Energy saved = 21,900 kWh per year
Fuel Saved = 730 liters
Let's dive deeper into the details below.
One can save energy in various ways, such as walking up a floor instead of taking the elevator, walking, or riding a bike for an hour a day instead of driving a car. Here are some ways in which energy can be saved:
1. Turning off lights and electronics when they're not in use
2. Using energy-efficient light bulbs
3. Reducing water usage
4. Using public transportation, biking, or walking instead of driving a car
5. Installing a programmable thermostat
6. Purchasing energy-efficient appliances
7. Using natural light to save energy
8. Properly insulating homes to save energy
9. Upgrading to energy-efficient windows and doors
10. Planting trees and shrubs to shade your home and keep it cool during the summer.
11. Weatherizing your home to keep heat in during the winter.
Assumptions: Let's assume that there are three floors in a building, and each floor has five rooms, and each room has four tube lights (40 watts each) that run for ten hours each day. Now, if we replace these tube lights with LED lights, which consume ten watts each, we can save 30*5*4*40 = 60,000 watts per day.
It will be equal to 60 kWh per day or 21,900 kWh per year.
Assumptions: Let's assume that you drive 20 km every day, and your car's average fuel consumption is 10 km per liter of petrol. If you ride a bicycle instead of driving a car for one hour each day, you can save 20/10 = 2 liters of petrol per day.
It will be equal to 730 liters of petrol per year.
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Add some source code files to compile. Output a half pyramid of stars with a height determined by the user. If the user enters a number less than one, exit. Hint: See chapter 4's discussion of this type of problem. Test Case 1 Standard Input 5 Required Output Enter a height in * in in In *** n ***** in Standard Input 10 Required Output Enter a height\n in In ** ***** I\n ***** in ***** in \n n in
A pattern program which has a pyramid shape is called the pyramid program in Java.
CODEpackage javaprograms;
import java.util.Scanner;
public class PatternHalfPyramid {
public static void halfPyramid(int n) {
int i, j;
for(i=0; i<n; i++) {
System.out.print(" ");
for(j=0; j<=i; j++) {
System.out.print("* ");
}
System.out.println();
}
}
// Main Function
public static void main(String args[]) {
Scanner scan = new Scanner(System.in);
System.out.print("Enter a height : ");
int num = scan.nextInt();
if (num >0) {
halfPyramid(num);
}
else {
System.out.print("Try Again! Kindly enter height more than 0 ");
System.exit(0);
}
}
}
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In a stress-strain curve of a tension test, the slope of stress strain plot, which is proportional to the elastic modulus, depends on electronic figurations and strengths of atomic bonds of materials. True or False
The statement that "In a stress-strain curve of a tension test, the slope of stress strain plot, which is proportional to the elastic modulus, depends on electronic configurations and strengths of atomic bonds of materials" is true because when the bonds are weaker, and the electrons are less tightly bound to the atoms, the material is more elastic, and the modulus of elasticity is low. So, we can say that the slope of the stress-strain curve, which is proportional to the elastic modulus, depends on electronic configurations and strengths of atomic bonds of materials.
In a stress-strain curve, the slope of the curve is the measure of the modulus of elasticity, or Young's modulus. This modulus, which is also known as the elastic modulus, measures the resistance of a material to elastic deformation, which means it measures how much a material will stretch when a force is applied to it. The elastic modulus is an important property of materials, and it is used to determine the mechanical behavior of a material, including its strength, stiffness, and ductility.
Elastic modulus is dependent on the electronic configurations and strengths of atomic bonds of materials. A material's modulus of elasticity is affected by the strength of the bonds between atoms, and by the number of electrons in the outermost shells of the atoms. When the bonds are strong, and the electrons are tightly bound to the nuclei of the atoms, the material is less elastic, and the modulus of elasticity is high.
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Which of the following are examples of engineering disciplines?Aerospace engineering, manufacturing engineering, and chemical engineeringMaterials engineering, electrical engineering, and civil engineeringMechanical engineering, biotechnical engineering, and computer engineeringAll of the above.
Aerospace Engineering, Manufacturing Engineering, Chemical Engineering, Materials Engineering, Electrical Engineering, Civil Engineering, Mechanical Engineering, Biotechnical Engineering, and Computer Engineering. All of the above options are examples of Engineering disciplines.
What are engineering disciplines?Engineering is a subject that involves the application of mathematical and scientific principles to design and develop systems that benefit society.
Engineering is a broad subject with a wide range of subfields, each with its distinct field of study and applications. These subfields, also known as engineering disciplines, include chemical engineering, mechanical engineering, electrical engineering, and so on.
The following are examples of engineering disciplines:
Aerospace engineering, manufacturing engineering, chemical engineering, Materials engineering, electrical engineering, civil engineering, Mechanical engineering, biotechnical engineering, and computer engineering
So, the answer is all of the above-given options are examples of Engineering disciplines.
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Answer:
all of the above
Explanation:
Please label the following statements as T (true) or F (false).
1. Loading errors are systematic uncertainty.
2. Resolution uncertainty is usually treated as random uncertainty.
3. The mass balance in the lab has a resolution of 1 g.
4. The Fluke 45 multi-meter reads faithfully at a frequency of 2 Hz.
5. For the function generator in the lab, a range under 20 kHz range button with a dial position 1.2 gives a wave with frequency of about 12 kHz.
6. Regression analysis is limited to linear regression.
7. In the Displacement and Strain lab, the surface (fiber) stress is measured by the strain gage.
8. A gage factor of 2.0 is used in the strain gage in the Displacement and Strain lab.
9. The proximity probe is used to verify the Euler-Berboulli Beam theory while the strain gage is used to verify Hook’s law in our Displacement and Strain lab.
10. The proximity probe in the lab is powered by ±15 VAC.
The statements are labeled as T (true) or F (false) given below:
A systematic uncertainty is defined as the possible unknown measurement variation that does not randomly vary from data point to data point. Random uncertainty causes one measurement to differ from the next.
Loading errors are systematic uncertainty. - TrueResolution uncertainty is usually treated as random uncertainty. - FalseThe mass balance in the lab has a resolution of 1 g. - TrueThe Fluke 45 multi-meter reads faithfully at a frequency of 2 Hz. - TrueFor the function generator in the lab, a range under 20 kHz range button with a dial position 1.2 gives a wave with a frequency of about 12 kHz. - TrueRegression analysis is limited to linear regression. - FalseIn the Displacement and Strain lab, the surface (fiber) stress is measured by the strain gauge. - TrueA gauge factor of 2.0 is used in the strain gauge in the Displacement and Strain lab. - TrueThe proximity probe is used to verify the Euler-Berboulli Beam theory while the strain gauge is used to verify Hook’s law in our Displacement and Strain lab. - FalseThe proximity probe in the lab is powered by ±15 VAC. - True.Learn more about systematic uncertainty at:
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A major coffee retailer seeks Accenture's help to improve its supply chain
management. Accenture should suggest an enterprise platform utilizing which type
of process?
Identify the option that defines how positions are measured on the background in the following background property:
background: color url(url) position / size repeat attachment
origin clip;
The option that defines how positions are measured on the background in the following background property: position.
What is positions?Positions are the places or orientations of objects relative to each other. They are used to describe the orientation of a physical object in space, or the physical location of an object in a two-dimensional or three-dimensional environment. Positions can be described in terms of x, y and z coordinates, which are used to denote the position of an object in a three-dimensional space. Positions can also be described in terms of angles and distances, which are used to denote the orientation of an object in a two-dimensional space. Positions can be used to describe the location of an object in relation to another object in a scene, or the relationship between different objects in the same scene.
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Suppose that the current value of PC is 0x00004000. Can we use a single jump instruction to go to PC= 0x20014924?(if yes, write the jump instruction and show the value of the immediate field in Hex. If not, use a combinations of instructions to do so and show the immediate values in Hex)
No, we cannot use a single jump instruction to go from PC = 0x00004000 to PC = 0x20014924, since the jump instruction can only jump to a location within a certain range of the current PC value.
To jump to 0x20014924, we would need to use a combination of instructions, such as a branch instruction and a jump instruction. Here is an example of how we could do this:
Add the immediate value 0x20010924 to the current PC value 0x00004000 using the addi (add immediate) instruction:
addi $t0, $zero, 0x20010924
add $t0, $t0, $zero
Branch to the new address using the jalr (jump and link register) instruction:
jalr $zero, $t0, 0
The immediate value for the addi instruction would be 0x20010924, and the immediate value for the jalr instruction would be 0, since we want to jump to the address stored in register $t0.
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iintellectual property rights may be legally protected in several ways. which of the following answer options is not one of the ways of protecting intellectual property?
The following answer option is not one of the ways of protecting intellectual property: Planting evidence in another company's office.
Intellectual property refers to creative works or inventions that have a commercial purpose or application. Intellectual property is classified as either industrial property or copyright. Patents, trademarks, industrial designs, and geographical indications are examples of industrial property. Copyright refers to literary and artistic works like books, films, and music, as well as architectural and graphic designs.The legal protection of intellectual property rights:There are various ways to legally protect intellectual property rights, including:PatentTrademarkCopyrightTrade SecretIndustrial Design Plant Varieties.
This answer the question: " which of the following answer options is not one of the ways of protecting intellectual property?"
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Find the rate of heat transfer by convection (kW) when: the convective heat transfer coefficient is 7.2 W/Km^2, the surface area is 16 m^2, the surface temp. is 317 K, and the surrounding temp. is 429 K.
The rate of heat transfer by convection (kW) when the convective heat transfer coefficient is 7.2 W/Km², the surface area is 16 m², and the surface temp. is 317 K, and the surrounding temp. is 429 K.
Heat transfer is the method of exchanging heat energy from one location to another. The three methods of heat transfer are conduction, convection, and radiation. The rate of heat transfer by convection is given by;
Q = h.A (T surrounding - T surface)
Where Q is the rate of heat transfer by convection h is the convective heat transfer coefficient A is the surface area t surface is the surface temperature t surrounding is the surrounding temperature Given, h = 7.2 W/Km²
A = 16 m²t
surface = 317 Kt surrounding = 429 K.
Substitute the given values into the formula;
Q = 7.2 × 16 × (429 - 317)Q = 7.2 × 16 × 112Q = 12902.4 W = 12.902 kW
Therefore, the rate of heat transfer by convection is 12.902 kW.
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Complete this function, such that it receives a lowercase letter which is guaranteed, and returns an upper case letter:
char to_upper(char c){}
2) Complete this function, such that it receives an integer array and its length, and returns the index of the largest member. The length will not exceed the int limits.
int arg_max(int nums[], int len){}
3) Complete this function, such that it receives a char array with a length of 33 given and an unsigned integer and converts the integer into its binary format, and put the results into the char array.
For example:
5 => "00000000000000000000000000000101"
void to_binary(char binary[], unsigned int n){}
The complete function for the conversion, integer array and char array is determined.
1) The function to_upper() should take in a lowercase letter c as an argument and return its uppercase equivalent. The following code snippet should do the trick:
char to_upper(char c) {
return c - 32;
}
2) The function arg_max() should take in an integer array nums and its length len as arguments and return the index of the largest member. The following code snippet should do the trick:
int arg_max(int nums[], int len) {
int index_of_max = 0;
for (int i=1; i nums[index_of_max])
index_of_max = i;
}
return index_of_max;
}
3) The function to_binary() should take in a character array binary and an unsigned integer n as arguments and convert the integer into its binary format and store the result in the character array. The following code snippet should do the trick:
void to_binary(char binary[], unsigned int n) {
int i = 0;
while (n > 0) {
binary[i] = n % 2 + '0';
n = n / 2;
i++;
}
for (int j=i; j<33; j++)
binary[j] = '0';
binary[32] = '\0';
}
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Consider the various ways in which oil pollution can reach the North American oceans. The greatest amount of oil pollution comes from which of the following sources? Choose one: O A. oil leakage from offshore drilling platforms O B. purposeful dumping of oil-contaminated bilge water from cruise ships O C. large oil tanker accidents near ports and in riversO D. oil residue on roadways and oil dumped in storm drains
The greatest amount of oil pollution comes from the large oil tanker accidents near ports and in rivers. The correct answer is option c.
Considering the various ways in which oil pollution can reach the North American oceans, the greatest amount of oil pollution comes from large oil tanker accidents near ports and in rivers. The oil tanker accidents occur because of the breaking of oil tankers while they are transporting oil to different countries through the ocean water.
The oil pollution results in severe damage to the aquatic life of the oceans. It is the largest cause of water pollution, which is why measures are taken by different environmental organizations to prevent oil pollution from reaching the oceans, leading to severe consequences on a global scale. The other sources of oil pollution are also harmful to the aquatic life, but the impact of large oil tanker accidents near ports and in rivers is greater than other sources.
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which of the following is used to process and display browser database application forms, reports, and queries?
The following is used to process and display browser database application forms, reports, and queries: Web Application Server (WAS) is a server that uses web application server technology to deliver web-based applications.
It is a program that manages user requests for web pages and is responsible for generating content that is returned to the user's browser. A Web Application Server is responsible for translating browser requests into database queries that generate the desired output in the form of web pages. A web application server's primary purpose is to deliver web pages that are dynamically generated.
When web users request information from a database via an application, the web application server will interact with the database on the user's behalf. The following are some of the features of web application servers: Database connectivity support is provided. Session management is supported.
Security authentication and authorization for users is provided. Processing of complex business logic is supported. Support for multiple languages is provided. Logging and auditing capabilities are provided in a web application server. A web application server's core responsibility is to provide a runtime environment for web applications. It enables developers to create and deploy applications that can be accessed via the web.
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Let a 2 - D array declaration be char Arr[100][100] store data such that the base address of the array is 0. Additionally, considering the array to be byte addrassable, what would be the address of element stored at arr[20][30].
The address of the element stored at arr[20][30] in the 2-D array declaration char Arr[100][100] would be 30 + 20 * 100 = 2030.
The declaration of the 2-D array is shown below:
char Arr[100][100]
Here, Arr is a 2-D array consisting of 100 rows and 100 columns. This means that there are a total of 10,000 elements in this array. Each element of this array is of type char. Therefore, each element will occupy a single byte of memory.
The array is byte-addressable. This means that each element of the array is accessible using its byte address. Since each element occupies a single byte of memory, the byte address of an element is the same as its memory address.
To calculate the address of the element stored at arr[20][30], we first need to understand how the elements are stored in the array.
The elements of a 2-D array are stored in row-major order. This means that the elements of the first row are stored first, followed by the elements of the second row, and so on. Within a row, the elements are stored from left to right.Now, to calculate the address of the element stored at arr[20][30], we need to calculate the byte address of this element. Since the array is byte-addressable, we can calculate the byte address of an element by multiplying its row number by the number of columns in the array and adding its column number. This gives us the following formula:
Byte Address of Element = Base Address + (Row Number * Number of Columns + Column Number)
Since the base address of the array is 0, we can simplify this formula to:
Byte Address of Element = Row Number * Number of Columns + Column Number
Using this formula, we can calculate the byte address of the element stored at arr[20][30] as follows:
Byte Address of Element = 20 * 100 + 30 = 2030
Therefore, the address of the element stored at arr[20][30] is 2030.
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A homogeneous beam of triangular cross section is subjected to a pure bending moment as shown in figure (a). Figure (b) indicates the cross section with centroid C as the origin of the coordinate system. In which point of the cross section is the magnitude of normal stress greatest? (a) y (b) fy Mz O (a) Point B O (b) Point C (c) Points A and B (d) Point A O (e) Not enough information to tell
The magnitude of normal stress is greatest at point D. Point A in the triangular cross-section of a homogeneous beam subjected to a pure bending moment.
The cross-section of a homogeneous beam of triangular cross-section, the point of the cross-section where the magnitude of normal stress is the greatest is Point C.
Normal stress is a type of stress that occurs in a member when a force is applied perpendicular to the member's cross-section. It is calculated using the formula: σ = F/A
Where,σ = normal stress, F = the applied force, and A = the cross-sectional area of the member.
Now, let us consider the cross-section of the beam in question:
The centroid of the cross-section is at point C. This means that the cross-section is symmetric with respect to the y-axis. When a pure bending moment is applied to the beam, it causes the top of the beam to compress and the bottom of the beam to stretch. This creates a normal stress that is maximum at the top and minimum at the bottom.
Since the cross-section is symmetric, this maximum normal stress will occur at a point equidistant from the top and bottom of the beam. This point is point C. Therefore, the point of the cross-section where the magnitude of normal stress is the greatest is Point C.
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The amount of energy derived from an electric source, commonly measured in volts is called
The amount of energy derived from an electric source, commonly measured in volts is called voltage.
Step by step explanation:
Voltage is the electric potential difference between two points in a circuit, which measures the energy needed to move a unit charge from one point to another. The unit for measuring voltage is the volt (V). Voltage is frequently known as electric potential, electric tension, and electric pressure. Voltage can be defined as the amount of potential energy transferred from an electric source to an electric load per unit charge.
The formula for voltage is: V = W / Q
where V represents voltage, W represents work, and Q represents charge. Voltage is measured in volts (V). Voltage can be changed by using a transformer in a circuit, which can raise or decrease the voltage of an AC power supply. A transformer can be used to raise or decrease the voltage of an AC power supply in a circuit. Voltage regulation can also be achieved with a voltage regulator, which can maintain a fixed voltage level despite changes in load resistance or input voltage.
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