Microsiemens to Millisiemens Converter

Convert microsiemens to millisiemens instantly with our free electrical conductance conversion calculator. Enter any value for accurate results.

μS
=
mS
0.001
Millisiemens (mS)
1 μS = 0.001 mS
🔄 Swap Units (Millisiemens → Microsiemens)
1 μS
=
0.001 mS
1 Microsiemens = 0.001 Millisiemens

How to Convert Microsiemens to Millisiemens

To convert an electrical conductance measurement from microsiemens to millisiemens, divide the conductance value by the conversion factor. Since one microsiemens is equal to 0.001 millisiemens, you can use this formula:

millisiemens = microsiemens ÷ 1,000

The conductance in millisiemens is equal to the microsiemens divided by 1,000.

Example: Convert 5 microsiemens to millisiemens.

Using the formula: millisiemens = microsiemens ÷ 1,000

millisiemens = 5 μS ÷ 1,000 = 0.005 mS

Therefore, 5 microsiemens equals 0.005 millisiemens.

How Many Millisiemens Are in a Microsiemens?

There are 0.001 millisiemens in one microsiemens.

1 μS = 0.001 mS

What Is a Microsiemens?

The microsiemens (symbol: μS) is a unit of electrical conductance equal to one millionth (10−6) of a siemens. The prefix "micro" denotes a factor of 10−6 in the metric system. Microsiemens are the most common unit for expressing the electrical conductivity of natural waters. Freshwater streams and lakes typically have conductivities ranging from 50 to 1,500 μS/cm, while highly purified water used in semiconductor manufacturing has a conductivity of about 0.055 μS/cm. In water treatment, conductivity in microsiemens per centimetre is used to monitor the effectiveness of reverse osmosis membranes, ion exchange resins, and other purification processes. A sudden change in conductivity can indicate equipment failure or contamination. The microsiemens is also used in geophysics for electrical resistivity surveys of the subsurface. These surveys help locate groundwater, mineral deposits, and underground structures. The microsiemens is equivalent to the micromho, which was the standard unit before the adoption of the siemens.

One microsiemens is equal to:

  • 0.000001 siemens (S)
  • 0.001 millisiemens (mS)
  • 10−9 kilosiemens (kS)
  • 10−12 megasiemens (MS)
  • 0.000001 mhos (℧)
  • 1 micromho (μ℧)
  • 10−15 abmhos (ab℧)
  • ≈ 899,000 statmhos (st℧)

What Is a Millisiemens?

The millisiemens (symbol: mS) is a unit of electrical conductance equal to one thousandth (10−3) of a siemens. The prefix "milli" denotes a factor of 10−3 in the metric system. Millisiemens are commonly used in water quality testing and environmental science. The electrical conductivity of water is a key indicator of its purity and dissolved mineral content. Distilled water has very low conductivity (a few microsiemens per centimetre), while seawater has a conductivity of about 50 millisiemens per centimetre. In soil science and agriculture, electrical conductivity measured in millisiemens per centimetre or metre is used to assess soil salinity. High salinity can impair plant growth, so conductivity measurements are essential for irrigation management and land reclamation. The millisiemens is also used in medical diagnostics, particularly in bioelectrical impedance analysis (BIA), which measures the electrical conductivity of body tissues to estimate body composition (fat mass, lean mass, water content).

One millisiemens is equal to:

  • 0.001 siemens (S)
  • 1,000 microsiemens (μS)
  • 0.000001 kilosiemens (kS)
  • 10−9 megasiemens (MS)
  • 0.001 mhos (℧)
  • 1,000 micromhos (μ℧)
  • 10−12 abmhos (ab℧)
  • ≈ 899,000,000 statmhos (st℧)

Understanding Electrical Conductance

Electrical conductance is a measure of how easily electric current flows through a material or component. It is the reciprocal of electrical resistance: a component with high conductance allows current to flow easily (low resistance), while one with low conductance impedes current flow (high resistance).

The SI unit of conductance is the siemens (S), defined as one ampere per volt (A/V). The siemens replaced the older unit name "mho" (ohm spelled backwards) in 1971, though both names represent the same quantity. Conductance G is related to resistance R by the simple equation: G = 1/R.

Conductance depends on the material's conductivity (σ), the cross-sectional area (A) of the conductor, and its length (L): G = σA/L. Materials with high conductivity, such as copper and silver, are used as electrical conductors, while materials with low conductivity, such as rubber and glass, are used as insulators.

Measurement Systems

Three main unit systems are used for electrical conductance:

  • SI (International System): Uses the siemens and its metric prefixes (μS, mS, kS, MS). This is the modern standard used worldwide in science and engineering.
  • MKS/Practical: Uses the mho and micromho, which are older names for the siemens and microsiemens. These units are still commonly encountered, especially in American engineering practice.
  • CGS-EMU (Electromagnetic): Uses the abmho (= 109 S), a very large unit from the electromagnetic CGS system.
  • CGS-ESU (Electrostatic): Uses the statmho (≈ 1.112 × 10−12 S), a very small unit from the electrostatic CGS system.

Conductance vs. Conductivity

It is important to distinguish between conductance and conductivity:

  • Conductance (G): A property of a specific component or sample, measured in siemens (S). It depends on the material, geometry, and temperature.
  • Conductivity (σ): An intrinsic property of a material, measured in siemens per metre (S/m). It is independent of the sample's size or shape.

For a uniform conductor, conductance is related to conductivity by: G = σ × A / L, where A is the cross-sectional area and L is the length.

Practical Applications

  • Water quality testing: Conductivity in μS/cm or mS/cm indicates dissolved mineral content and water purity
  • Electronics: Component conductance in siemens or millisiemens is used in circuit analysis and design
  • Power systems: Admittance (complex conductance) in siemens is used for power flow analysis and fault calculations
  • Materials science: Metal conductivity in MS/m characterizes how well materials conduct electricity
  • Soil science: Electrical conductivity in mS/cm assesses soil salinity for agriculture
  • Medical diagnostics: Bioimpedance measurements use conductance to estimate body composition

Tips for Electrical Conductance Conversions

  • For SI prefix conversions (S, mS, μS, kS, MS), each step is a factor of 1,000. Moving from a larger unit to a smaller one means multiplying by 1,000 for each prefix step.
  • The siemens and the mho are exactly equal (1 S = 1 ℧). Similarly, the microsiemens and micromho are exactly equal (1 μS = 1 μ℧). These are just different names for the same units.
  • The abmho is an extremely large unit: 1 ab℧ = 109 S = 1 gigasiemens. Most practical conductance values are a tiny fraction of an abmho.
  • The statmho is an extremely small unit: 1 st℧ ≈ 1.112 × 10−12 S ≈ 1.112 picosiemens. Most practical conductance values are billions of statmhos.
  • CGS units (abmhos, statmhos) are rarely used in modern practice. If you encounter them in older literature, use the conversion factors: 1 ab℧ = 109 S and 1 S ≈ 8.99 × 1011 st℧.
  • To convert conductance to resistance, take the reciprocal: R (ohms) = 1 / G (siemens). For example, 0.5 S = 1/0.5 = 2 Ω.
  • Water conductivity is typically expressed in μS/cm or mS/cm. To convert between them: 1 mS/cm = 1,000 μS/cm. Pure water has about 0.055 μS/cm, while seawater has about 50,000 μS/cm (50 mS/cm).

Microsiemens to Millisiemens Conversion Table

The following table shows conversions from microsiemens to millisiemens.

MicrosiemensMillisiemens (mS)
1 μS0.001
2 μS0.002
3 μS0.003
4 μS0.004
5 μS0.005
6 μS0.006
7 μS0.007
8 μS0.008
9 μS0.009
10 μS0.01
11 μS0.011
12 μS0.012
13 μS0.013
14 μS0.014
15 μS0.015
16 μS0.016
17 μS0.017
18 μS0.018
19 μS0.019
20 μS0.02
21 μS0.021
22 μS0.022
23 μS0.023
24 μS0.024
25 μS0.025
26 μS0.026
27 μS0.027
28 μS0.028
29 μS0.029
30 μS0.03
31 μS0.031
32 μS0.032
33 μS0.033
34 μS0.034
35 μS0.035
36 μS0.036
37 μS0.037
38 μS0.038
39 μS0.039
40 μS0.04

Related Electrical Conductance Converters

Convert from Microsiemens

Convert to Millisiemens