Convert Moles per Day to Micromoles per Second
Mole per Day (mol/d) to Micromole per Second (µmol/s) molar flow rate conversion — enter any value below to get an instant result, or use the table for common values.
Results from this calculator are estimates provided for general informational purposes only, based on formulas, rates, and standards commonly accepted as of 2026. Figures may differ slightly from other calculators or professional sources due to rounding methods, differing assumptions, or regional regulations, and rules may change over time. Always consult a qualified professional — such as a financial advisor, healthcare provider, or other relevant specialist — before making decisions based on these results.
Result
1 mol/d = 11.5741 µmol/s
1 Mole per Day = 11.5741 Micromoles per Second
1 Micromole per Second = 0.086399806 Moles per Day
1 mol/d in every supported unit
Conversion chart: Mole per Day to Micromoles per Second
Conversion table
| Mole per Day (mol/d) | Micromole per Second (µmol/s) |
|---|---|
| 0.01 mol/d | 0.115741 µmol/s |
| 0.1 mol/d | 1.15741 µmol/s |
| 1 mol/d | 11.5741 µmol/s |
| 2 mol/d | 23.1482 µmol/s |
| 3 mol/d | 34.7223 µmol/s |
| 5 mol/d | 57.8705 µmol/s |
| 10 mol/d | 115.741 µmol/s |
| 20 mol/d | 231.482 µmol/s |
| 50 mol/d | 578.705 µmol/s |
| 100 mol/d | 1157.41 µmol/s |
| 1000 mol/d | 11574.1 µmol/s |
Mole per Day (mol/d)
Definition: A very small molar flow unit for moles passing a point per day, used for extremely slow feed or dosing rates.
History: Adopted for niche applications where a substance is metered in only trace molar quantities over an extended period, such as slow-release dosing systems.
Current use: Occasionally used in slow-dosing chemical delivery systems and long-duration analytical or biochemical drip experiments.
Micromole per Second (µmol/s)
Definition: A very small molar flow unit — one-millionth of a mole passing a point per second — used for trace-level gas and reagent flows.
History: An SI micro-scale sub-multiple of the mole, adopted as instrumentation sensitivity improved enough to measure and control flows at the micromole level.
Current use: Standard in photosynthesis research (CO₂/O₂ gas exchange rates), mass spectrometry, and microfluidic reagent dosing.
Supported Units
| Unit | Symbol | In mol/s |
|---|---|---|
| Mole per Second | mol/s | 1 mol/s |
| Kilomole per Second | kmol/s | 1000 mol/s |
| Kilomole per Minute | kmol/min | 16.666667 mol/s |
| Kilomole per Hour | kmol/h | 0.27777778 mol/s |
| Kilomole per Day | kmol/d | 0.011574074 mol/s |
| Mole per Minute | mol/min | 0.016666667 mol/s |
| Mole per Hour | mol/h | 0.0002777778 mol/s |
| Mole per Day | mol/d | 1.15741E-05 mol/s |
| Millimole per Second | mmol/s | 0.001 mol/s |
| Millimole per Minute | mmol/min | 1.66667E-05 mol/s |
| Millimole per Hour | mmol/h | 2.77778E-07 mol/s |
| Millimole per Day | mmol/d | 1.15741E-08 mol/s |
| Micromole per Second | µmol/s | 1E-06 mol/s |
| Megamole per Second | Mmol/s | 1000000 mol/s |
| Gigamole per Second | Gmol/s | 1E+09 mol/s |
About These Parameters
- Value
- The molar flow rate value you want to convert, expressed in the "From" unit. Accepts decimals.
- From Unit
- The unit your input value is currently measured in — a reactor feed spec's mol/s, or a plant mass-balance sheet's kmol/h.
- To Unit
- The unit you want the result converted into. Use the swap button to flip From and To instantly.
How Flow - Molar Conversion Works
The Formula
Every unit here is defined by a fixed multiplier relative to moles per second. To convert a value from one unit to another:
result = value × (factor of "From" unit ÷ factor of "To" unit)
For Mole per Day → Micromole per Second: multiply by 11.5741. For example, 1 mol/d × 11.5741 = 11.5741 µmol/s.
Molar Flow vs. Mass Flow
This site's separate Flow - Mass Converter measures how much MASS (kilograms, pounds) passes a point per unit time, while this page measures how many MOLES pass instead. The two are related by molar flow = mass flow ÷ molar mass of the substance — but that conversion requires knowing exactly which gas or fluid is flowing, since every substance has a different molar mass (water is about 18 g/mol, while carbon dioxide is about 44 g/mol). Because of that substance-dependence, molar flow and mass flow can't be converted with a fixed multiplier the way the units on this page can — you always need the specific compound's molar mass as an extra input.
Why Moles Matter in Process Engineering
Balanced chemical equations are written in mole ratios — one mole of methane reacts with two moles of oxygen, for instance — so reactor mass balances, catalyst dosing, and conversion/yield calculations are all naturally done in moles rather than mass or volume. Molar flow also plugs directly into the ideal gas law (PV = nRT), letting engineers relate a gas stream's molar flow rate to its pressure, volume, and temperature without any substance-specific density lookup. This is why process flow diagrams and reactor design calculations almost always carry a molar flow rate figure alongside, or instead of, a mass or volumetric flow rate.
Example
A molar flow rate of 1 mol/d equals 11.5741 µmol/s. For scale, a small laboratory continuous-flow reactor might run at only a few mmol/s, while a full-scale industrial ammonia synthesis reactor can process feed gas at hundreds of kmol/h.
Frequently Asked Questions
How many Micromoles per Second are in 1 Mole per Day?
1 Mole per Day (mol/d) equals exactly 11.5741 Micromoles per Second (µmol/s).
What is molar flow rate used for?
Molar flow rate is used throughout chemical engineering to size reactors, calculate reaction conversion and yield, balance mass across a process, and apply the ideal gas law to gas streams — anywhere a calculation depends on the number of reacting particles rather than their mass or volume.
How do I convert molar flow to mass flow?
Multiply the molar flow rate by the substance's molar mass: mass flow = molar flow × molar mass. For example, 10 mol/s of water (molar mass 18.015 g/mol) is a mass flow of about 180.15 g/s. This site's units page can't do that step for you since it requires knowing which specific substance is flowing — use the site's separate Flow - Mass Converter once you have the mass figure.
How accurate are these conversions?
Every conversion factor used here is an exact, fixed multiplier relative to moles per second (a simple ratio of time-unit and metric-prefix scaling) — results are limited only by floating-point display precision, not by rounded conversion constants.