What is the dew point if the dry bulb temperature is 20 C and the relative humidity is 17 %?

Answers

Answer 1

The dew point if the dry bulb temperature is 20°C and the relative humidity is 17 % is 1.6°C.

Dew point is the temperature at which air becomes saturated with water vapor and begins to condense. The dew point is a significant meteorological parameter that represents the measure of atmospheric humidity. The dew point is a critical component in calculating relative humidity and heat index.

It also plays a crucial role in predicting the possibility of dew, frost, and fog. Given the dry bulb temperature of 20 C and the relative humidity of 17%, we can calculate the dew point as follows:First, find the saturation vapor pressure using the equation:Es = 6.11 × 10(7.5T / (237.7 + T))where T is the temperature in degrees Celsius.So, Es = 6.11 × 10(7.5 × 20 / (237.7 + 20)) = 23.48 mmHg.

Next, find the actual vapor pressure using the formula: E = RH/100 × E_s where RH is the relative humidity as a percentage. So, E = 17/100 × 23.48 = 3.99 mmHg. Finally, we can calculate the dew point using the formula: Td = (237.7 × log10(E/6.11)) / (7.5 - log10(E/6.11))Td = (237.7 × log10(3.99/6.11)) / (7.5 - log10(3.99/6.11)) = 1.6°C. Therefore, the dew point is 1.6°C.

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Related Questions

Current Event on Biology Discussion
Find a news article with a publication date not older than 2018 about biology. List the website that vou found it on. List the author. List the publication date. Tell who was affected by the research and why do you think the research was important. Where was the research conducted. Summarize the article. Does the article remind you of anything? If it does what? Was there anything in the article that you wanted to know more about? If so what? If not why?

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I don’t know anything that is happening

How do you think hot paved roads affect the air above them?

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Answer:

Hot paved roads can have several effects on the air above them. Here are a few ways in which hot paved roads can impact the atmosphere:

Heat Island Effect: Hot paved roads contribute to the urban heat island effect, where urban areas experience higher temperatures compared to surrounding rural areas. The asphalt absorbs and retains heat from the sun, raising the temperature of the road surface. This, in turn, increases the air temperature in the vicinity, leading to a localized increase in temperature.

Increased Air Temperature: The hot surface of the road can cause the air directly above it to warm up. This can create a layer of warm air near the ground, which may result in higher ambient temperatures near the road. The increased air temperature can have implications for human comfort, energy consumption for cooling, and the overall microclimate of the area.

Altered Wind Patterns: Hot paved roads can influence wind patterns. The temperature difference between the road surface and the surrounding air can lead to the creation of convective currents. As the warm air rises from the road surface, it can affect local wind circulation patterns and potentially create small-scale convection cells. These altered wind patterns can have implications for local weather conditions.

Emissions and Air Quality: Hot paved roads can contribute to increased emissions and air pollution. The heat can accelerate the release of volatile organic compounds (VOCs) from the asphalt and other materials used in road construction. Additionally, higher temperatures can increase the rate of chemical reactions in vehicle exhaust, leading to higher levels of pollutants such as nitrogen oxides (NOx). These emissions can contribute to air pollution and have adverse effects on air quality in the area.

Atmospheric Stability: Hot paved roads can affect the stability of the lower atmosphere. The warm air rising from the road surface can create localized thermal updrafts, which can influence the stability of the surrounding air mass. This can impact the formation of clouds, the vertical mixing of pollutants, and the dispersion of pollutants in the atmosphere.

It's important to note that the specific effects of hot paved roads on the air can vary depending on factors such as local climate, urban design, traffic density, and the characteristics of the road surface.

Explanation:

blank is stored in a fossil fuel and released in the form of kinetic energy when burned

Answers

Answer:

Chemical energy.

Explanation:

Chemical energy is stored in a fossil fuel and released in the form of kinetic energy when burned  

Hope this helps!

Draw out a pedigree for the following information:
A set of parents are free from this disease. They have two children, a boy with the disease and a girl without the disease.
The boy gets married and has a boy and a girl free from the disease. The girl also get married and has three boys. Two of them
have the disease.
As best you can, determine the mode of inheritance for this disease. (Is it autosomal or on the X chromosome? Is it dominant or
recessive?) Justify your claim with evidence from your pedigree.

Answers

Pedigrees can be used to estimate the inheritance pattern of a gene. In the e xposed example, and because of the given information, there are two possible options for inheritance pattern: autosomal recessive or sex-linked.

What is a pedigree?

A Pedigree is the representation of a family's history. This graph is used to track a trait through different generations, and analyze the inheritance pattern of a particular gene and its expression.

It is a tool used to understand how genes are transmitted from the parental generation to the descendants, and what are the probabilities of  inheriting them.

In the e posed example, there are two options for the inheritance pattern in this case: One of them is autosomal recessive and the other one is recessive sex-linked.

We know it is a recessive traits because healthy individuals do not express it. So the recessive allele is the one transmitting the disease. You can tell this because, for instance, both parents are healthy but they have an affected child (the boy).

Option 1: The gene transmitting the affection can be autosomal recessive, and by chance only boys in the family got affected receiving only recessive alleles.

Option 2: The gene transmitting the affection can be recessive  X-linked, which is evident because only boyd got affected.

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Suppose in a strain of soybeans, high oil (H) content in the seeds is dominant to low oil content and four seeds (E) in a pod is dominant to two seeds in a pod. A farmer crosses two soybean plants, both with (High oil / four seeds: High oil / two seeds: Low oil / four seeds: Low oil / two seeds). What genotype were the parent plants?​

Answers

The genotype of the parent plants in this cross is HhEe.

Based on the given information, we can determine the genotypes of the parent plants by examining the phenotypes of their offspring.

Let's denote the high oil content allele as H and the low oil content allele as h. Similarly, let's denote the four seeds allele as E and the two seeds allele as e.

The given parent plants have the following phenotypes:

- High oil / four seeds (unknown genotype)

- High oil / two seeds (unknown genotype)

- Low oil / four seeds (unknown genotype)

- Low oil / two seeds (unknown genotype)

From this information, we can deduce the possible genotypes of the parent plants by analyzing the inheritance patterns observed in their offspring.

If we cross two plants with the genotype HhEe (High oil / four seeds), we would expect the following ratios in their offspring:

- High oil / four seeds: 9/16

- High oil / two seeds: 3/16

- Low oil / four seeds: 3/16

- Low oil / two seeds: 1/16

Since the observed ratio matches the given phenotypes of the parent plants, it is likely that both parent plants have the genotype HhEe (High oil / four seeds).

Therefore, the genotype of the parent plants in this cross is HhEe.

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the organisms that feed on dead and decaying matter are called
A. Saprotrophs
B. Autotrophs
C. Heterotrophs
D. Parasite ​

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The organisms that feed on dead and decaying matter are called Saprotrophs.

An organism that feeds on dead and decaying organic matter is called a saprotroph. These organisms are heterotrophic, which means that they obtain their food from other sources. They are important in the ecosystem because they break down dead organic matter and recycle it back into the soil, making nutrients available to other living organisms

Answer:

A. Saprotrophs

Explanation:

Saprotrophs are organisms that obtain their nutrients by feeding on dead and decaying matter. They play a crucial role in the ecosystem by decomposing organic material and recycling nutrients back into the environment.

These organisms secrete enzymes that break down complex organic compounds into simpler substances, such as sugars and amino acids, which they can absorb and utilize for their own growth and energy needs. Examples of saprotrophs include fungi (such as mushrooms and molds) and certain bacteria.

Unlike autotrophs, which can produce their own food through photosynthesis or chemosynthesis, saprotrophs rely on external sources of organic matter for their nutrition. They actively decompose dead plants, animals, and other organic materials, aiding in the process of nutrient recycling and decomposition.

Heterotrophs, on the other hand, are a broader category of organisms that obtain their nutrients by consuming other living or dead organisms. This includes saprotrophs, as well as other types of organisms such as herbivores, carnivores, and omnivores.

Parasites, meanwhile, are organisms that live in or on other organisms, known as hosts, and obtain their nutrients from the host while causing harm or damage to it. Unlike saprotrophs, parasites typically rely on a living host for their sustenance rather than feeding on dead and decaying matter.

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The image shows a food web.
Which organism is only a primary consumer in this web?
O A. Bird
O B. Caterpillar
O c. Fox
O D. Owl

Answers

The answer is B because it’s coming from the grass
Final answer:

The primary consumer in this food web would most likely be the caterpillar, since it typically eats plant matter and does not prey on other animals.

Explanation:

In a food web, the primary consumers eat only the producers. They are typically herbivores. In this case, it sounds like the caterpillar would be the only primary consumer, given that birds, foxes, and owls are generally omnivores or carnivores. The caterpillar typically consumes plant matter and does not prey on other animals. It would therefore occupy the second trophic level of the food web, consuming energy directly from the producers.

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Look at the incomplete equation below. What does Ek represent?

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In the given equation, Ek represents the kinetic energy of an object.

Kinetic energy (Ek) is a form of energy associated with the motion of an object. It is dependent on both the mass (m) and the velocity (v) of the object.

The equation Ek = (1/2)m[tex]v^2[/tex] represents the formula to calculate the kinetic energy of an object.

The symbol "Ek" is commonly used to represent kinetic energy in scientific calculations and equations. By plugging in the values of mass and velocity into the equation, one can calculate the amount of kinetic energy possessed by the object.

The kinetic energy of an object increases with both its mass and velocity. As the mass increases, the object has more particles in motion, contributing to higher kinetic energy.

Similarly, as the velocity increases, the speed at which the object moves also increases, resulting in greater kinetic energy.

Therefore, understanding and calculating kinetic energy is important in various scientific and engineering applications, such as studying the movement of objects, analyzing collisions, or designing efficient systems.

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Question

Look at the incomplete equation below. What does Ek represent?

Ek =----- x m x v2

Approximately how much energy is transferred from one step in a food chain to the next? .1% 1% 10% 90%

Answers

Approximately 10% of energy is transferred from one step in a food chain to the next.

A food chain is a sequence of organisms in which each depends on the next for food. The chain starts with producers, who are then eaten by primary consumers, which are then eaten by secondary consumers, and so on.

Energy flows up the chain, from lower to higher levels of trophic levels, meaning that the food chain in an ecosystem is unidirectional because the energy that moves through the food chain only travels in one direction, from the producers to the top-level consumers.

Approximately 10% of energy is transferred from one step in a food chain to the next. The 10% Rule describes the law of thermodynamics that regulates the transfer of energy from one trophic level to the next. This rule states that just about 10% of the energy available at a trophic level is transferred to the next trophic level.

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