What is energy in general?

Answer:

The process by which something absorbs or is absorbed by something else.

Question:

Which of the following parasites are small parasitic arachnids which feeds on the blood of mammals, birds and reptiles?

Answer: TICK.

Explanation: A tick is a tiny woodland arachnid of the suborder ixodida. They are external parasites and they live by feeding on the blood of mammals, reptiles, birds, and amphibians.

Answer:

Explanation:

An effect day in Pennsylvania is a day that highlights climate that will probably upset your typical every day calendar or schedule. At the point when the News 8 Tempest Group accept climate arrives at this limit, a yellow triangle with a shout imprint will show up on the figure demonstrating the climate will cause an effect. You may likewise observe the symbol utilized during a day-part figure when the News 8 Tempest Group accepts certain times may have a greater amount of an effect than others. An effect day's climate isn't viewed as outrageous or serious, perilous climate.  

Light downpour, day off, ice during a morning or night drive would be instances of effect climate. Most Pennsylvania workers can deal with driving in light downpour, day off, ice, however light downpour, day off, ice at the pinnacle of busy time can upset travel or cause mishaps because of the high volume of drivers. Thick mist over the Valley which could likewise modify a drive would be delegated an effect day.  

Moderate cold throughout the fall, winter, spring months, or warmth in the mid year months that may constrain open air presentation to the components would get this assignment.  

The Susquehanna Valley is a significant agrarian community for the locale. Pre-summer or late-summer ice or freezes that could harm or murder vegetation would fit into this class.  

Days that component consume bans from delayed droughts combined with solid breeze blasts likewise would be considered to conceivably make an effect a day ahead.

Answer: satellite is a artificial sub planet and every sub planet must around to it's main planet for their connect.

Explanation:

Satellite mainly 3types.

1. GEO (22,000mi away)

2. MEO (10,000mi away)

3. LEO (1,000-3,000mi away)

If any satellite will stabilised more then 22,000mi then it's can't around as a ring to world. And takes long time more then 24hours. And it's periodic time may disturbance.

Answer:

If you have enough forensic evidence than you can be able to figure out who committed the accident or the burglary

Explanation:

Please give BRAINLIEST ANSWER └[T‸T]┘

Answer:

a) -Cell Wall

- Plastids such as Chloroplasts

b) Please refer to Explanation

Explanation:

Organelle structure and components are mostly similar with both plant and animal cells, but in certain areas the differ, because they do different things to survive.

One of the ways they differ is their organelle content. There are some organalles that Plant cells have that Animal cells do not.

Two examples of them are;

- Cell Wall

- Plastids such as Chloroplasts

b) Cell Wall - Why does an Animal cell not need it?

Animal cells do not need cell walls for one reason, bones or rather a lack thereof.

Cell walls act as a sort of Exoskeleton for cells as they maintain the cell's shape. This leads to a rigidity that enables the plant to stand up on its own without the need for bones like in animals.

The velocity and pressure in a 2.6-cm diameter pipe on the second floor 5.0m above are 1.18m/s and  2.51 * 10^5 Pa

The given parameters are:

Start by calculating the radius using:

[tex]r = 0.5d[/tex]

So, we have:

[tex]r_1 = 0.5 \times 4cm[/tex]

[tex]r_1 = 2cm[/tex]

Express as meters

[tex]r_1 = 0.02m[/tex]

Next, calculate the area using:

[tex]A =\pi r^2[/tex]

So, we have:

[tex]A_1 = \pi \times 0.02^2[/tex]

[tex]A_1 = \pi \times 0.004[/tex]

[tex]A_1 = 0.004\pi[/tex]

Also from the question, we have:

[tex]d_2 = 2.6cm[/tex]

[tex]h = 5m[/tex]

Calculate the radius using:

[tex]r = 0.5d[/tex]

So, we have:

[tex]r_2 = 0.5 \times 2.6cm[/tex]

[tex]r_2 = 1.3cm[/tex]

Express as meters

[tex]r_2 = 0.013m[/tex]

The area is then calculated as:

[tex]A =\pi r^2[/tex]

So, we have:

[tex]A_2 = \pi \times 0.013^2[/tex]

[tex]A_2 = \pi \times 0.000169[/tex]

[tex]A_2 = 0.000169\pi[/tex]

The velocity is then calculated using:

[tex]A_1v_1 = A_2v_2[/tex]

Make v2 the subject

[tex]v_2 = \frac{A_1v_1}{A_2}[/tex]

So, we have:

[tex]v_2 = \frac{0.0004\pi \times 0.5}{0.000169\pi}[/tex]

[tex]v_2 = \frac{0.0004\times 0.5}{0.000169}[/tex]

[tex]v_2 = 1.18343195266[/tex]

Approximate

[tex]v_2 = 1.18[/tex]

The pressure is then calculated as follows:

[tex]P_1 + 0.5 \times density \times v_1^2 + density \times g \times h_1 = P_2 + 0.5 \times density \times v_2^2 + density \times g \times h_2[/tex]

Where:

[tex]g = 9.81ms^{-1}[/tex]

[tex]density = 1000kgm^{-3[/tex]

[tex]h_1 = 0[/tex]

So, we have:

[tex]3 \times 10^5 + 0.5 \times 1000 \times 0.5^2 + 1000 \times 9.8 \times 0 = P_2 + 0.5 \times 1000 \times 1.18^2 + 1000 \times 9.8 \times 5[/tex]

[tex]300000 + 125 + 0 = P_2 + 696.2 + 49000[/tex]

Collect like terms

[tex]300000 + 125 - 696.2 - 49000 = P_2[/tex]

[tex]250428.8 = P_2[/tex]

Rewrite as:

[tex]P_2 =250428.8[/tex]

Rewrite as:

[tex]P_2 = 2.51 \times 10^5\ Pa[/tex]

Hence, the velocity and pressure are 1.18m/s and  2.51 * 10^5 Pa

Read more about pressures and velocities at:

https://brainly.com/question/3362972

The velocity in the 2.6-cm diameter pipe is 2.0 m/s and the pressure in the 2.6-cm diameter pipe is 2.73x10^5 Pa.

To solve this problem, we can use the principle of continuity and the Bernoulli equation.

Continuity equation

The continuity equation states that the mass flow rate through a pipe is constant. This means that the product of the density of the fluid, the cross-sectional area of the pipe, and the velocity of the fluid is the same at all points in the pipe.

ρ * A * v = constant

where:

ρ is the density of the fluid in kg/m³

A is the cross-sectional area of the pipe in m²

v is the velocity of the fluid in m/s

Bernoulli equation

The Bernoulli equation states that the total energy of a fluid is constant along a streamline. This total energy is made up of the fluid's pressure energy, kinetic energy, and potential energy.

P + 1/2ρv² + ρgh = constant

where:

P is the pressure of the fluid in Pa

ρ is the density of the fluid in kg/m³

v is the velocity of the fluid in m/s

g is the acceleration due to gravity in m/s²

h is the height of the fluid above a reference point in m

Solving for the velocity and pressure in the 2.6-cm diameter pipe

We can use the continuity equation to solve for the velocity in the 2.6-cm diameter pipe.

ρ * π(0.02 m)² * v_2 = ρ * π(0.04 m)² * v_1

where:

v_1 is the velocity in the 4.0-cm diameter pipe

v_2 is the velocity in the 2.6-cm diameter pipe

Substituting in the known values, we get:

v_2 = (π(0.04 m)² * v_1) / π(0.02 m)²

v_2 = 4v_1

Therefore, the velocity in the 2.6-cm diameter pipe is four times greater than the velocity in the 4.0-cm diameter pipe. Since the velocity in the 4.0-cm diameter pipe is 0.50 m/s, the velocity in the 2.6-cm diameter pipe is 2.0 m/s.

We can use the Bernoulli equation to solve for the pressure in the 2.6-cm diameter pipe.

P_1 + 1/2ρv_1² + ρgh_1 = P_2 + 1/2ρv_2² + ρgh_2

where:

P_1 is the pressure in the 4.0-cm diameter pipe

P_2 is the pressure in the 2.6-cm diameter pipe

h_1 is the height of the water in the 4.0-cm diameter pipe above a reference point

h_2 is the height of the water in the 2.6-cm diameter pipe above a reference point

Assuming that the height of the water in the two pipes is the same, we can cancel out the ρgh terms.

P_1 + 1/2ρv_1² = P_2 + 1/2ρv_2²

Substituting in the known values, we get:

3.03x10^5 Pa + 1/2ρ(0.50 m/s)² = P_2 + 1/2ρ(2.0 m/s)²

P_2 = 3.03x10^5 Pa + 1/2ρ(0.50 m/s)² - 1/2ρ(2.0 m/s)²

P_2 = 2.73x10^5 Pa

Therefore, the pressure in the 2.6-cm diameter pipe is 2.73x10^5 Pa.

For such more question on velocity

https://brainly.com/question/30505958

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Answer:

a. 9.5838kg

b. 340.321kj

Explanation:

See attachment please