Moisture Handbook from the Moisture Monitor Specialists

At Machine Applications Corporation, our deep domain knowledge has given us the opportunity to work on numerous applications and challenges pertaining to humidity/ moisture monitor and measurement. In the course of our dealings with enterprises looking for moisture analyzers to supplement their moisture control measures, we have interacted with several individuals.

Based on these interactions, we have come to realize that not everyone possesses a clear understanding of moisture and—as a consequence—of moisture control too. As a leading manufacturer of moisture monitor equipment, we consider it our responsibility to familiarize existing and potential users of our moisture monitor equipment with the basics of humidity/moisture. This, in turn, will prove to be beneficial in implementing effective moisture control in their respective industrial sectors.

Conversational terms and their misunderstood meanings

In colloquial conversation, people often use words such as humidity, moisture, vapor, dew point, steam, fog, condensation, interchangeably. Though these words are part of everyday speech, people have an extremely ambiguous understanding of the meaning and significance of each of these terms.

On the contrary, when a scientist or engineer uses these terms, they are chosen carefully and used in a specific context. Thus, there is every possibility that a layperson might misinterpret words that are used in a purely scientific context.

For instance, consider these sentences: “The water is boiling. I can see steam coming emerging from the pot.”To a layperson, there might be nothing wrong with these sentences. But a person who works with steam would instantly pinpoint the inaccuracy. Steam is invisible. The cloud that is seen above the pot of boiling water is, in fact, water droplets that form as the steam cools and condenses on mixing with the ambient air surrounding the pot.

Confusion pertaining to moisture measurement units

There is no single method or unit to represent the moisture/humidity mixed with the air (a moisture monitor is typically used to determine moisture content). Relative humidity, specific humidity, humidity ratio, dew point, percent by volume, and grams per cubic meter are all used to express a measure of the amount of water vapor that is mixed with other gases.

Relative humidity/moisture is familiar to most of us and very important term for moisture control because of its everyday usage with regard to the weather. Relative humidity is usually abbreviated “RH” and is expressed as a percentage between zero and 100%. RH indicates the amount of moisture monitored in the air as a percentage of the maximum amount that can be mixed with the air at a specific temperature ans pressure (below 212°F). The maximum amount of water vapor in the atmosphere occurs when the partial pressure of the water vapor is equal to the vapor pressure of water at that temperature. This is the 100% RH point. The following graph shows the maximum percentage of water vapor that can be in the air at a given temperature.

Moisture level and temperature graph

The graph shows that the higher the temperature (up to 212°F) the higher the amount of water vapor that can be mixed with the air. At 212°F and above it is possible for the air to be totally water vapor (steam) and the % moisture by volume can reach 100%.

Before we give the technical definition of RH we must explain the terms that will be used in the definition.

Let’s take an empty jar and screw the lid on tight. The air in the jar is the same air that is in the room outside of the jar. To make things simple assume that the air is 20% oxygen and 80% nitrogen.

The pressure inside the jar is the same as the atmospheric pressure outside the jar which is about 14.7 PSI. The pressure inside the jar is caused by the oxygen O2 molecules and the nitrogen N2 molecules bouncing around hitting the sides of the jar. If we could remove the oxygen from the jar there would be fewer molecules to collide with the jar. The pressure would be less and would be due totally to the nitrogen molecules. The pressure exerted by the nitrogen molecules alone would be 80% of 14.7 PSI which is 11.76 PSI. If we left the oxygen in the jar and removed the nitrogen, the pressure would be 20% of 14.7 PSI which is 2.94 PSI.

The partial pressure of a gas is the part of the total pressure that is exerted by that gas alone.

PO = Partial pressure of oxygen = 2.94 PSI
PN = Partial pressure of nitrogen = 11.76 PSI
PT = Total Pressure = PO + PN = 14.7 PSI

If we took our jar up a mountain to 10,000 ft. above sea level and then sealed it, the total pressure would only be 10.1 PSI.

PO = 2.02 PSI, PN = 8.08 PSI, PT = 10.1 PSI

The saturation pressure of water vapor is the partial pressure of water vapor at 100% humidity. 100% humidity/moisture is the point where liquid water and water vapor are in equilibrium, which means the water is evaporating into vapor and the vapor is condensing into liquid. Since water boils at 212°F at atmospheric pressure, the pressure Ps must go above atmospheric pressure when the temperature goes above 212°F. To maintain 100% humidity at 250°F would require a pressure near 30 PSI or two times atmospheric pressure.Regulating pressure and moisture control is a very important issue in industries.

Figure 2 shows the saturation pressure for water vs. temperature from 50°F to 550°F.

Water vapor saturation graph

As we shall see this rapid increase in saturation pressure above 212°F is why it is impossible to reach 100% RH at atmospheric pressure above 212°F. The physics definition of RH is expressed by the following equation:

%RH = Pw/Ps x 100

Pw is the partial pressure of water vapor in the air and Ps is the saturation pressure. Above 212°F Pw is equal to the atmospheric pressure when the moisture level is 100%, but Ps, the saturation pressure, increases rapidly with temperature. The graph in Figure 3 shows the maximum RH vs. temperature. Note that below 212°F it is possible to achieve 100% RH even though the % moisture in the air by volume is less than 100% (as shown on the graph in Figure 1). Above 212°F the maximum RH is less than 100% even when the atmosphere is 100% water vapor (100% moisture by volume).

Humidity and atmospheric pressure graph

At 400°F the maximum possible RH is 5.9%. At 700°F the maximum possible RH is .48%. Although there are instruments available to measure RH up to 400°F, it can be seen from the graphs of Figure 1 and Figure 3 that the relative humidity is a 7 useless and even misleading scale for indicating moisture control level above 212°F. An instrument that could measure relative humidity with an ±1% accuracy at 400°F would give us a measure of the % moisture by volume to an accuracy of ±1 part in 5.9 or ±17%.

The relative humidity/moisture scale gives us some surprising results at ordinary room temperature as well. Let us assume that the room we are in is at a temperature of 60° and the relative humidity is 50%. The % water vapor in the room at these conditions is .87%. If we turn on our electric heater and increase the room temperature to 75°F the RH will drop to 33% even though the % moisture by volume remains at .87%.

With this example we begin to get an idea of the difference between a relative moisture scale and an absolute moisture scale. The relative humidity changes when the temperature changes, but the % water vapor by volume does not change with temperature. It changes only when water vapor is added or removed from the atmosphere.

The atmosphere around us is composed of a mixture of gases in the following proportions when the air is totally dry:

Nitrogen . . . . . . . . . .   78.0807%
Oxygen . . . . . . . . . . .   20.9447%
Argon . . . . . . . . . . . .     0.9307%
Carbon Dioxide . . .    0.041332%
Neon . . . . . . . . . . . . .  0.00182%
Methane . . . . . . . . .   0.00015%
Hydrogen . . . . . . . .   0.00005%
Other trace gases . . .  0.000056%

Since air is seldom totally without water vapor, the above percentages change depending on the amount of water vapor that is mixed with other gases. As we have already stated, 50% RH @ 60°F corresponds to .87% water vapor. 50% RH @ 95°F corresponds to 2.8% moisture by volume, and 100% RH @ 95°F is a moisture level of 5.6% by volume.

The atmosphere inside a gas fired boiler will be very different than the atmosphere around us. Most of the oxygen will be used up to burn the fuel. The carbon in the fuel burns and becomes carbon dioxide and the hydrogen in the fuel burns and becomes water vapor. If the fuel was methane and the combustion air was totally dry (0% water vapor) the atmosphere in the boiler would be:

73% Nitrogen
18% Water vapor
9% Carbon Dioxide

At the high temperatures inside a boiler the relative humidity would be close to zero even though the % moisture by volume would be 18%.

When it is raining or snowing outside the relative humidity is nearly 100%. This is because the water vapor from the snow or water droplets will evaporate into the air as long as the RH is less than 100%. When the outside temperature is 10°F and it is snowing, the % moisture control in the air is about .2%, even though the relative humidity is near 100%. If we bring the air into our home and heat it to 72°F, the relative humidity drops to 7.59%. The % water vapor is still .2% if all we do is heat the air.

The previous examples have shown that % moisture by volume is an absolute scale and does not change with temperature. There are other absolute scales as well:

% Moisture by Volume, %MV
Grams per Cubic Meter, g/m3
Humidity Ratio (LB Water/LB Dry Air or g Water/g Dry Air), W
Specific Humidity (LB Water/LB Mixture or g Water/g Mixture), q
Dew Point Temperature, td

The % Moisture by Volume can be defined in a least two ways:

%MV = Number of H20 molecules per unit volume
Total number of molecules per unit volume

%MV = PW/PT
PW = Partial pressure
due to water vapor
PT = Total pressure
(usually atmospheric pressure)

In some countries a popular moisture monitor scale is grams of water vapor per cubic meter. This scale is based on the density of water vapor at standard conditions of temperature and pressure (STP). There are several different STP values that are given by various standards organizations. In this publication we will use the STP of the International Union of Pure and Applied Chemistry (IUPAC). The STP of the IUPAC is 0°C and 100kPa.

Pure water vapor (100% H2O by volume) can not exist at STP because 0.6% water vapor by volume has a dew point of 0°C at this pressure. Except for water vapor, all the constituents of air can exist as a gas at STP. We will use this fact in order to calculate a theoretical value for g/m3 of water vapor.

The density of air at STP is given as 1275.4 g/m3. The density of water vapor is 62.19% the density of air. If 100% water vapor could exist at STP it would have a density of 1275.4 times .6219 which equals 793.17 g/m3.

The last column on TABLE 1 is calculated using a value 7.9317 g/m3 for each 1.0% of water vapor by volume.

The humidity ratio is sometimes referred to as moisture content or the mixing ratio. It is the mass of water vapor per unit mass of dry air. The humidity ratio (W) can be calculated if the % moisture by volume (%MV) is known.

Humidity Ratio = W = .622 x %MV/(100-%MV)

This equation is valid only for the normal mixture of gases in the atmosphere. When a different mixture of gases is present as is found inside a boiler flue, the factor .622 must change. This factor is the ratio of the molecular weight of water vapor (18.015) to the average molecular weight of the other gases (28.965 in the case of air).

18.015/28.965 = .622

Note that the % moisture by volume scale is totally independent of the molecular weights of the other gases in the mixture, as in a boiler or direct fired oven.

Specific humidity is the ratio of the mass of water vapor to the total mass of the mixture of water vapor and dry air. The specific humidity (q) can be calculated if the % moisture by volume (%MV) is known.

Specific Humidity = q = .622 x %MV/[(100-%MV) + .622 x %MV]

The factor .622 is for normal air only. It must be corrected if the average molecular weight of the gases is different than air.

As we have shown in previous examples, when air below 212°F is cooled the relative humidity increases. The dew point is the temperature at which the relative moisture/humidity reaches 100%. The RH can not exceed 100%, so if we continue to cool air it will give up moisture in the form of condensation.

This is how dew forms, why a glass of ice water gets wet on the outside, and why condensation trails form behind aircraft at high altitudes (it is cold up there). If the dew point temperature is below 32°F, snow will form instead of rain or frost will form instead of dew. Below 32°F the dew point is sometimes called the frost point.

There is a direct correlation between the concentration of water vapor in the air and the dew point temperature. This is also true for other gases in the air. If we could cool the air to extremely low temperatures, carbon dioxide would condense into CO2 snow. By measuring the temperature at which this happens we could determine the concentration of CO2 in the air. The same is true of the nitrogen and oxygen in the air. Depending on the concentration of a gas we must reach its condensation point (dew point) to get it to condense into a liquid, or its frost point to get it to condense into a solid form.

The boiling points of the major components of air at atmospheric pressure are:

Water Vapor H2O 212°F Carbon Dioxide CO2 -108°F Oxygen O2 -297°F Nitrogen N2 -321°F

These temperatures are also the temperature at which a 100% concentration would liquify (dew point temperature). When the concentration of a gas in mixture is less than 100% the liquidization temperature becomes lower.

The point of this discussion is that there is nothing special about the way water vapor behaves compared to other gases in the atmosphere except that the dew point and frost point of water vapor occur at ordinary ambient temperatures.

Figure 4 gives the dew/frost point temperatures for low concentrations of moisture in the air.

Dew point temperature low moisture graph

Figure 5 gives the dew point temperature for medium and high concentrations of moisture in the air.

Dew point temperature high moisture graph

The dew point can be determined from the % moisture by volume by using a graph of the saturation pressure (Ps) of water vapor (as in Figure 2) or a table of Ps vs. temperature.

Example:
If the % moisture by volume is 25%, what is the dew point temperature? First find the partial pressure of water vapor (Pw).

At atmospheric pressure and 25% MV, Pw= 25% of 14.7 PSI or 3.68 PSI. At the dew point RH = 100% so Pw must equal Ps. Go to Figure 2 and find Ps at 3.68 PSI and read the corresponding temperature from the graph (150°F).

Dew point is not quite an absolute scale. Dew point does change with pressure, and atmospheric pressure changes with altitude. The atmospheric pressure in Denver, Colorado is only 12.2 PSI (5200 ft. above sea level). At sea level water boils @ 211.9°F. In Denver water boils a 203°F. These two temperatures are dew point temperatures corresponding to 100% moisture by volume, but they are different due to change in total pressure.

Values for five different moisture scales are tabulated in Table 1 –
Moisture/Humidity Scales (found on pages 14 thru 19). This table can be used to< convert from one moisture scale to another.

Table 1 can be used to convert to or from relative humidity (RH) at temperatures below 212°F.

Example 1:
If the relative humidity (RH) is 50% and the temperature is 76°F, what is the % moisture by volume (%MV)?

First find the temperature of 76°F in the dew point column. Then look across to the %MV column and find 3%. This tells us that 100% RH at 76°F (dew point temperature) is 3% moisture by volume (MV%). 50% RH corresponds to 50% of 3% or 1.5% MV.

Example 2:
If the % moisture by volume is 4% and the temperature is 107°F, what is the RH?

First find the temperature of 107°F in the dew point column. Then look across to the %MV column and find 8% moisture by volume. Since 8% is the moisture level @ 100%RH @ 107°F, 4% MV corresponds to 50% RH.

Each moisture scale that we have discussed is preferred by people that work in specific disciplines.

When dealing with human comfort at normal ambient temperatures relative humidity/moisture is the preferred scale. Weather forecasters (meteorologists) and heating, ventilating and air conditioning engineers (HVAC) use relative humidity regularly.

This scale is the most intuitive of the absolute scales. People who work in the areas of combustion and pollution control engineering routinely measure flue gas constituents in % moisture by volume. Because of the linear nature of this scale it is easy to display and easy to regulate moisture control using normal set point P.I.D. controllers. For these reasons %MV is also used in the areas of food processing, product drying and product humidifying.

This scale is preferred by people who work in the product drying process since it can be directly used in energy calculations. This scale is also commonly used as the vertical axis on most psychometric charts. Because this scale is very non linear and goes thru many orders of magnitude, it is a difficult scale to display or use in a control mode. Since it is simple to convert between scales, %MV is used for display and control of the moisture level, and then converted to humidity ratio for calculations.

This scale is widely used by people who are concerned with the possibility of water condensing in pipes carrying compressed air or other gases. Dew point is also used by those working with sampling systems for the same reason. Condensation in lines can be avoided by maintaining the working fluid at a temperature well above its dew point or by drying a fluid to a dew point well below the lowest temperature to which it will be exposed.

 

 

% Moisture By Volume Humidity Ratio Specific Humidity Dew Point Temperature Grams Per Cubic Meter
% Moisture By Volume%Mv Humidity RatioW LB H2O LB Dry Air Specific Humidityq LB H2O LB Mixture Dew Point Temperaturetd Grams Per Cubic Meter g/m3
% Moisture By Volume0.0 Humidity Ratio0 Specific Humidity0 Dew Point Temperature-460°F(-273.3°C) Grams Per Cubic Meter 0.00
% Moisture By Volume0.1 Humidity Ratio0.000623 Specific Humidity0.000622 Dew Point Temperature-4°F(-20.0°C) Grams Per Cubic Meter 0.79
% Moisture By Volume0.2 Humidity Ratio0.00125 Specific Humidity0.00124 Dew Point Temperature10°F(-12.2°C) Grams Per Cubic Meter 1.59
% Moisture By Volume0.3 Humidity Ratio0.00187 Specific Humidity0.00187 Dew Point Temperature18°F(-7.8°C) Grams Per Cubic Meter 2.38
% Moisture By Volume0.4 Humidity Ratio0.00250 Specific Humidity0.00249 Dew Point Temperature24°F(-4.4°C) Grams Per Cubic Meter 3.17
% Moisture By Volume0.5 Humidity Ratio0.00313 Specific Humidity0.00312 Dew Point Temperature28°F(-2.2°C) Grams Per Cubic Meter 3.97
% Moisture By Volume0.6 Humidity Ratio0.00375 Specific Humidity0.00374 Dew Point Temperature32°F(0°C) Grams Per Cubic Meter 4.76
% Moisture By Volume0.7 Humidity Ratio0.00438 Specific Humidity0.00437 Dew Point Temperature36°F(2.2°C) Grams Per Cubic Meter 5.55
% Moisture By Volume0.8 Humidity Ratio0.00502 Specific Humidity0.00499 Dew Point Temperature39°F(3.9°C) Grams Per Cubic Meter 6.35
% Moisture By Volume0.9 Humidity Ratio0.00565 Specific Humidity0.00562 Dew Point Temperature42°F(5.6°C) Grams Per Cubic Meter 7.14
% Moisture By Volume1.0 Humidity Ratio0.00628 Specific Humidity0.00624 Dew Point Temperature45°F(7.2°C) Grams Per Cubic Meter 7.93
% Moisture By Volume2.0 Humidity Ratio0.0127 Specific Humidity0.0125 Dew Point Temperature64°F(17.8°C) Grams Per Cubic Meter 15.86
% Moisture By Volume3.0 Humidity Ratio0.0192 Specific Humidity0.0189 Dew Point Temperature76°F(24.4°C) Grams Per Cubic Meter 23.80
% Moisture By Volume4.0 Humidity Ratio0.0259 Specific Humidity0.0253 Dew Point Temperature85°F(29.4°C) Grams Per Cubic Meter 31.73
% Moisture By Volume5.0 Humidity Ratio0.0327 Specific Humidity0.0317 Dew Point Temperature92°F(33.3°C) Grams Per Cubic Meter 39.66
% Moisture By Volume6.0 Humidity Ratio0.0397 Specific Humidity0.0382 Dew Point Temperature98°F(36.7°C) Grams Per Cubic Meter 47.59
% Moisture By Volume7.0 Humidity Ratio0.0468 Specific Humidity0.0447 Dew Point Temperature103°F(39.4°C) Grams Per Cubic Meter 55.52
% Moisture By Volume8.0 Humidity Ratio0.0541 Specific Humidity0.0513 Dew Point Temperature107°F(41.7°C) Grams Per Cubic Meter 63.45
% Moisture By Volume9.0 Humidity Ratio0.0615 Specific Humidity0.0579 Dew Point Temperature111°F(43.9°C) Grams Per Cubic Meter 71.39
% Moisture By Volume10.0 Humidity Ratio0.0691 Specific Humidity0.0646 Dew Point Temperature115°F(46.1°C) Grams Per Cubic Meter 79.32
% Moisture By Volume11.0 Humidity Ratio0.0769 Specific Humidity0.0714 Dew Point Temperature118°F(47.8°C) Grams Per Cubic Meter 87.25
% Moisture By Volume12.0 Humidity Ratio0.0848 Specific Humidity0.0782 Dew Point Temperature121°F(49.4°C) Grams Per Cubic Meter 95.18
% Moisture By Volume13.0 Humidity Ratio0.0929 Specific Humidity0.085 Dew Point Temperature124°F(51.1°C) Grams Per Cubic Meter 103.11
% Moisture By Volume14.0 Humidity Ratio0.101 Specific Humidity0.0919 Dew Point Temperature127°F(52.8°C) Grams Per Cubic Meter 111.04
% Moisture By Volume15.0 Humidity Ratio0.110 Specific Humidity0.0989 Dew Point Temperature130°F(54.4°C) Grams Per Cubic Meter 118.98
% Moisture By Volume16.0 Humidity Ratio0.118 Specific Humidity0.106 Dew Point Temperature132°F(55.6°C) Grams Per Cubic Meter 126.91
% Moisture By Volume17.0 Humidity Ratio0.127 Specific Humidity0.113 Dew Point Temperature134°F(56.7°C) Grams Per Cubic Meter 134.84
% Moisture By Volume18.0 Humidity Ratio0.137 Specific Humidity0.120 Dew Point Temperature136°F(57.8°C) Grams Per Cubic Meter 142.77
% Moisture By Volume19.0 Humidity Ratio0.146 Specific Humidity0.127 Dew Point Temperature139°F(59.4°C) Grams Per Cubic Meter 150.70
% Moisture By Volume20.0 Humidity Ratio0.155 Specific Humidity0.135 Dew Point Temperature141°F(60.6°C) Grams Per Cubic Meter 158.63
% Moisture By Volume21.0 Humidity Ratio0.165 Specific Humidity0.142 Dew Point Temperature143°F(61.7°C) Grams Per Cubic Meter 166.57
% Moisture By Volume22.0 Humidity Ratio0.175 Specific Humidity0.149 Dew Point Temperature144°F(62.2°C) Grams Per Cubic Meter 174.50
% Moisture By Volume23.0 Humidity Ratio0.186 Specific Humidity0.157 Dew Point Temperature146°F(63.3°C) Grams Per Cubic Meter 182.43
% Moisture By Volume24.0 Humidity Ratio0.196 Specific Humidity0.164 Dew Point Temperature148°F(64.4°C) Grams Per Cubic Meter 190.36
% Moisture By Volume25.0 Humidity Ratio0.207 Specific Humidity0.172 Dew Point Temperature150°F(65.6°C) Grams Per Cubic Meter 198.29
% Moisture By Volume26.0 Humidity Ratio0.219 Specific Humidity0.179 Dew Point Temperature151°F(66.1°C) Grams Per Cubic Meter 206.22
% Moisture By Volume27.0 Humidity Ratio0.230 Specific Humidity0.187 Dew Point Temperature153°F(67.2°C) Grams Per Cubic Meter 214.16
% Moisture By Volume28.0 Humidity Ratio0.242 Specific Humidity0.195 Dew Point Temperature154°F(67°C) Grams Per Cubic Meter 222.09
% Moisture By Volume29.0 Humidity Ratio0.254 Specific Humidity0.203 Dew Point Temperature156°F(68.9°C) Grams Per Cubic Meter 230.02
% Moisture By Volume30.0 Humidity Ratio0.267 Specific Humidity0.210 Dew Point Temperature157°F(69.4°C) Grams Per Cubic Meter 237.95
% Moisture By Volume31.0 Humidity Ratio0.279 Specific Humidity0.218 Dew Point Temperature158°F(70.0°C) Grams Per Cubic Meter 245.88
% Moisture By Volume32.0 Humidity Ratio0.293 Specific Humidity0.226 Dew Point Temperature160°F(71.1°C) Grams Per Cubic Meter 253.81
% Moisture By Volume33.0 Humidity Ratio0.306 Specific Humidity0.235 Dew Point Temperature161°F(71.7°C) Grams Per Cubic Meter 261.75
% Moisture By Volume34.0 Humidity Ratio0.320 Specific Humidity0.243 Dew Point Temperature162°F(72.2°C) Grams Per Cubic Meter 269.68
% Moisture By Volume35.0 Humidity Ratio0.335 Specific Humidity0.251 Dew Point Temperature163°F(72.8°C) Grams Per Cubic Meter 277.61
% Moisture By Volume36.0 Humidity Ratio0.350 Specific Humidity0.259 Dew Point Temperature165°F(73.9°C) Grams Per Cubic Meter 285.54
% Moisture By Volume37.0 Humidity Ratio0.365 Specific Humidity0.268 Dew Point Temperature166°F(74.4°C) Grams Per Cubic Meter 293.47
% Moisture By Volume38.0 Humidity Ratio0.381 Specific Humidity0.276 Dew Point Temperature167°F(75.0°C) Grams Per Cubic Meter 301.40
% Moisture By Volume39.0 Humidity Ratio0.398 Specific Humidity0.285 Dew Point Temperature168°F(75.6°C) Grams Per Cubic Meter 309.34
% Moisture By Volume40.0 Humidity Ratio0.415 Specific Humidity0.293 Dew Point Temperature169°F(76.1°C) Grams Per Cubic Meter 317.27
% Moisture By Volume41.0 Humidity Ratio0.432 Specific Humidity0.302 Dew Point Temperature170°F(76.7°C) Grams Per Cubic Meter 325.20
% Moisture By Volume42.0 Humidity Ratio0.450 Specific Humidity0.311 Dew Point Temperature171°F(77.2°C) Grams Per Cubic Meter 333.13
% Moisture By Volume43.0 Humidity Ratio0.469 Specific Humidity0.319 Dew Point Temperature172°F(77.8°C) Grams Per Cubic Meter 341.06
% Moisture By Volume44.0 Humidity Ratio0.489 Specific Humidity0.328 Dew Point Temperature173°F(78.3°C) Grams Per Cubic Meter 348.99
% Moisture By Volume45.0 Humidity Ratio0.509 Specific Humidity0.337 Dew Point Temperature174°F(78.9°C) Grams Per Cubic Meter 356.93
% Moisture By Volume46.0 Humidity Ratio0.530 Specific Humidity0.346 Dew Point Temperature175°F(79.4°C) Grams Per Cubic Meter 364.86
% Moisture By Volume47.0 Humidity Ratio0.552 Specific Humidity0.355 Dew Point Temperature176°F(80.0°C) Grams Per Cubic Meter 372.79
% Moisture By Volume48.0 Humidity Ratio0.574 Specific Humidity0.365 Dew Point Temperature177°F(80.6°C) Grams Per Cubic Meter 351.22
% Moisture By Volume49.0 Humidity Ratio0.598 Specific Humidity0.374 Dew Point Temperature178°F(81.1°C) Grams Per Cubic Meter 388.65
% Moisture By Volume50.0 Humidity Ratio0.622 Specific Humidity0.383 Dew Point Temperature179°F(81.7°C) Grams Per Cubic Meter 396.59
% Moisture By Volume51.0 Humidity Ratio0.647 Specific Humidity0.393 Dew Point Temperature180°F(82.2°C) Grams Per Cubic Meter 404.52
% Moisture By Volume52.0 Humidity Ratio0.674 Specific Humidity0.403 Dew Point Temperature181°F(82.8°C) Grams Per Cubic Meter 412.45
% Moisture By Volume53.0 Humidity Ratio0.701 Specific Humidity0.412 Dew Point Temperature182°F(83.3°C) Grams Per Cubic Meter 420.38
% Moisture By Volume54.0 Humidity Ratio0.730 Specific Humidity0.422 Dew Point Temperature182°F(83.3°C) Grams Per Cubic Meter 428.31
% Moisture By Volume55.0 Humidity Ratio0.760 Specific Humidity0.432 Dew Point Temperature183°F(83.9°C) Grams Per Cubic Meter 436.24
% Moisture By Volume56.0 Humidity Ratio0.792 Specific Humidity0.442 Dew Point Temperature184°F(84.4°C) Grams Per Cubic Meter 444.18
% Moisture By Volume57.0 Humidity Ratio0.824 Specific Humidity0.452 Dew Point Temperature185°F(85.0°C) Grams Per Cubic Meter 452.11
% Moisture By Volume58.0 Humidity Ratio0.859 Specific Humidity0.462 Dew Point Temperature186°F(85.6°C) Grams Per Cubic Meter 460.04
% Moisture By Volume59.0 Humidity Ratio0.895 Specific Humidity0.472 Dew Point Temperature187°F(86.1°C) Grams Per Cubic Meter 467.97
% Moisture By Volume60.0 Humidity Ratio0.933 Specific Humidity0.483 Dew Point Temperature187°F(86.1°C) Grams Per Cubic Meter 475.90
% Moisture By Volume61.0 Humidity Ratio0.973 Specific Humidity0.493 Dew Point Temperature188°F(86.7°C) Grams Per Cubic Meter 483.83
% Moisture By Volume62.0 Humidity Ratio1.01 Specific Humidity0.504 Dew Point Temperature189°F(87.7°C) Grams Per Cubic Meter 491.77
% Moisture By Volume63.0 Humidity Ratio1.06 Specific Humidity0.514 Dew Point Temperature190°F(87.8°C) Grams Per Cubic Meter 499.70
% Moisture By Volume64.0 Humidity Ratio1.11 Specific Humidity0.525 Dew Point Temperature190°F(87.8°C) Grams Per Cubic Meter 507.63
% Moisture By Volume65.0 Humidity Ratio1.16 Specific Humidity0.536 Dew Point Temperature191°F(88.3°C) Grams Per Cubic Meter 515.56
% Moisture By Volume66.0 Humidity Ratio1.21 Specific Humidity0.547 Dew Point Temperature192°F(88.9°C) Grams Per Cubic Meter 523.49
% Moisture By Volume67.0 Humidity Ratio1.26 Specific Humidity0.558 Dew Point Temperature192°F(88.9°C) Grams Per Cubic Meter 531.42
% Moisture By Volume68.0 Humidity Ratio1.32 Specific Humidity0.569 Dew Point Temperature193°F(89.4°C) Grams Per Cubic Meter 539.36
% Moisture By Volume69.0 Humidity Ratio1.38 Specific Humidity0.581 Dew Point Temperature194°F(90.0°C) Grams Per Cubic Meter 547.29
% Moisture By Volume70.0 Humidity Ratio1.45 Specific Humidity0.592 Dew Point Temperature194°F(90.0°C) Grams Per Cubic Meter 555.22
% Moisture By Volume71.0 Humidity Ratio1.52 Specific Humidity0.604 Dew Point Temperature195°F(90.6°C) Grams Per Cubic Meter 563.15
% Moisture By Volume72.0 Humidity Ratio1.60 Specific Humidity0.615 Dew Point Temperature196°F(91.1°C) Grams Per Cubic Meter 571.08
% Moisture By Volume73.0 Humidity Ratio1.68 Specific Humidity0.627 Dew Point Temperature197°F(91.7°C) Grams Per Cubic Meter 579.01
% Moisture By Volume74.0 Humidity Ratio1.77 Specific Humidity0.639 Dew Point Temperature197°F(91.7°C) Grams Per Cubic Meter 586.95
% Moisture By Volume75.0 Humidity Ratio1.87 Specific Humidity0.651 Dew Point Temperature198°F(92.2°C) Grams Per Cubic Meter 594.88
% Moisture By Volume76.0 Humidity Ratio1.97 Specific Humidity0.663 Dew Point Temperature198°F(92.2°C) Grams Per Cubic Meter 602.81
% Moisture By Volume77.0 Humidity Ratio2.08 Specific Humidity0.676 Dew Point Temperature199°F(92.8°C) Grams Per Cubic Meter 610.74
% Moisture By Volume78.0 Humidity Ratio2.21 Specific Humidity0.688 Dew Point Temperature200°F(93.3°C) Grams Per Cubic Meter 618.67
% Moisture By Volume79.0 Humidity Ratio2.34 Specific Humidity0.701 Dew Point Temperature200°F(93.3°C) Grams Per Cubic Meter 626.60
% Moisture By Volume80.0 Humidity Ratio2.49 Specific Humidity0.713 Dew Point Temperature201°F(93.9°C) Grams Per Cubic Meter 634.54
% Moisture By Volume81.0 Humidity Ratio2.65 Specific Humidity0.726 Dew Point Temperature201°F(93.9°C) Grams Per Cubic Meter 642.47
% Moisture By Volume82.0 Humidity Ratio2.83 Specific Humidity0.739 Dew Point Temperature202°F(94.4°C) Grams Per Cubic Meter 650.40
% Moisture By Volume83.0 Humidity Ratio3.04 Specific Humidity0.752 Dew Point Temperature203°F(95.0°C) Grams Per Cubic Meter 658.33
% Moisture By Volume84.0 Humidity Ratio3.27 Specific Humidity0.766 Dew Point Temperature203°F(95.0°C) Grams Per Cubic Meter 666.26
% Moisture By Volume85.0 Humidity Ratio3.52 Specific Humidity0.779 Dew Point Temperature204°F(95.6°C) Grams Per Cubic Meter 674.19
% Moisture By Volume86.0 Humidity Ratio3.82 Specific Humidity0.793 Dew Point Temperature204°F(95.6°C) Grams Per Cubic Meter 682.13
% Moisture By Volume87.0 Humidity Ratio4.16 Specific Humidity0.806 Dew Point Temperature205°F(96.1°C) Grams Per Cubic Meter 690.06
% Moisture By Volume88.0 Humidity Ratio4.56 Specific Humidity0.820 Dew Point Temperature206°F(96.7°C) Grams Per Cubic Meter 697.99
% Moisture By Volume89.0 Humidity Ratio5.03 Specific Humidity0.830 Dew Point Temperature206°F(96.7°C) Grams Per Cubic Meter 705.92
% Moisture By Volume90.0 Humidity Ratio5.60 Specific Humidity0.848 Dew Point Temperature207°F(97.2°C) Grams Per Cubic Meter 713.85
% Moisture By Volume91.0 Humidity Ratio6.29 Specific Humidity0.863 Dew Point Temperature207°F(97.2°C) Grams Per Cubic Meter 721.78
% Moisture By Volume92.0 Humidity Ratio7.15 Specific Humidity0.877 Dew Point Temperature208°F(97.8°C) Grams Per Cubic Meter 729.72
% Moisture By Volume93.0 Humidity Ratio8.26 Specific Humidity0.892 Dew Point Temperature208°F(97.8°C) Grams Per Cubic Meter 737.65
% Moisture By Volume94.0 Humidity Ratio9.74 Specific Humidity0.907 Dew Point Temperature209°F(98.3°C) Grams Per Cubic Meter 745.58
% Moisture By Volume95.0 Humidity Ratio11.80 Specific Humidity0.922 Dew Point Temperature209°F(98.3°C) Grams Per Cubic Meter 753.51
% Moisture By Volume96.0 Humidity Ratio14.90 Specific Humidity0.937 Dew Point Temperature210°F(98.9°C) Grams Per Cubic Meter 761.44
% Moisture By Volume97.0 Humidity Ratio20.10 Specific Humidity0.953 Dew Point Temperature210°F(98.9°C) Grams Per Cubic Meter 769.37
% Moisture By Volume98.0 Humidity Ratio30.50 Specific Humidity0.968 Dew Point Temperature211°F(99.4°C) Grams Per Cubic Meter 777.31
% Moisture By Volume99.0 Humidity Ratio61.60 Specific Humidity0.984 Dew Point Temperature211°F(99.4°C) Grams Per Cubic Meter 785.24
% Moisture By Volume100.0 Humidity Ratio? Specific Humidity1 Dew Point Temperature212°F(100.0°C) Grams Per Cubic Meter 793.17