ΔT₂). For counterflow: ΔT₁ = Th,in − Tc,out, ΔT₂ = Th,out − Tc,in. For parallel flow: ΔT₁ = Th,in − Tc,in, ΔT₂ = Th,out − Tc,out. The LMTD is the effective temperature driving force in Q = U × A × LMTD. Counterflow always gives a higher LMTD than parallel flow for the same terminal temperatures.

सूत्र
LMTD = (ΔT₁ − ΔT₂) / ln(ΔT₁ / ΔT₂) • Q = U · A · LMTD
How this is calculated

In a heat exchanger, the temperature difference between the hot and cold streams varies along the length of the exchanger — it is large at one end and smaller at the other. You cannot simply average the two terminal differences (ΔT at each end) because the relationship is logarithmic, not linear, along the exchanger length. The Log Mean Temperature Difference (LMTD) is the logarithmic average that correctly weights the driving force: LMTD = (ΔT₁ − ΔT₂) / ln(ΔT₁/ΔT₂). When ΔT₁ equals ΔT₂ (both ends are the same), the formula reduces to LMTD = ΔT₁ by L'Hôpital's rule.

The arrangement of the fluids matters: in a counterflow exchanger the hot and cold fluids travel in opposite directions, so the hot fluid inlet faces the cold fluid outlet. This produces a more uniform temperature profile and allows the cold fluid to exit at a temperature closer to the hot fluid inlet — theoretically approaching the same temperature if the exchanger is long enough. In a parallel-flow (co-current) exchanger both fluids enter from the same end, giving a steep initial ΔT that declines rapidly; the maximum exit temperature of the cold fluid is always below the hot fluid outlet temperature. For the same duty (Q), counterflow needs a smaller heat-transfer area, so it is the more common design.

Once LMTD is known, it enters the fundamental heat-exchanger design equation: Q = U × A × LMTD, where Q is the heat duty (W or kW), U is the overall heat-transfer coefficient (W/m²·K) and A is the heat-transfer area (m²). This calculator computes LMTD only; U and A must be supplied from other data.

अक्सर पूछे जाने वाले प्रश्न

In counterflow, the cold fluid outlet is adjacent to the hot fluid inlet, so the cold fluid can reach a temperature close to the hot inlet. In parallel flow, the cold fluid outlet can never exceed the hot fluid outlet temperature because both streams cool/heat together. For the same heat duty and the same inlet temperatures, counterflow requires a smaller LMTD correction and a smaller heat-transfer area.

LMTD has units of temperature (°C or K — the kelvin difference equals the Celsius difference). This calculator uses °C for input and output. If your temperatures are in °F, convert them first (°C = (°F − 32) / 1.8), calculate LMTD in °C, then convert if needed. Using °F directly gives LMTD in °F, so you may also enter °F values as-is to get LMTD in °F.

The LMTD formula is derived for pure counterflow or pure parallel-flow exchangers. Real shell-and-tube heat exchangers with multiple tube passes or cross-flow heat exchangers are neither; they use a correction factor F (0 < F ≤ 1) so that the effective mean temperature difference is F × LMTD. TEMA charts or software provide F for standard configurations. This calculator computes the pure-flow LMTD without the F factor.

इस नाम से भी जाना जाता है

log mean temperature difference calculator
lmtd heat exchanger
counterflow heat exchanger lmtd
parallel flow heat exchanger lmtd
heat exchanger temperature difference
lmtd formula calculator
heat transfer driving force

APA

TG we-Calculate Editorial Team. (2026). LMTD Calculator — Log Mean Temperature Difference [Online calculator]. TG we-Calculate. https://we-calculate.com/hi/calculator/lmtd-calculator

Chicago

TG we-Calculate Editorial Team. "LMTD Calculator — Log Mean Temperature Difference." TG we-Calculate. 2026. https://we-calculate.com/hi/calculator/lmtd-calculator.

IEEE

TG we-Calculate Editorial Team, "LMTD Calculator — Log Mean Temperature Difference," TG we-Calculate, 2026. [Online]. Available: https://we-calculate.com/hi/calculator/lmtd-calculator

BibTeX

@misc{wecalculate_lmtd_calculator, title = {LMTD Calculator — Log Mean Temperature Difference}, author = {{TG we-Calculate Editorial Team}}, howpublished = {\url{https://we-calculate.com/hi/calculator/lmtd-calculator}}, year = {2026}, note = {TG we-Calculate} }

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