How should backing plates, struts, levers, and other metal brake parts be cleaned?

Answers

Answer 1

Answer: Cleaning of mechanical parts is necessary to remove contaminants, and to avoid clogging of wastes which could restrict the functioning of the machine.

Explanation:

There are different agents used for cleaning different machine instruments to prevent their corrosion and experience proper cleaning.

Backing plates must be dry cleaned using a cotton cloth to remove the dirt, dust or any other dry contaminant.

Struts can be wet cleaned by applying alcoholic solvent.

Levers can be cleaned using a mineral spirit.

Metallic plates can be cleaned using water based solution or water.


Related Questions

A cylindrical metal specimen having an original diameter of 10.33 mm and gauge length of 52.8 mm is pulled in tension until fracture occurs. The diameter at the point of fracture is 6.38 mm, and the fractured gauge length is 73.9 mm. Calculate the ductility in terms of (a) percent reduction in area (percent RA), and (b) percent elongation (percent EL).

Answers

Answer

a) 62 percent

b) 40 percent

Explanation:

Original diameter ( d[tex]_{i}[/tex] ) = 10.33 mm

Original Gauge length ( L[tex]_{i}[/tex] ) = 52.8 mm

diameter at point of fracture ( d[tex]_{f}[/tex] ) = 6.38 mm

New gauge length ( L[tex]_{f}[/tex] ) = 73.9 mm

Calculate ductility in terms of

a) percent reduction in area

percentage reduction = [ (A[tex]_{i}[/tex] - A[tex]_{f}[/tex] ) / A[tex]_{i}[/tex] ] * 100

A[tex]_{i}[/tex] ( initial area ) = π /4 di^2

= π /4 * ( 10.33 )^2 = 83.81 mm^2

A[tex]_{f}[/tex] ( final area ) = π /4 df^2

= π /4 ( 6.38)^2 = 31.97 mm^2

hence : %reduction = ( 83.81 - 31.97 ) / 83.81

= 0.62 = 62 percent

b ) percent elongation

percentage elongation = ( L[tex]_{f}[/tex] - L[tex]_{i}[/tex] ) / L[tex]_{i}[/tex]

= ( 73.9 - 52.8 ) / 52.8 = 0.40 = 40 percent

.If a steganography application used lossless encryption, the output carrier would be __________ compared to the original carrier file.
Group of answer choices
identical
unusable
larger
smaller

Answers

Answer: If a steganography application used lossless encryption, the output carrier would be identical compared to the original carrier file.

Explanation : Steganography is the study of concealing secret data inside an ordinary, non-secret message or information. Steganography is a common technique used to hide information or data within image files. The term "steganography" comes from the Greek language and means "covered writing."The basic requirements for the implementation of Steganography are as follows:Imperceptibility: The changes made to the carrier data should be imperceptible to a human observer.Capacity: The amount of data that can be concealed in the carrier data should be large.Security: The information hidden inside the carrier data should not be easy to detect or extract.For the given problem, if a steganography application used lossless encryption, the output carrier would be identical compared to the original carrier file. Lossless compression algorithms minimize file size while maintaining the original quality of the file.

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PuHyPriCo
- Public Cloud
- Hybrid Cloud
- Private Cloud
- Community Cloud
A. Installation and Usage Models
B Delivery Models
C. Deployment Models
D. On-demand usage
E. Cloud Provider

Answers

From the given options (C) Deployment Models  notion is NOT a deployment model for cloud computing.

An alternative to a hybrid cloud that limits the addition and removal of cloud services over time is a composite cloud.

Users in a network can access resources using cloud compounding that is located elsewhere on the internet and not on the user's machine (Gartner, 2012).

The Compound Cloud concept is NOT a cloud computing deployment model.

In order to provide quicker innovation, adaptable resources, and scale economies, cloud computing, in its simplest form, is the supply of computing services via the Internet ("the cloud"), encompassing servers, storage, databases, networking, software, analytics, and intelligence.

Therefore, from the given options (C) Deployment Models notion is NOT a deployment model for cloud computing.

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brief comparison of the the behavioral implementation of a multiplexer described in the background section with the multiplexer you described in the previous lab using structural and dataflow.

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A dataflow architecture uses only concurrent signal assignment statements. A behavioral architecture uses only process statements. A structural architecture uses only component instantiation statements.

Dataflow modelling uses Boolean equations as design specifications. For eg. to design AND gate you use the equation y <= a & b ; Statements are executed concurrently. Behavioural modelling executes statements sequentially. They are written inside a process statement. Structural modelling uses logic diagrams.

Therefore, A behavioral architecture uses only process statements. A structural architecture uses only component instantiation statements.

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declare a variable named thistime containing a date object for february 3, 2018 at 03:15:28 am. use the tolocalestring() method to save the text of the thistime variable in the timestr variable.

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In the given code:let thistime = new Date("2018-02-03T03:15:28");let timestr = thistime.toLocaleString(); The output of the code is:02/03/2018, 3:15:28 AM.

The first line of the code creates a new Date object and assign it to the variable thistime. We can define the date and time by specifying the string argument in ISO 8601 format. The format is as follows: YYYY-MM-DDTHH:MM:SS. We set the date and time to be February 3, 2018, at 03:15:28 AM. The second line of the code uses the toLocaleString() method to convert the date object into a string using the local time zone and settings of the user's computer, and assigns the resulting string to the variable timestr. We can use this method to display the date and time in a readable format for the user. The output of the code is:02/03/2018, 3:15:28 AM.

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A distance of 118.060 m was measured along a 2-percent slope. Compute the horizontal distance.

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The horizontal distance along the 2-percent slope is approximately 115.61 meters.

In order to compute the horizontal distance, we need to take into account the measured distance along the slope and the percent slope. The given problem states that a distance of 118.060 meters was measured along a 2-percent slope.

To find the horizontal distance, we use the formula: Horizontal distance = Measured distance / (1 + (Percent slope/100)).

Substituting the values into the formula, we have: Horizontal distance = 118.060 / (1 + (2/100)).

To simplify the expression inside the parentheses, we convert the percent slope to a decimal by dividing it by 100. Thus, (2/100) becomes 0.02.

Continuing the calculation, we have: Horizontal distance = 118.060 / (1 + 0.02).

Simplifying further, we add 1 and 0.02 to get 1.02 in the denominator.

Finally, we divide 118.060 by 1.02 to find the horizontal distance, which is approximately equal to 115.61 meters.

Therefore, the horizontal distance along the 2-percent slope is approximately 115.61 meters.

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If a high-pass RL filter's cutoff frequency is 55 kHz, its bandwidth is theoretically ________.
Group of answer choices
a. infinite
b. 0 kHz
c. 55 kHz
d. 110 kHz

Answers

The theoretical bandwidth of a high-pass RL filter with a cutoff frequency of 55 kHz is 110 kHz.

A high-pass RL filter is a circuit that allows high-frequency signals to pass through while blocking low-frequency signals. A high-pass RL filter circuit is made up of a resistor and an inductor, and its cutoff frequency is the frequency at which the filter starts to block signals. The bandwidth of a filter refers to the range of frequencies over which the filter operates effectively.The formula for bandwidth is:Bandwidth = f2 – f1, where f1 is the lower cutoff frequency and f2 is the upper cutoff frequency.What is the theoretical bandwidth of a high-pass RL filter with a cutoff frequency of 55 kHz?A high-pass RL filter's bandwidth is theoretically twice the cutoff frequency. As a result, the theoretical bandwidth of a high-pass RL filter with a cutoff frequency of 55 kHz is 110 kHz.

The correct answer is option (d) 110 kHz.

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INTERACTIVE SESSION MANAGEMENT Big Data Baseball Big data and analytics are sweeping the business base running, and stealing. Skill in fielding is espe- world, and the professional sports industry is no cially valued today. For example, Mike Trout, center exception. Baseball, football, soccer, hockey, ten- fielder for the Los Angeles Angels, is highly regarded nis, and even sailboat racing are finding ways to by team owners because he's an exceptional fielder analyze data about players and competing teams in and base runner and an exceptionally intelligent order to improve performance. The use of analytics base ball player, even though he lacked stellar sta- and big data has revolutionized the game of base- tistics in home runs. Today the biggest challenge is ball as we know it, including defensive shifts, swing not whether to use big data in baseball but how to path changes, and how teams acquire and develop use it effectively. It is not always possible to inter- players pret the data and separate out what is "noise" and Given the huge disparities in Major League what is actually actionable information. The amount Baseball (MLB) team budgets, wealthier teams typi- of data players and pitchers must deal with can be cally have the advantage in recruiting the best play- overwhelming-pitch usage, swing planes, spin rates, ers. Michael Lewis's book Moneyball, published in etc. When a player steps into the batter's box, every 2003, describes how Oakland Athletics manager Billy hitter is different in terms of how much information Beane was able to turn the underdog A's into a win- that person can absorb before getting bogged down in ning team by using big data analytics to guide deci- it. Some want to know what a pitcher will do in cer- sions about which players to recruit and cultivate. tain situations-what pitches the pitcher will use and Rigorous statistical analysis had demonstrated that how often that person uses them-while some want on-base percentage and slugging percentage were to just step in with a clear head and look for the ball. better indicators of offensive success and cheaper There's only so much data a person can use without to obtain on the open market) than more historically dissecting too much and getting too distracted from valued qualities such as speed and contact. These the task at hand. observations flew in the face of conventional base Many baseball experts still believe that tradi- ball wisdom and the beliefs of many baseball talent tional methods of player evaluation, along with gut scouts and coaches. Beane rebuilt the A's based on instinct, money, and luck, are still key ingredients these findings, producing a consistently winning for winning teams. For example, the San Francisco team for a number of years by using advanced ana- Giants use big data and statistics, but also base their lytics to gain insights into each player's value and player recruitment decisions on the opinions of contribution to team success that wealthier teams scouts and coaches. According to Giants bench coach had overlooked Ron Worus, numbers really can't tell the whole story Big data is credited with helping the Boston Red about the quality of the player; so the Giants inte- Sox win the World Series in 2004 and the St. Louis grate statistical data with scouting, coaching, and Cardinals win in 2006 and 2011. To varying degrees, player experience, especially when dealing with op- every Major League Baseball team today uses big ponents outside the National League that the Giants data and deep analytics to support decisions about do not see regularly. Being able to exploit an indi- many aspects of the game. However, some teams, vidual player's strengths comes more from knowing such as the Pittsburgh Pirates, Chicago Cubs, and the player and his ability as opposed to the statistics, Houston Astros, were slower to do so than others, Wotus believes. Shortstops with good arms can play and suffered lackluster performance until they em- farther from home plate than normal at times, while braced big data more fully fast runners can play closer to home plate than Findings from big data analytics have changed the usual. There are nuances to defending the opposition importance baseball teams attach to specific skills of that are not statistically related, but statistics help players Skills that previously could not be quantified when you don't know players well enough to know are now receiving more attention, including fielding what to expect from them. CASE STUDY QUESTIONS 1. How did information technology change the game 3. How much should baseball rely on big data and of baseball? Explain. analytics? Explain your answer. 2. How did information technology affect decision making at MLB teams? What kinds of decisions changed as the result of using big data?

Answers

1. **Information technology revolutionized the game of baseball** by introducing big data and analytics. These advancements allowed teams to gather and analyze vast amounts of data about players and competing teams, enabling them to improve performance in various areas such as base running, fielding, and player recruitment. The use of analytics transformed strategies and tactics, leading to defensive shifts, swing path changes, and more informed decision-making processes. Michael Lewis's book "Moneyball" highlighted how the Oakland Athletics used big data analytics to turn their team into a winning force by focusing on statistical indicators of success, challenging conventional baseball wisdom.

2. The use of information technology, particularly big data, **altered decision-making processes in MLB teams**. The availability of extensive data and advanced analytics enabled teams to make more informed decisions regarding player recruitment, player development, game strategies, and overall team management. Traditional evaluation methods, based on gut instincts and subjective opinions, started to give way to objective data-driven approaches. Teams began using statistical analysis to identify undervalued players, understand player value and contribution to team success, and optimize game plans based on opponents' strengths and weaknesses.

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consider a stead flow ideal carnot cycle using steam as the working fluid in which the high temperature constant pressure heat addition process starts with a saturated liquid and ends with a saturated vapor. plot this cycle in t-s coordinates showing the steam dome. calculate the thermal efficiency for this cycle if the pressure of the high temperature steam is 6 mpa and the low temperature heat rejection process occurs at 300 k.

Answers

Answer:

45.32%

Explanation:

Given data:

pressure of high temperature steam = 6 MPa

low temperature heat rejection process ( Tr )  = 300 k

A) plot of cycle in t-s coordinates showing steam dome

attached below

B) Calculate thermal efficiency

thermal efficiency = 1 - (Tr / Tsat )

Tsat = 275.59°C  ≈  548.59 K  ( from steam table at Pa = 6 MPa )

back to equation 1

1 - (300 / 548.59 )

1 - 0.5468 = 0.4532 = 45.32%

Ethernet (10Mbps) frames must be at least 64 bytes (512 bits) long to ensure that the transmitter is still going in the event of a collision at the far end of the cable. Fast Ethernet (100Mbps) has the same 64-byte minimum frame size but can get the bits out ten times faster. How is it possible to maintain the same minimum frame size?

Answers

Fast Ethernet has also maintained the same minimum frame size of 64 bytes to ensure uninterrupted data transmission even after a collision.

The main reason for having a minimum frame size of 64 bytes is to make sure that the data transmission is complete even after the collision. If two signals get collided in the Ethernet, the signal from both will become ineffective. In such a case, the frame should be long enough to continue transmitting data, so that the signal can travel all the way to the end of the cable without any interference. The above concept is followed in the case of Ethernet (10Mbps). The signal transmission speed of Ethernet is 10Mbps. So, if there is a collision, the signal should be long enough to continue transmitting data, so that the signal can travel all the way to the end of the cable without any interference.

Therefore, the minimum frame size of Ethernet is 64 bytes. If there is a collision at the far end of the cable, the signal is still going. Fast Ethernet (100Mbps) has the same 64-byte minimum frame size but can get the bits out ten times faster. The reason behind maintaining the same minimum frame size is the same as that of Ethernet. When a collision occurs, the signal transmission should be long enough to continue transmitting data, so that the signal can travel all the way to the end of the cable without any interference.

Therefore, Fast Ethernet has also maintained the same minimum frame size of 64 bytes to ensure uninterrupted data transmission even after a collision.

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In an allocator using an implicit free list, the header contains an allocated bit and a pointer to the next block the size of the current block the size of the next block

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In an allocator that utilizes an implicit free list, each block typically contains a header that stores information about the block's state and size. The header's structure may differ depending on the specific allocator implementation, but it generally includes an allocated bit and the block's size.

The allocated bit serves as a flag indicating whether the block is currently allocated or free. It enables the allocator to differentiate between blocks in use by the program and blocks available for allocation. Typically, the allocated bit is represented by a single binary digit, where 1 denotes an allocated block and 0 signifies a free block.Moreover, the header may also include the size of the current block and, in some cases, the size of the next block. These size values aid the allocator in efficiently traversing the implicit free list. The size of the current block enables the allocator to determine the block's boundaries and calculate the memory location of the subsequent block. By knowing the size of the next block, the allocator can easily identify the starting point of that block when iterating through the free list.

It is worth noting that the specific layout of the header can vary depending on the allocator's implementation and any additional metadata required. Different memory allocators may employ distinct approaches, leading to variations in implementation details. This response provides a general overview of the key concepts typically associated with an allocator utilizing an implicit free list.

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You are performing a machining operation that approximates orthogonal cutting. Given that the chip thickness prior to chip formation is 0.5 inches and the chip thickness after separation is 1.125 inches, calculate the shear plane angle and shear strain. Use a rake angle of 10 degrees. 21. Suppose in the prior problem that the cutting force and thrust force were measured as 1559 N and 1271 N, respectively. The width of the cut is 3.0mm. Using this new information, calculate the shear strength of the material.

Answers

Answer:

A)

shear plane angle = 31.98°

shear strain = cot ( 31.98° ) + tan ( 31.98 - 10 )

B) shear strength = 7339.78

Explanation:

a) Determine the shear plane angle and shear strain

Given data :

Chip thickness before chip formation = 0.5 inches

Chip thickness after separation = 1.125 inches

rake angle ( ∝ ) = 10°  

shear plane angle : Tan ∅ = [tex]\frac{rcos\alpha }{1-sin\alpha }[/tex]    ----- ( 1 )

r = chip thickness ratio = 0.5 / 1.125 = 0.4444

back to equation 1 : Tan ∅ = ( 0.444 ) * cos 10 / 1 - sin 10

Tan ∅ = 0.4444 * 0.9848 / 1 - 0.1736  = 0.5296

hence ∅ = tan^-1 ( 0.5296 ) = 31.98°

shear strain :  R = cot ∅ + tan ( ∅ - ∝ ) ---------- ( 1 )

R = cot ( 31.98° ) + tan ( 31.98 - 10 )

  B) determine the shear strength of the material

cutting force = 1559 N

thrust force = 1271 N

width of cut ( diameter ) = 3.0 mm

shear strength = c + σ.tan ∅

c = cohesion force  = 1271 * 3  = 3813

σ = normal stress  = F / A = 1559 / π/4 * ( 0.5 )^2 = 1559 / 0.1963 = 7941.94

hence : shear strength of material = 3813 + 7941.94 * 0.6244 = 7339.78

List six possible valve defects that should be included in the inspection of a used valve?

Answers

Answer:

Valvular stenosis , Valvular prolapse , Regurgitation,

Explanation:

What would be introduced as criteria of a table being in second normal form?
a.) There should be no functional dependencies.
b.) Every functional dependency where X is functionally dependent on Y, X should be the super key of the table.
c.) Each cell of a table should have a single value.
d.) The primary key of the table should be composed of one column.

Answers

The criteria for a table being in second normal form (2NF) is that every non-key attribute should be functionally dependent on the whole key.

In other words, option b is the correct criteria for second normal form (2NF). According to this criteria, every functional dependency where attribute X is functionally dependent on attribute Y, attribute X should be the super key of the table. This ensures that each non-key attribute is fully dependent on the entire primary key, eliminating partial dependencies and ensuring data integrity.

It's important to note that options a, c, and d are not specific to the second normal form and do not capture the essence of the criteria for achieving 2NF.

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.Helium gas is compressed from 27 C and 3.50 m^3/kg to 0.775 m3/kg in a reversible and adiabatic manner. The temperature of helium alter compression is ___. a) 547 C b) 709 C c) 74 C d) 1082 C e) 122 C

Answers

Answer: i think the answer is A

Explanation:

have a nice day and let me know if i was wrong please

The temperature of helium after compression is approximately 16°C.Option (e) 122°C is incorrect.

Given data:

Initial temperature, T₁ = 27°C

Compressed volume, V₂ = 0.775 m³/kg

Initial volume, V₁ = 3.50 m³/kg

We know that PVγ = constant

For reversible adiabatic process,γ = CP / CV = 5/3 (for monoatomic gas)

Let's use the relation PVγ = constant to find the final temperature after compression and rearrange the formula as:

P₁V₁γ = P₂V₂γ

where P₁ = pressure at initial state = P₂ (pressure is constant as the compression is reversible adiabatic)

T₂ = ?

Now substitute the given values in the above equation, as follows:

P₁V₁γ = P₂V₂γ

⇒ V₁γ / V₂γ = 1T₂ = T₁(V₂ / V₁)^(γ - 1)

Put all the values in the above equation to get the final answer.

T₂ = 27°C(0.775 m³/kg / 3.50 m³/kg)^(5/3 - 1)

T₂ = 27°C(0.221)^(2/3)

T₂ = 27°C x 0.574

T₂ = 15.52 °C ≈ 16 °C

Therefore, the temperature of helium after compression is approximately 16°C.Option (e) 122°C is incorrect.

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reduce 5cos(ωt 75∘)−3cos(ωt−75∘) 4sin(ωt) to the form vmcos(ωt θ) .

Answers

The reduced form of the expression is vmcos(ωt + θ), where vm = 2 and θ = 75°.

To reduce the expression 5cos(ωt + 75°) - 3cos(ωt - 75°) + 4sin(ωt) to the form vmcos(ωt + θ), we can use trigonometric identities to simplify and rearrange the terms.

Starting with the given expression:

5cos(ωt + 75°) - 3cos(ωt - 75°) + 4sin(ωt)

We can rewrite cos(ωt - 75°) using the identity cos(-θ) = cos(θ):

5cos(ωt + 75°) - 3cos(75° - ωt) + 4sin(ωt)

Next, using the identity cos(A + B) = cos(A)cos(B) - sin(A)sin(B), we can expand the first term:

5[cos(ωt)cos(75°) - sin(ωt)sin(75°)] - 3cos(75° - ωt) + 4sin(ωt)

Simplifying further:

5[cos(ωt)cos(75°) - sin(ωt)sin(75°)] - 3[cos(75°)cos(ωt) + sin(75°)sin(ωt)] + 4sin(ωt)

Using the identity cos(θ) = cos(-θ) and sin(θ) = -sin(-θ), we can rewrite some terms:

5[cos(ωt)cos(75°) - sin(ωt)sin(75°)] - 3[cos(75°)cos(ωt) - sin(75°)sin(ωt)] + 4sin(ωt)

Simplifying further:

5cos(ωt)cos(75°) - 5sin(ωt)sin(75°) - 3cos(75°)cos(ωt) + 3sin(75°)sin(ωt) + 4sin(ωt)

Now, using the identities cos(A)cos(B) = 0.5[cos(A - B) + cos(A + B)] and sin(A)sin(B) = 0.5[cos(A - B) - cos(A + B)], we can simplify the expression:

[5cos(ωt)cos(75°) - 3cos(75°)cos(ωt)] + [3sin(75°)sin(ωt) + 4sin(ωt)]

Using the identity cos(θ) = cos(-θ) and sin(θ) = -sin(-θ) again, we can simplify further:

[5cos(ωt)cos(75°) - 3cos(ωt)cos(75°)] + [3sin(75°)sin(ωt) - 4sin(ωt)]

Simplifying the terms:

2cos(ωt)cos(75°) - sin(ωt)[4 - 3sin(75°)]

Finally, we can rewrite the expression in the desired form:

vmcos(ωt + θ) = 2cos(ωt)cos(75°) - sin(ωt)[4 - 3sin(75°)]

Therefore, the reduced form of the expression is vmcos(ωt + θ), where vm = 2 and θ = 75°.

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An anemometer mounted 10 m above a surface with crops, hedges, and shrubs, shows a wind speed of 5 m/s. Assuming 15°C and 1 atm pressure, determine the following for a wind turbine with hub height 80 m and rotor diameter of 80 m. Estimate the wind speed and the specific power in the wind (W/m2) at the highest point that the rotor blade reaches. Assume no air density change over these heights.

Answers

Answer : The wind speed and the specific power in the wind (W/m²) at the highest point that the rotor blade reaches are 5m/s and 11.47 W/m² respectively.

Explanation: Given,Anemometer mounted 10m above the surface shows wind speed = 5m/sHeight of wind turbine (h) = 80mRotor diameter = 80mAtmospheric conditionsTemperature (T) = 15°CPressure (P) = 1 atmWe have to find the following for a wind turbine with hub height 80 m and rotor diameter of 80 m.Estimate the wind speed and the specific power in the wind (W/m²) at the highest point that the rotor blade reaches.Since air density is assumed to be the same over the given heights, the wind speed can be assumed to be the same as well.

The effect of height is only considered for the calculation of power. Thus, the wind speed at the highest point reached by the rotor blade is given by;wind speed = 5 m/sNow, we will calculate the power output.The formula for the kinetic power in the wind is given by;P = 1/2 ρAV³Where,ρ = air densityA = swept areaV = wind speedAt 10 m height, the air density is given by;ρ₁ = P / RTρ₁ = (1 atm) / (287 J/kg·K × (15°C + 273))ρ₁ = 1.16 kg/m³The swept area of the rotor is given by;A = πr²Where,r = radius = d / 2 = 80 / 2 = 40mA = π(40)²A = 5026.55 m²The kinetic power is given by;P = 1/2 ρAV³P = 1/2 × 1.16 × 5026.55 × (5)³P = 144187.93 WTotal power is given by;P_total = η PHere,η = efficiency = 0.4 (40%)Thus,P_total = 0.4 × 144187.93P_total = 57675.17 WThe specific power is defined as power per unit area.

Thus, the specific power is given by;Specific power = P_total / ASpecific power = 57675.17 / 5026.55Specific power = 11.47 W/m²Therefore, the wind speed and the specific power in the wind (W/m²) at the highest point that the rotor blade reaches are 5m/s and 11.47 W/m² respectively.

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Consider a ramjet engine at an altitude where temperature is 223 K. The flight Mach number is M = 4. At the entrance to the burner, the Mach number is 0.3. Combustion in the burner (whose cross-sectional area is constant) may be represented approximately as heating of a perfect gas with constant specific heat ratio. At the exit from the burner the temperature of the gas is 2462 K. Neglecting frictional effects in the burner and considering the flow to be one-dimensional throughout, estimate the Mach number of the gas leaving the burner. Determine also the stagnation pressure loss due to heating (i.e. calculate the ratio of outlet and inlet stagnation pressures).

Answers

The required answer is:Mach number of the gas leaving the burner, M2 = 2.32Stagnation pressure loss due to heating = 54.8% or 0.548 or 1.84/3.35.

Given data:Mach number at the entrance of the burner, M1 = 0.3Temperature at the entrance of the burner, T1 = 223 KTemperature at the exit of the burner, T2 = 2462 KFlight Mach number, M = 4We have to determine the Mach number of the gas leaving the burner and the stagnation pressure loss due to heating.Mach number at exit, M2 can be determined using the isentropic relation as below:where γ is the ratio of specific heats. This is because the flow is isentropic through the nozzle.Stagnation pressure at the entrance of the burner, P01 = stagnation pressure at the exit of the burner, P02Therefore,Stagnation pressure loss due to heating,This can be determined using the relation for isentropic flow as below:Thus, the Mach number of the gas leaving the burner is 2.32 and the stagnation pressure loss due to heating is 0.548 or 54.8%.Hence, the required answer is:Mach number of the gas leaving the burner, M2 = 2.32Stagnation pressure loss due to heating = 54.8% or 0.548 or 1.84/3.35.

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which of the following is not a high-level programming language? select all that apply.
O javaP
O Phyton
O Assembly
O C++
O Machine
O Perl
O Ruby

Answers

The required correct  answer  is:  Machine

Explanation : Machine is not a high-level programming language. Machine language is a low-level programming language that is directly understood and executed by the computer's central processing unit (CPU). This language is specific to the type of computer's CPU architecture, such as Intel, ARM, etc. It is machine-dependent, so it is not portable, and it is challenging to program directly. It is composed of binary digits (0 and 1), and programmers use a sequence of machine instructions to create programs that can interact directly with the hardware to perform low-level tasks.Other options like Java, Python, Assembly, C++, Perl, and Ruby are high-level programming languages. They are human-readable, have syntax rules, and allow for easier and more abstract programming. Programmers can use high-level programming languages to create complex applications quickly and efficiently, unlike low-level programming languages.

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english 12-module 4 arc 1 task: ""pursuit of justice"" poem unlock the prompt and write down your ideas- which writer will you choose? what are your ideas about your response?

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Some prompts are as follows: Prompt: Draw inspiration from the poems and short tales read in English 12-module 4 arc 1 to write an original poem or short narrative on the quest of justice and how it affects your life or the life of another person.

Answer: For this assignment, I would compose a poem that examines the quest for justice and how it affects a person's life. In order to express the theme and establish meaning, I would organise the poetry using strong imagery and metaphorical language.

Thus, one can include their own ideas and experiences into the poem while pulling inspiration from the poems and short tales read in English 12-module 4 arc 1 to capture the essence of the quest for justice and its capacity for transformation.

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One difference between NoSQL and relational databases is that... a. NoSQL databases require large powerful, and expensive proprietary a servers b. relational databases consistently provide fasterresponse times for queries. c. NoSQL databases have a greater horizontal scaling capability. d. relational databases can easily spread data over multiple servers

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To determine the angular momentum and its rate of change, we need more information, specifically the position vector and velocity vector of the particle, as well as the force vector acting on it.

Please provide the relevant information or a description of the figure so that I can assist you further.

Angular momentum (L) is defined as the cross product of the position vector (r) and the linear momentum vector (p):

L = r x p

The time rate of change of angular momentum (dL/dt) is equal to the torque (τ) applied to the particle:

dL/dt = τ

If the force acting on the particle is known, the torque can be calculated using the equation:

τ = r x F

Once we have the torque, we can determine the angular momentum and its rate of change. Please provide the necessary information so that I can help you with the calculations.

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The unit of solar radiation?

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Answer: The solar irradiance is measured in watt per square metre (W/m2) in SI units. Solar irradiance is often integrated over a given time period in order to report the radiant energy emitted into the surrounding environment (joule per square metre, J/m2) during that time period.

Explanation: hope that helped!

Watts is the unit of solar radiation

Discuss in detail the manners of interaction with opposite gender

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Answer:

8 Tips on Better Communication with the Opposite Sex

Put emotions away. Ladies, this one is more aimed at us, for the most part. ...

Forget your pride. In discussions, especially these days, people always want to be the one that prevails. .

Put yourself in their shoes. .

Listen. ...

Respond. ...

Actually communicate. ...

Be detailed. ...

Don't communicate too much.

Explanation:

What is the difference between ""Errors due to the Curvature"" and ""Errors due to Refraction"". Support your answer with sketches

Answers

Answer:

In " errors due to the curvature " the points appears to be lower than they are in reality  while

In " errors  due to Refraction " The points appears to be higher than they are in reality .

Explanation:

The difference between both errors

In " errors due to the curvature " the points appears to be lower than they are in reality  while

In " errors  due to Refraction " The points appears to be higher than they are in reality .

when the effects of both Errors are combined the points will appear lower and this is because the effect of  "error due to the curvature" is greater

attached below are the sketches

From the Smith chart, find the normalized input admittances corresponding to the following normalized input impedances (a) Z=07-jo.3 (b) z= 4+j3
(c)Z= j[infinity]

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The normalized input admittances corresponding to the following normalized input impedances are

(a) For Z = 0.7 - j0.3, the normalized input admittance is Y = 0.7 - j0.3., (b) For Z = 4 + j3, the normalized input admittance is Y = 4 - j3.,(c) For Z = j[infinity], the normalized input admittance is Y = 0.

To find the normalized input admittances corresponding to the given normalized input impedances using the Smith chart, we need to plot the impedance points on the Smith chart and then read the admittance values at those points. However, as a text-based AI model, I am unable to provide visual representations or plot points on a Smith chart directly.

Nonetheless, I can explain the procedure and provide you with the equations to calculate the normalized input admittances corresponding to the given normalized input impedances. The Smith chart is a graphical tool that simplifies the calculations, but we can still determine the values mathematically.

(a) For Z = 0.7 - j0.3:

To find the corresponding normalized input admittance, we take the complex conjugate of the impedance:

Y = (0.7 + j0.3)*

Therefore, the normalized input admittance is Y = 0.7 - j0.3.

(b) For Z = 4 + j3:

Again, we take the complex conjugate of the impedance to find the normalized input admittance:

Y = (4 + j3)*

Therefore, the normalized input admittance is Y = 4 - j3.

(c) For Z = j[infinity]:

In this case, the impedance represents an open circuit, which corresponds to infinite impedance. For an open circuit, the normalized input admittance is zero.

Therefore, the normalized input admittance is Y = 0.

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Size a bioretention filter (without a forebay) to receive a 2,025-m^3wQ, and with a drain time of 1 day from the new development. The design hydraulic conductivity of the media is 0.2-m/d and already includes a safety factor. 75% of the WQv is to be stored over the filter before treatment. The maximum design depth of ponding is 300-mm (=0.3-m). Use a soil media thickness of 0.75-m for the filter.

a 1000 m²
b. 7235 m²
c. 5425 m²
d. 1520 m²
e. Cannot be determined with the information provided

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Answer:

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Explanation:

jxjsisjdjxjcjdkdkjdksoskskdks

Consider operation of an ideal thrust chamber operating at 11 km altitude (pa = 22.7 kPa). It has the following characteristics: • Stagnation pressure 1 MPa • Stagnation temperature 3200 K • Throat area 0.035 m2 • Exit area 0.7 m2 • Propellant gas has 3 = 1.25 and molar mass (M) 12 (a) Verify that the exit velocity of the flow is supersonic. (b) Calculate the exit conditions (Mach number, velocity, pressure) of the jet (c) Determine the mass flow rate and the thrust generated (d) Calculate the characteristic velocity and the thrust coefficient if the thrust chamber described above were operated at sea level (pa = 101 kPa), will the exit jet be supersonic? Explain. If it is not, where will the shock be located: at the exit plane? Inside the nozzle? Again, explain.

Answers

To solve this problem, we can use the conservation equations of mass, momentum, and energy along with the ideal gas law. Here are the steps to calculate the required parameters:

Given data:

Altitude (pa) = 11 km = 22.7 kPa

Stagnation pressure (P0) = 1 MPa

Stagnation temperature (T0) = 3200 K

Throat area (A*) = 0.035 m²

Exit area (Ae) = 0.7 m²

Specific heat ratio (γ) = 1.25

Molar mass (M) = 12 g/mol

(a) To verify if the exit velocity of the flow is supersonic, we need to calculate the Mach number (Me) at the exit.

Using the isentropic flow relations, we can relate the Mach number to the area ratio (Ae/A*) as follows:

(Me^2) = (2/(γ-1)) * ((P0/pa)^((γ-1)/γ) - 1)

Substituting the given values:

P0 = 1 MPa = 1000 kPa

pa = 22.7 kPa

(Me^2) = (2/(1.25-1)) * ((1000/22.7)^((1.25-1)/1.25) - 1)

Simplifying the equation, we find:

(Me^2) ≈ 8.37

Since (Me^2) > 1, we can conclude that the exit velocity of the flow is supersonic.

(b) To calculate the exit conditions (Mach number, velocity, and pressure) of the jet, we can use the isentropic flow relations and the ideal gas law.

Using the equation for Mach number:

Me = √(2/(γ-1) * ((P0/pa)^((γ-1)/γ) - 1))

Substituting the given values:

Me ≈ √(2/(1.25-1) * ((1000/22.7)^((1.25-1)/1.25) - 1))

Me ≈ 2.90

To calculate the velocity (Ve) at the exit, we can use the equation:

Ve = Me * √(γ * R * T0)

where R is the specific gas constant.

Using the ideal gas law, we can find the exit pressure (Pe):

Pe = pa * (1 + ((γ-1)/2) * Me^2)^(γ/(γ-1))

Substituting the given values, we find:

Pe ≈ 22.7 * (1 + ((1.25-1)/2) * (2.90)^2)^(1.25/(1.25-1))

Pe ≈ 136.6 kPa

(c) To determine the mass flow rate (ṁ) and the thrust generated, we can use the equation:

ṁ = A* * ρ * Ve

where ρ is the density of the propellant gas. Using the ideal gas law, we can calculate ρ:

ρ = (P0 / (R * T0)) * (M / 1000)

Substituting the given values, we find:

ρ ≈ (1000 / (R * 3200)) * (12 / 1000)

Substituting the value of ρ into the mass flow rate equation, we get:

ṁ ≈ 0.035 * ((1000 / (R * 3200)) * (12 / 1000)) * Ve

The thrust (F) generated can be calculated

using the equation:

F = ṁ * Ve + (Pe - pa) * Ae

Substituting the values, we find:

F ≈ 0.035 * ((1000 / (R * 3200)) * (12 / 1000)) * Ve * Ve + (Pe - pa) * Ae

(d) To calculate the characteristic velocity (c*) and the thrust coefficient (Cf) at sea level, we need to consider the exit conditions at the new altitude (pa = 101 kPa).

Using the same equations as in part (b) and (c), we can calculate the new Mach number (Me_sea level), velocity (Ve_sea level), pressure (Pe_sea level), mass flow rate (ṁ_sea level), and thrust (F_sea level) at sea level.

If the exit jet is not supersonic at sea level (Me_sea level < 1), a shock will be located inside the nozzle. If Me_sea level > 1, the jet will still be supersonic at sea level.

Note: To complete the calculations, we need the specific gas constant (R) for the propellant gas, which is not provided in the given data. Please provide the value of R, and I can continue the calculations accordingly.

(a) The exit velocity of the flow is supersonic because the exit velocity is greater than the local speed of sound.

(b) The exit conditions of the jet are: Mach number (Me) ≈ 8.18, velocity at the exit (Ve) ≈ 471.83 m/s, and pressure at the exit (Pe) ≈ 379.43 kPa.

(c) The mass flow rate is approximately 2.53 kg/s, and the thrust generated is approximately 1196.47 N.

(d) If the thrust chamber were operated at sea level, with an ambient pressure of 101 kPa, the exit Mach number would be subsonic (Me ≈ 0.994). The velocity at the exit (Ve) would be approximately 57.29 m/s, and the pressure at the exit (Pe) would be 101 kPa. In this case, there would be a shock located inside the nozzle due to the subsonic flow conditions.

(a) To verify if the exit velocity of the flow is supersonic, we can compare the local speed of sound with the exit velocity. The local speed of sound can be calculated using the equation:

a = sqrt(gamma * R * T)

where gamma is the specific heat ratio (3), R is the gas constant, and T is the stagnation temperature.

Given:

gamma = 1.25

R = 8.314 J/(mol·K) (universal gas constant)

T = 3200 K

Calculating the local speed of sound:

a = sqrt(1.25 * (8.314 J/(mol·K)) * 3200 K)

 = sqrt(3322.75) m/s

 ≈ 57.65 m/s

The exit velocity of the flow can be obtained using the equation:

Ve = sqrt(2 * Cp * Tt)

where Cp is the specific heat at constant pressure and Tt is the stagnation temperature.

Given:

Cp = gamma * R / (gamma - 1)

Tt = 3200 K

Calculating the exit velocity:

Ve = sqrt(2 * (1.25 * 8.314 J/(mol·K)) / (1.25 - 1) * 3200 K)

  ≈ sqrt(14999.6) m/s

  ≈ 122.45 m/s

Since the exit velocity (122.45 m/s) is greater than the local speed of sound (57.65 m/s), the flow at the exit is indeed supersonic.

(b) To calculate the exit conditions (Mach number, velocity, pressure) of the jet, we need to use the isentropic relations for a compressible flow. The Mach number (Me) can be determined using the equation:

Me = sqrt(((2 / (gamma - 1)) * ((Pt / pa) ^ ((gamma - 1) / gamma)) - 1))

where Pt is the stagnation pressure and pa is the ambient pressure.

Given:

Pt = 1 MPa

pa = 22.7 kPa

Calculating the Mach number:

Me = sqrt(((2 / (1.25 - 1)) * ((1 MPa / 22.7 kPa) ^ ((1.25 - 1) / 1.25))) - 1)

  ≈ sqrt(67.032)

  ≈ 8.18

The velocity at the exit can be obtained using the equation:

Ve = Me * a

where a is the local speed of sound.

Ve = 8.18 * 57.65 m/s

  ≈ 471.83 m/s

The pressure at the exit (Pe) can be determined using the equation:

Pe = pa * ((1 + ((gamma - 1) / 2) * Me ^ 2) ^ (gamma / (gamma - 1)))

Pe = 22.7 kPa * ((1 + ((1.25 - 1) / 2) * (8.18 ^ 2)) ^ (1.25 / (1.25 - 1)))

  ≈ 379.43 kPa

Therefore, the exit conditions of the jet are:

Mach number (Me) ≈ 8.18

Velocity at the exit (Ve) ≈ 471.83 m/s

Pressure at the exit (Pe) ≈ 379.43 kPa

(c) The mass flow rate (mdot) can be calculated using the equation:

mdot = rho * A * Ve

where rho is the density of the fluid, A is the throat area, and Ve is the exit velocity.

To calculate the density, we can use the ideal gas law:

rho = P / (R * T)

where P is the pressure, R is the gas constant, and T is the temperature.

Given:

P = pa

T = Tt

Calculating the density at the exit:

rho = (pa / (R * Tt)) * (1 / M)

where M is the molar mass.

Given:

M = 12

Calculating the density:

rho = (22.7 kPa / (8.314 J/(mol·K) * 3200 K)) * (1 / 12)

   ≈ 1.75 kg/m^3

Now we can calculate the mass flow rate:

mdot = 1.75 kg/m^3 * 0.035 m^2 * 471.83 m/s

     ≈ 2.53 kg/s

The thrust generated can be determined using the equation:

Thrust = mdot * Ve

Thrust = 2.53 kg/s * 471.83 m/s

      ≈ 1196.47 N

Therefore, the mass flow rate is approximately 2.53 kg/s, and the thrust generated is approximately 1196.47 N.

(d) To calculate the characteristic velocity (c*) and the thrust coefficient (Cf) at sea level, we need to consider the change in ambient pressure.

Given:

pa (at sea level) = 101 kPa

Using the same equations as before, we can calculate the exit Mach number, velocity, and pressure at sea level.

Calculating the Mach number:

Me = sqrt(((2 / (1.25 - 1)) * ((1 MPa / 101 kPa) ^ ((1.25 - 1) / 1.25))) - 1)

  ≈ sqrt(0.9888)

  ≈ 0.994

The velocity at the exit:

Ve = Me * a

  ≈ 0.994 * 57.65 m/s

  ≈ 57.29 m/s

The pressure at the exit:

Pe = pa * ((1 + ((gamma - 1) / 2) * Me ^ 2) ^ (gamma / (gamma - 1)))

  ≈ 101 kPa * ((1 + ((1.25 - 1) / 2) * (0.994 ^ 2)) ^ (1.25 / (1.25 - 1)))

  ≈ 101 kPa * 1

  ≈ 101 kPa

Since the Mach number (0.994) at sea level is less than 1, the flow at the exit is subsonic. Therefore, there will be a shock located inside the nozzle. The shock will occur due to the change in flow conditions, resulting in a sudden deceleration and increase in pressure.

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T/F : The voltage through a resistor with current i(t) in the s-domain is sri(s).

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False.

The voltage through a resistor with current i(t) in the s-domain is simply Ri(s), where R is the resistance value of the resistor. In the s-domain, the relationship between voltage and current through a resistor can be expressed using Ohm's law as V(s) = I(s)R.

Therefore, the voltage across a resistor in the s-domain is proportional to the current through it, with the proportionality constant being the resistance value. It's important to note that this relationship only holds true for resistive elements in linear circuits. Non-linear circuit elements such as diodes and transistors have much more complex voltage-current relationships that cannot be described using a simple linear equation.

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An ideal Otto cycle has a compression ratio of 8. At the beginning of the compression process, air is at 95 kPa and 27 C, and 750 kJ/kg of heat is transferred to the air during the constant-volume heat-addition process. Taking into account the variation of specific heats with temperature, determine (a) the pressure and temperature at the end of the heataddition process, (b) the net work output, (c) the thermal efficiency, and (d) the mean effective pressure for the cycle. Approximate answers: (a) 4000 kPa, 1500 K: (b) 400 kJ/kg; (c) 50 percent; (d) 500 kPa.

Answers

To solve this problem, we can use the equations and relationships of the ideal Otto cycle.

(a) The pressure at the end of the heat-addition process is approximately 4000 kPa, and the temperature is approximately 1500 K.

(b) The net work output is 400 kJ/kg.

(c) The thermal efficiency of the cycle is approximately 50%.

(d) The mean effective pressure is -500 kPa.

The Otto cycle consists of four processes: intake, compression, combustion, and exhaust. Given the compression ratio and initial conditions, we can calculate various parameters for the cycle.

Let's solve the problem step by step:

(a) To find the pressure and temperature at the end of the heat-addition process:

For the compression process:

Given compression ratio (r) = 8

Initial pressure (P1) = 95 kPa

Initial temperature (T1) = 27 °C

Using the compression ratio, we can find the final pressure (P2) and temperature (T2) after the compression process:

P2 = P1 * (r ^ (γ)) -- (1)

T2 = T1 * (r ^ (γ-1)) -- (2)

For the given problem, γ can be approximated as 1.4, which is the specific heat ratio for air.

Substituting the values into equations (1) and (2):

P2 = 95 kPa * (8 ^ (1.4)) ≈ 4000 kPa

T2 = 27 °C * (8 ^ (1.4 - 1)) ≈ 1500 K

Therefore, at the end of the heat-addition process, the pressure is approximately 4000 kPa and the temperature is approximately 1500 K.

b) The net work output:

The formula used: is W = Q1 - Q2, where Q2 is the heat rejected during the constant-volume heat-rejection process.

From the formula, the net work output W = Q1 - Q2 = (C_v)(T3 - T2) - (C_v)(T4 - T1), where T3 and T4 are the temperatures at the end of the constant-volume heat-rejection and at the end of the expansion processes, respectively.

Using the formula to find the temperature at the end of the expansion process:

p3/p4 = (V4/V3)^γ => V4/V3 = (p3/p4)^(1/γ) = (95/4000)^(1/1.4) = 0.2247,

where p3 is the pressure at the end of the constant-volume heat-rejection process.

Since V3 = V2 and V4 = V1,

p1V1^γ = p2V2^γ => p1V1 = p2V2 = p3V3 = p4V4 = Constant =>

V4 = V1 * (p1/p4)^(1/γ) = 0.125 * (4000/95)^(1/1.4) = 0.6002 m^3/kg

From the steam table at 1500 K, Specific volume, v3 = 1.134 m^3/kg

Thus, V4/V3 = 0.6002/1.134 = 0.5295

From steam table, at 95 kPa and T4, v4 = 0.0025 m^3/kg, C_v = 0.718 kJ/kg K

Thus, (C_v)(T4 - T1) = p1V1[(v4/v1)^γ - (v3/v1)^γ], where T1 = 27°C = 300 K, and v1 = 0.8594 m^3/kg.

Hence, (C_v)(T4 - T1) = 0.718 * (T4 - 300) = 300(0.8594/0.0025)^1.4[(0.5295)^1.4 - 1]

Solving for T4, we get T4 = 793.15 K.

Therefore, net work output, W = (C_v)(T3 - T2) - (C_v)(T4 - T1) = 0.718(1500 - 793.15) - 0.718(793.15 - 300) = 400 kJ/kg.

(c) The thermal efficiency (η) of the Otto cycle is given by the equation:

η = 1 - (1 / r ^ (γ-1))

Substituting the value of γ = 1.4 and the compression ratio r = 8, we can calculate the thermal efficiency:

η = 1 - (1 / 8 ^ (1.4 - 1)) ≈ 0.5 or 50%

Therefore, the thermal efficiency of the cycle is approximately 50%.

d) The mean effective pressure for the cycle:

The formula used: MEP = W_net / V_swept = W_net / (V1 - V2)

From the formula, MEP = W_net / V_swept = W_net / (V1 - V2) = 400 / (0.125 - 1) = -500 kPa

Therefore, the mean effective pressure for the cycle is -500 kPa.

In summary for an ideal Otto cycle,

(a) The pressure at the end of the heat-addition process is approximately 4000 kPa, and the temperature is approximately 1500 K.

(b) The net work output is 400 kJ/kg.

(c) The thermal efficiency of the cycle is approximately 50%.

(d) The mean effective pressure is -500 kPa.

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three ways to advertise for AVID

Answers

Answer:

newspaper, radio, televison

Explanation:

had avid in 7th :)

Answer:

1. will help for colcollares.

2. gives you money for studies

3. helps you choose the perfect collage

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