Transport in Plants

3. Factors Affecting Transpiration

Learning outcomes
  • I can identify environmental factors that affect transpiration.
  • I can explain how temperature influences transpiration rates.
  • I can describe the effects of humidity on water loss.
  • I can explain how wind speed affects transpiration.
  • I can predict how changing environmental conditions influence plant water loss.

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What Is Transpiration?

Transpiration is the loss of water vapour from the leaves and other aerial parts of a plant.

Most transpiration occurs through tiny openings in leaves called:

stomata

Water moves from the roots, through the plant, and eventually into the atmosphere.

A simplified pathway is:

soil → roots → xylem → leaves → stomata → atmosphere

Transpiration is therefore part of the continuous movement of water through a plant.


The Transpiration Stream

Water absorbed by the roots moves upward through tubes called:

xylem vessels

This movement of water through the plant is called the:

transpiration stream

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The transpiration stream helps transport:

  • water
  • dissolved mineral ions

from the roots to the leaves and other parts of the plant.


How Does Water Leave a Leaf?

Water arrives in the leaf through the:

xylem

It moves into cells in the leaf.

Some water evaporates from moist cell surfaces into the air spaces inside the leaf.

Water vapour then diffuses through the stomata into the surrounding atmosphere.

The sequence is:

xylem → mesophyll cells → evaporation → leaf air spaces → stomata → atmosphere


Evaporation and Diffusion

Two important processes are involved in transpiration.

Evaporation

Liquid water changes into:

water vapour

Diffusion

Water vapour moves from an area of:

higher water-vapour concentration

to an area of:

lower water-vapour concentration

The air spaces inside a leaf are usually humid.

If the surrounding air is drier, water vapour diffuses out through the stomata.

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Stomata

Stomata are microscopic pores in the epidermis of leaves.

A single pore is called a:

stoma

Each stoma is surrounded by:

guard cells

Guard cells can change shape and influence whether the stomatal pore is:

  • open
  • partly open
  • closed

Stomata allow gases to move between the leaf and atmosphere.


Why Do Plants Have Stomata?

Plants need carbon dioxide for:

photosynthesis

Carbon dioxide enters through stomata.

However, when stomata are open, water vapour can also escape.

This creates an important biological trade-off:

open stomata → CO₂ enters more easily, but water can also be lost

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Plants therefore have mechanisms that help regulate stomatal opening.


What Is Transpiration Rate?

Transpiration rate describes how quickly a plant loses water through transpiration.

For example, we could measure:

water lost per hour

or use another measurement that estimates the rate of water loss.

Transpiration rate is affected by environmental conditions.

Major factors include:

  • temperature
  • humidity
  • wind speed
  • light intensity

Temperature

In general:

higher temperature → higher transpiration rate

Why?

At higher temperatures, water molecules have greater average kinetic energy.

This generally increases the rate of:

evaporation

from moist surfaces inside the leaf.

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More water vapour becomes available in the leaf air spaces and can diffuse out through open stomata.


Temperature and Particle Movement

At a higher temperature:

water molecules have greater average kinetic energy

↓

evaporation generally increases

↓

more water vapour enters leaf air spaces

↓

water vapour diffuses through stomata

↓

transpiration rate generally increases

This connects transpiration to the particle model.


Temperature Example

Imagine two identical plants.

Plant A is kept at:

20°C

Plant B is kept at:

30°C

All other conditions are kept approximately the same.

We would generally predict:

Plant B has the higher transpiration rate.

This is because the higher temperature promotes evaporation.


Extremely High Temperatures

The relationship is not always as simple as:

hotter = unlimited increase in transpiration

Under hot, dry conditions, a plant may begin losing water faster than its roots can replace it.

The plant may respond by closing some stomata.

Therefore, under severe water stress:

stomatal closure can reduce transpiration

This is an example of how biological systems can modify simple physical relationships.


Humidity

Humidity describes the amount of water vapour in the air.

Humidity strongly affects the concentration gradient for water vapour between:

inside the leaf

and:

the surrounding air

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Low Humidity

Low humidity means the surrounding air is relatively dry.

Inside the leaf:

high water-vapour concentration

Outside the leaf:

lower water-vapour concentration

This creates a relatively steep concentration gradient.

Therefore:

low humidity → steeper water-vapour gradient → faster diffusion → higher transpiration


High Humidity

When humidity is high, the surrounding air already contains substantial water vapour.

The difference between the leaf and surrounding air becomes smaller.

Therefore:

high humidity → smaller water-vapour gradient → slower diffusion → lower transpiration


Comparing Humidity

Imagine two identical plants.

Plant A:

30% relative humidity

Plant B:

90% relative humidity

If other conditions are the same, Plant A would generally lose water more rapidly.

Why?

Because the surrounding air is much drier.


Humidity and Diffusion

Remember:

diffusion occurs down a concentration gradient

A larger difference in water-vapour concentration generally produces faster net diffusion.

Therefore:

dry air

creates a larger gradient.

humid air

creates a smaller gradient.

This is why humidity has such a strong influence on transpiration.


Wind Speed

Wind also affects transpiration.

In general:

higher wind speed → higher transpiration rate

To understand why, we need to consider the air immediately surrounding the leaf.

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The Boundary Layer

As water vapour leaves a leaf, the air immediately next to the leaf becomes more humid.

This creates a thin region of relatively still, humid air called the:

boundary layer

The boundary layer reduces the water-vapour concentration gradient between the leaf and the surrounding air.

This can slow further water loss.


What Does Wind Do?

Moving air removes some of the humid air surrounding the leaf.

Therefore:

wind removes humid boundary layer

↓

drier air replaces it

↓

water-vapour concentration gradient increases

↓

diffusion increases

↓

transpiration increases


Still Air

In still conditions, humid air can accumulate around the leaf.

Therefore:

still air → thicker humid boundary layer → smaller gradient → slower transpiration


Windy Air

In windy conditions, the humid boundary layer is continually disturbed or removed.

Therefore:

windy air → thinner boundary layer → steeper gradient → faster transpiration


Wind Speed Example

Plant A is placed in still air.

Plant B is placed in front of a gently operating fan.

Everything else is kept constant.

We would generally predict:

Plant B loses water faster.

The fan removes humid air from around the leaves.


Very Strong Wind

Extremely strong wind can sometimes produce more complicated responses.

For example, strong wind may:

  • cause stomata to close
  • damage leaves
  • increase water stress

Therefore, the simple relationship:

more wind → more transpiration

is most useful when comparing moderate environmental changes while other factors remain controlled.


Light Intensity

Although the main targets emphasize temperature, humidity, and wind, another important environmental factor is:

light intensity

In many plants:

greater light intensity → greater stomatal opening → increased transpiration

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Stomata commonly open in light because carbon dioxide is required for photosynthesis.

Open stomata also allow more water vapour to escape.


Light and Transpiration

The general relationship is:

increased light

↓

stomata tend to open

↓

greater pathway for water vapour diffusion

↓

transpiration generally increases

At night, stomata of many plants partially or mostly close.

This generally reduces transpiration.

There are exceptions among plants with different photosynthetic adaptations.


The Four Major Factors

A useful summary is:

Environmental Factor Change General Effect on Transpiration
Temperature Increases Increases
Humidity Increases Decreases
Wind speed Increases Increases
Light intensity Increases Usually increases

These relationships describe general trends, assuming other conditions remain reasonably similar.


A Simple Memory Pattern

Conditions that tend to increase transpiration are:

Hot + Dry + Windy + Bright

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Conditions that tend to decrease transpiration are:

Cool + Humid + Still + Dark

This is a useful starting point for predictions.


Predicting Transpiration

Consider a plant on a:

hot, dry, windy afternoon

Temperature:

high

Humidity:

low

Wind:

high

All three factors tend to:

increase transpiration

Therefore, we predict:

a high rate of water loss


Example 2: Cool and Humid

A plant is placed in:

cool, humid, still air

Temperature:

low → decreases evaporation

Humidity:

high → decreases the water-vapour gradient

Wind:

low → allows a humid boundary layer to remain

Prediction:

low transpiration rate


Example 3: Hot but Humid

Suppose conditions are:

high temperature + high humidity

Temperature tends to:

increase transpiration

Humidity tends to:

decrease transpiration

The factors are working in opposite directions.

Without more information, we cannot always determine exactly how large the overall change will be.

This is an important scientific idea:

multiple variables can influence the same process simultaneously.


Example 4: Cool but Windy

Conditions:

low temperature + high wind speed

Lower temperature tends to:

decrease transpiration

Wind tends to:

increase transpiration

Again, the factors act in opposite directions.

We should avoid assuming that one factor always determines the final result.


Environmental Factors Interact

In nature, temperature, humidity, wind, and light do not normally change independently.

For example, a sunny afternoon may involve:

  • increased light
  • increased temperature
  • decreased relative humidity
  • increased wind

Several factors may therefore increase transpiration simultaneously.

This can produce rapid water loss.


Why Does Transpiration Matter?

Transpiration is not simply wasted water.

It contributes to several important processes.

Water transport

Transpiration helps maintain movement of water through the xylem.

Mineral transport

Mineral ions dissolved in water are transported from roots toward other plant tissues.

Cooling

Evaporation of water from leaves can remove thermal energy.

Water supply

Water transported to leaves is needed for processes including photosynthesis.


Transpiration and Cooling

Evaporation requires energy.

When water evaporates from leaf surfaces, thermal energy is transferred.

This can help cool the leaf.

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This is similar to the cooling effect of:

sweating in humans

Both involve evaporative cooling.


The Problem of Excessive Water Loss

Plants require water for:

  • photosynthesis
  • transport
  • maintaining cell turgor
  • biochemical reactions
  • growth

If transpiration becomes too rapid:

water loss > water absorption

The plant may become water stressed.


Turgor Pressure

Plant cells contain large vacuoles.

When cells contain sufficient water, internal pressure helps keep tissues firm.

This is called:

turgor pressure

If too much water is lost:

cells lose water

↓

turgor decreases

↓

leaves and stems may wilt

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5

Wilting

Wilting occurs when plant tissues lose enough turgor that leaves and stems become less rigid.

Wilting can reduce:

  • leaf exposure to sunlight
  • stomatal opening
  • photosynthesis

Temporary wilting may be reversible if water becomes available.

Prolonged severe water shortage can damage tissues.


Plants Can Reduce Water Loss

Plants have several mechanisms and adaptations that reduce excessive transpiration.

These can include:

  • closing stomata
  • waxy cuticles
  • reduced leaf area
  • hairs on leaves
  • sunken stomata
  • rolled leaves

These features are particularly important in plants living in dry environments.


The Waxy Cuticle

Leaves are covered by a protective layer called the:

cuticle

The cuticle contains waxy substances that reduce water loss directly through the epidermis.

https://images.openai.com/static-rsc-4/Zo4g2tuPU-1xuKtnFCdoqOPejFKh3GReOFLheKMiJFlPvK5ss55pBykOhSEzZV16vkrismhiBj4bAfC2RL7rrvqBLeCAL2SFreNRDPaFj1pDkb584ZlSJPTnVGdevskISs694XA7ENaNCZymKnS917-qJ1vXeyTZX6ZmsAiRRSUmbpMsufAXeC2qeoij9RN4?purpose=fullsize
 
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5

Plants adapted to dry environments often have particularly thick waxy cuticles.


Sunken Stomata

Some plants have stomata located in small depressions.

These are called:

sunken stomata

Water vapour can accumulate inside the depression.

This creates a more humid microenvironment.

Therefore:

sunken stomata → more humid trapped air → smaller concentration gradient → reduced transpiration


Leaf Hairs

Leaf hairs can trap relatively still air near the leaf surface.

This helps maintain a:

humid boundary layer

Therefore:

leaf hairs → reduced air movement → reduced water-vapour gradient → reduced transpiration

This is similar to the effect of still air.


Reduced Leaf Area

Some plants living in dry environments have very small leaves.

Others have leaves modified into:

spines

Smaller leaf area means:

less surface area for water loss

This helps reduce transpiration.


Desert Plant Adaptations

Plants adapted to dry conditions are called:

xerophytes

https://images.openai.com/static-rsc-4/3BvpALIm-gkzArobdoqi2PUFATUongzC-5Urrfp-qZKtNAQFGJ4KUlhR8WTHtf7VVlE0SHGOnFsdjNjLtPrU9iMFDr35nc43TmZGLInndiBH2aw4GxM4RuFPoErBzBB9QlDjvCdqKdMaI8ot6N77eD4w26Hw2ECgAY-95lkkRH-zaYVJT9p7VNbHMa3ps3Rp?purpose=fullsize
 
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6

Possible adaptations include:

  • thick waxy cuticles
  • reduced leaves
  • sunken stomata
  • leaf hairs
  • water-storage tissues
  • extensive root systems

These adaptations help plants survive where water is limited.


Measuring Transpiration

Scientists can investigate transpiration using an instrument called a:

potometer

A potometer measures the rate at which a plant shoot takes up water.

https://images.openai.com/static-rsc-4/Q1xsdPBOCjYl_VuZvuz6ak8qP4L1KcUX6af8s8qUmD6ZThIxcoqPYKs1q4Xx6Wnmj_Nbmq-xMTWg_6_gtkacVGNnR6Juj2dJ33KdzPiH9xyOpNpkVjiUcay_Kjk6i-Y3-xdakV_PLTQb0dMlut0FDaBVODplCG6NkG_naMT6gnu_T8pXKln0u_9j-mG3XhrB?purpose=fullsize
 
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4

Water uptake is used as an estimate of transpiration rate.

It is not exactly the same as directly measuring water loss because some absorbed water is used by the plant.


Bubble Potometer

A common potometer contains:

  • leafy shoot
  • water-filled tubing
  • capillary tube
  • air bubble
  • scale

As the shoot takes up water, the air bubble moves along the capillary tube.

Faster bubble movement indicates:

faster water uptake

which usually indicates:

higher transpiration rate


Calculating Water Uptake

Suppose an air bubble moves:

24 mm in 6 minutes

Average movement rate:

24 ÷ 6 = 4 mm/min

If another condition produces:

8 mm/min

the water uptake is faster under the second condition.

This can be used to compare environmental factors.


Investigating Temperature

To investigate temperature:

Independent variable:

temperature

Dependent variable:

rate of water uptake

Control variables might include:

  • plant species
  • leaf area
  • light intensity
  • wind speed
  • humidity
  • duration of experiment

Only one factor should intentionally change.


Investigating Wind Speed

A fan can be used to investigate the effect of air movement.

For example:

Trial 1:

fan off

Trial 2:

fan at low speed

Trial 3:

fan at higher speed

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4

Prediction:

As wind speed increases, water uptake will generally increase because humid air is removed from around the leaves.


Investigating Humidity

Humidity can be changed by altering the moisture in the air surrounding the plant.

Prediction:

higher humidity → lower transpiration rate

because the water-vapour concentration gradient between the leaf and atmosphere becomes smaller.


Investigating Light Intensity

A lamp can be used to investigate light intensity.

However, there is an experimental problem.

A lamp can also:

heat the plant

Therefore, changing light intensity may accidentally change:

temperature

A good investigation must control this variable.


Designing a Fair Test

When investigating one factor:

change one variable

measure one outcome

keep other important factors constant

For example, when investigating wind speed:

Change:

wind speed

Measure:

water uptake

Keep constant:

  • temperature
  • humidity
  • light intensity
  • plant species
  • approximate leaf area

This improves the validity of the investigation.


Reliability

A single measurement may be affected by random variation.

Scientists can improve reliability by:

  • repeating measurements
  • conducting multiple trials
  • calculating a mean
  • identifying unusual results

For example:

Trial 1 = 4.2 mm/min

Trial 2 = 4.4 mm/min

Trial 3 = 4.3 mm/min

Mean:

(4.2 + 4.4 + 4.3) ÷ 3

= 4.3 mm/min


Graphing Transpiration Data

Experimental results can be represented using graphs.

For example:

x-axis: temperature

y-axis: transpiration rate

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A graph allows us to:

  • identify trends
  • compare conditions
  • detect anomalies
  • make predictions

Predicting a Temperature Graph

Within a normal physiological range, we would generally expect:

temperature increases → transpiration rate increases

The graph would therefore show an overall:

positive relationship

However, at extreme temperatures, stomatal closure or plant stress may alter the pattern.


Predicting a Humidity Graph

As humidity increases:

transpiration rate generally decreases

Therefore, we expect an overall:

negative relationship

High humidity reduces the water-vapour concentration gradient.


Predicting a Wind-Speed Graph

As moderate wind speed increases:

transpiration rate generally increases

The graph should show an overall positive relationship.

Wind removes humid air from the boundary layer surrounding the leaf.


Applying the Ideas: Greenhouses

Greenhouse growers can control environmental conditions such as:

  • temperature
  • humidity
  • ventilation
  • light
  • irrigation
https://images.openai.com/static-rsc-4/yv388H8hWzl5GQnCKhDSghXaZze6sgYwfZna5RMz_DKAFoPPLD82Rpo3I0Wx3WViqPcv6hsC01l4uAxwQbKK5TZY0HqPJuvxDdyUdvVP1kRxMoixqPGvC-V4BSMIpATib4zTz5dfMU8GmhdxGtDTFmJY8HlCPmxdOqZyqoOz1x3q0X_SwSz9G1olrHSehQEG?purpose=fullsize
 
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6

If a greenhouse becomes:

very hot + dry

plants may lose water rapidly.

Increasing humidity or reducing excessive temperature can reduce water loss.

Understanding transpiration therefore has practical importance in agriculture.


Applying the Ideas: Irrigation

Farmers need to consider environmental conditions when deciding how much water crops require.

Hot, dry, windy conditions can increase water loss.

Therefore, crops may require more water during periods of high transpiration.

This connects plant biology to:

  • agriculture
  • weather
  • water management
  • food production

Applying the Ideas: Indoor Plants

Imagine placing a houseplant beside:

a heater

The surrounding air may become:

  • warmer
  • drier

Both conditions can increase transpiration.

Therefore, the plant may require more frequent watering than the same plant in cooler, more humid conditions.


Applying the Ideas: Windy Conditions

A plant on an exposed balcony experiences strong air movement.

Wind removes the humid boundary layer around the leaves.

Therefore:

wind → increased concentration gradient → increased transpiration

The plant may lose water more rapidly than a similar plant in a sheltered location.


Connecting Transpiration to Diffusion

Transpiration provides an excellent biological example of diffusion.

Inside the leaf:

high water-vapour concentration

Outside the leaf:

usually lower water-vapour concentration

Therefore:

water vapour diffuses out

The size of this gradient is influenced by:

humidity and wind


Connecting Transpiration to Evaporation

Temperature affects transpiration partly because it affects:

evaporation

Higher temperatures increase the average kinetic energy of water molecules.

This increases the likelihood that molecules escape from liquid water into the gas phase.

Therefore:

temperature → evaporation → transpiration


Connecting Transpiration to Osmosis

Water entering plant roots moves through tissues partly by:

osmosis

Water then enters the xylem and travels upward.

Therefore, plant water transport connects several processes:

osmosis → xylem transport → evaporation → diffusion

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6

Connecting Transpiration to Photosynthesis

Plants need carbon dioxide for photosynthesis.

Carbon dioxide enters through:

stomata

But open stomata also allow:

water vapour to escape

Therefore, plants face a trade-off:

CO₂ uptake ↔ water conservation

This is one of the major challenges faced by land plants.


Common Misconception: Plants Lose Water Only When It Is Hot

Plants can transpire under many environmental conditions.

Temperature affects the rate of transpiration, but it is not the only factor.

Transpiration is also influenced by:

  • humidity
  • wind
  • light
  • stomatal opening
  • leaf structure

Common Misconception: High Humidity Increases Transpiration

High humidity generally:

decreases transpiration

because the air surrounding the leaf already contains substantial water vapour.

This reduces the concentration gradient.

Remember:

Dry air → faster water loss

Humid air → slower water loss


Common Misconception: Wind Stops Water Loss

Wind generally increases transpiration because it removes the humid boundary layer around the leaf.

Therefore:

wind → drier air beside leaf → steeper gradient → increased water loss


Common Misconception: Transpiration Is Completely Harmful

Water loss can become harmful if excessive.

However, transpiration also contributes to:

  • water movement
  • mineral transport
  • leaf cooling

Therefore, transpiration is a normal and important plant process.


Common Misconception: Potometers Directly Measure Transpiration

A potometer measures:

water uptake

It does not directly measure water leaving the leaf.

Because most water absorbed by a cut shoot is eventually lost through transpiration, water uptake provides a useful estimate.

But scientifically:

water uptake ≠ exactly the same as water loss


Challenge: Predict the Highest Transpiration

Four identical plants are placed under different conditions.

Plant A: cool, humid, still

Plant B: warm, humid, still

Plant C: warm, dry, windy

Plant D: cool, dry, still

Which would probably have the highest transpiration rate?

Plant C

because it combines:

  • higher temperature
  • low humidity
  • high wind speed

All three factors generally increase transpiration.


Challenge: Predict the Lowest Transpiration

Which plant would probably have the lowest transpiration rate?

Plant A

because:

  • cool temperature reduces evaporation
  • high humidity reduces the concentration gradient
  • still air maintains the humid boundary layer

Did You Know?

A mature tree can move a surprisingly large amount of water from the soil into the atmosphere through transpiration.

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4

Across entire forests, transpiration contributes significantly to the movement of water into the atmosphere.

This means plant transpiration is not only important for individual plants.

It also contributes to the:

water cycle


Key Terms

  • Transpiration: Loss of water vapour from the aerial parts of a plant, mainly through stomata.
  • Transpiration rate: Rate at which water is lost through transpiration.
  • Transpiration stream: Movement of water through a plant from roots through xylem toward the leaves.
  • Xylem: Vascular tissue that transports water and mineral ions.
  • Stoma: Microscopic pore in the epidermis of a leaf.
  • Stomata: Plural of stoma.
  • Guard cells: Specialized cells that control stomatal opening.
  • Evaporation: Change of liquid water into water vapour.
  • Diffusion: Net movement of particles from higher concentration toward lower concentration.
  • Humidity: Amount of water vapour present in the air.
  • Relative humidity: Amount of water vapour present relative to the maximum possible at that temperature.
  • Concentration gradient: Difference in concentration between two regions.
  • Boundary layer: Thin layer of relatively still air surrounding a surface such as a leaf.
  • Turgor pressure: Pressure of cell contents against the cell wall resulting from water inside the cell.
  • Wilting: Loss of rigidity in plant tissues due to reduced turgor.
  • Cuticle: Waxy protective layer covering the epidermis of leaves and young stems.
  • Xerophyte: Plant adapted to dry environments.
  • Potometer: Apparatus used to estimate transpiration by measuring water uptake.
  • Independent variable: Variable deliberately changed in an investigation.
  • Dependent variable: Variable measured in response to the independent variable.
  • Control variable: Variable kept constant to make an investigation fair.

Key Relationships

Temperature:

↑ temperature → ↑ evaporation → generally ↑ transpiration

Humidity:

↑ humidity → ↓ water-vapour concentration gradient → ↓ transpiration

Wind:

↑ wind → boundary layer removed → ↑ concentration gradient → generally ↑ transpiration

Light:

↑ light → stomata tend to open → generally ↑ transpiration

Dry conditions:

low humidity → steep gradient → rapid diffusion of water vapour

Water stress:

water loss > water uptake → reduced turgor → wilting

Plant water pathway:

soil → roots → xylem → leaves → evaporation → stomata → atmosphere


Key Takeaways

  • Transpiration is the loss of water vapour from the aerial parts of a plant.
  • Most transpiration occurs through stomata in leaves.
  • Water moves from the soil through the roots and xylem to the leaves.
  • Water evaporates from moist surfaces inside the leaf.
  • Water vapour then diffuses through stomata into the atmosphere.
  • Transpiration rate is affected by environmental conditions.
  • Temperature, humidity, wind speed, and light intensity are important environmental factors.
  • Higher temperatures generally increase evaporation and therefore increase transpiration.
  • High humidity generally decreases transpiration.
  • Low humidity creates a larger water-vapour concentration gradient and increases water loss.
  • Wind generally increases transpiration by removing the humid boundary layer surrounding a leaf.
  • Still air allows humid air to remain near the leaf and reduces transpiration.
  • Increased light often increases transpiration because stomata tend to open.
  • A useful general rule is hot + dry + windy + bright = higher transpiration.
  • Cool + humid + still + dark = lower transpiration.
  • Environmental factors can work together or oppose one another.
  • Extreme environmental conditions can cause stomatal closure, making relationships more complex.
  • Transpiration contributes to water and mineral transport through the plant.
  • Evaporation during transpiration can help cool leaves.
  • Excessive water loss can cause cells to lose turgor and plants to wilt.
  • Plants can reduce water loss using stomatal closure and structural adaptations.
  • Xerophytes may have thick cuticles, sunken stomata, leaf hairs, or reduced leaves.
  • A potometer measures water uptake and can be used to estimate transpiration rate.
  • Experiments investigating transpiration should change one environmental factor while controlling the others.
  • Repeated measurements improve the reliability of experimental results.
  • Transpiration connects several biological processes, including osmosis, xylem transport, evaporation, diffusion, gas exchange, and photosynthesis.
  • The central idea is: environmental conditions change evaporation and diffusion, which changes how quickly a plant loses water.