Design And Construction Of Automatic Phase Selector

5 Chapters
|
51 Pages
|
5,437 Words

The design and construction of an Automatic Phase Selector (APS) involve the integration of electronic components to facilitate seamless switching between multiple power phases, ensuring uninterrupted electricity supply. This device, essential for managing power distribution in areas prone to fluctuations or outages, utilizes advanced circuitry to detect phase imbalances and automatically switch to an available phase, optimizing power delivery. By employing relays, sensors, and microcontrollers, the APS monitors voltage levels across phases, swiftly activating the appropriate phase to maintain a steady power supply. Through meticulous assembly and programming, the APS achieves efficiency and reliability, safeguarding electrical systems against disruptions and enhancing operational resilience in diverse settings, including residential, commercial, and industrial environments.

TABLE OF CONTENT

Chapter One
Introduction
1.1 Background
1.2 Aims/Objectives Of The Project
1.3 Relevance Of The Project
1.4 Scope Of The Project
1.5 Limitations
1.6 Target Beneficiaries
1.7 Significance Of Study
1.8 Achievement Of The Construction Of The Project

Chapter Two
2.1 Literature Rewiew
2.2 Effect Of Power Failure
2.3 Equipment Voltage Susceptibility
2.4 System Interactions And Solutions

Chapter Three
3.0 Methodology
3.1 Information Gathering
3.2 Ways Of Effecting The Design And Constriuction Of An
Automatic Three Phase Selector
3.2.1 Phase Selection By Manual Control
3.2.2 Phase Selection By Sequential Logic Control
3.2.3 Phase Selection By Microprocessor Control
3.2.4. Phase Selection By Comparator Control

Chapter Four
4.0 System Design Analysis
4.1. Components Used In The Design And Construction Of The
Automatic Three Phase Selector
4.2. The Design Topology
4.2.1 The Power Supply Block
4.3 Design Of The Circuit
4.4 Work Of Lm 741 Comparator
4.5 Comparator Using Operational Amplifier

CHAPTER FIVE
System Testing, Recommendation And Conclusion
5.1 System Testing
5.1.1. Testing Procedures And Results
5.2 Problems Encountered
5.3 Result
5.4 Conclusion
5.5 Recommendations
References

CHAPTER ONE

INTRODUCTION
As the growing population of human race widens the gulf between energy supply and energy demand, the imbalance in energy availability sent researchers into excavating for a way of settling this age long squabble. A lasting solution is vested on alternative use of the renewable energy source, a project that is yet to be widely applied. Hence, the continuation of the unsettled yearns for sufficient power. Consequently, the power lines are frequently over loaded resulting to a trip of power by the action of switch gears or by the load shading process undertaken by the distribution authorities.
Since it is crystal clear that some institutions such as health related institutions and some other delicate systems should not be allowed to suffer equally with their counterparts, Automatic Phase Selector is used to sustain energy consumption in the time of phase trip. The design of this circuit involves the use of automatic switches but the details of design varies from place to place, time to time and also depends on the type of load involved.
This project involves the use of transistor driven relays to affect the change of phase whenever the voltage condition becomes intolerable in the previous phase connected.

1.1 BACKGROUND OF STUDY
The intelligent phase selector is a system that is capable of comparing three phases and switching automatically to any of the three phases. The system consists of three main parts namely; the transformer, comparators (which is the brain of the system) and electrical switching device (relay).
The transformer used here is the step down type of transformer (it step down 240v to 12v) and these transformer is feed in with different phase voltage, rectified and smooth. Then fed in to a voltage regulator that has positive output. The regulator outputs were connected to comparators. Here the comparators are three in number. We call the comparators the brain of the system because these comparators are connected in a way that each of them will give out an output.
The relay in the system is where the output voltage is connected. In this project we even went as far as using pictures for illustration of some components.

1.2 AIMS/OBJECTIVES OF THE PROJECT
The analysis of this project cannot go without enumerating the goals meant to be achieved in the pursuit of the work. These objectives include:-
i. To develop a simple low cost device aimed at easing the prevalent burden faced by delicate offices, parastatals and institutions who need very low but constant power supply. Since supply is always on along the distribution lines
that supply such sites, what pesters on the progress of work thereof is always the unwarranted trip of phases due to power usage from neighboring consumers. The automatic phase selector therefore, erases this setback form the face of progress of work in such offices.
ii. To stimulate the interest of upcoming students to take up research not only in their field of study “Electrical/Electronic Engineering” but also to extend their arms to other disciplines, thus enhancing the versatility of Electrical/Electronic Engineering.
iii. To create awareness that will stimulate the interest of fellow students who intend to take up research topic on automatic switch of any type.

1.3 RELEVANCE OF THE PROJECT
The issue of selecting or switching over manually is now a thing of the past. Nowadays we know that homes and offices enjoy steady power supply once the three phases are available (i.e. red yellow and blue phases). Is just a question of making a quick and automatic three phase selector?

1.4 SCOPE OF THE PROJECT
The scope of the project covers aspects like the features of automatic three phase selector, its applications, and its operations. Its advantages and its components. Finally, it covers the importance on the need of automatic three phase selector
and contributions toward a greater sharing load balance and a better three phase power distribution and monitoring for domestics consumers.

1.5 LIMITATIONS
Owning to the nature of this project, the research centers and the resources were not easy to come by within the immediate environment. Some of the limitation encountered on the course of this project include financial and time constrains which did not really take much room for additional capacity beyond what is at hand.

1.6 TARGET BENEFICIARIES
This project will provide lasting solutions to the heavy losses incurred by commercial institution, industries, hospitals, airport etc caused by poor manual selector means and efficient switching facilities. It will also be of use in our household because poor selector of phase manually causes damage to our household equipment example electronics like television,radio,videoplayer etc and electrical appliances like refrigerator, air condition, fans just to mention but a few. Finally another target is to eliminate the loss of human life due to manual selection of the three phases.

1.7 SIGNIFICANCE OF STUDY
The significance of this project work cannot be overemphasized. This is because the number of lives that has being lost to the hand of interruption of power in health institutions and the like is not negligible. Delicate appliances have become the main victim of this artificial circumstance. The applicability of the outcome of this research work in several facets of human endeavor makes this work of real importance to humanity.
The use of the device produced from this research work would help to reduce human labor and hazard, going by the fact that many have been handicapped by electric shock because of the attempt they made to select another phase, and that the handicapped are helpless and cannot change phase.

1.8 ACHIEVEMENT OF THE CONSTRUCTION OF THE PROJECT
As long as electrical generation and construction is must in everyday activities, electrical power consumption is expected to be reliable and constant supply. Therefore, what we tend to achieve from this project is;
1. To have constant power supply.
2. To have quick operation i.e. phase selection
3. Reliable power supply
4. Easy operation
5. Avoidance of risk in doing manual changeover or switch

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MORE DESCRIPTION:

Automatic Phase Selector:

An Automatic Phase Selector (APS) is a device that automatically selects the best phase among the available three-phase power sources based on certain criteria, such as voltage stability or absence of faults. Automatic Phase Selector systems are commonly used in industrial and commercial settings to ensure a continuous and reliable power supply. Here’s a simplified explanation of how an Automatic Phase Selector works and the key components involved:

Working Principle:

The Automatic Phase Selector continuously monitors the three-phase power sources and selects the phase that meets predefined criteria. The criteria can vary but typically include factors like voltage stability, phase balance, and absence of faults such as overvoltage, undervoltage, or phase loss. When a phase fails to meet the criteria, the Automatic Phase Selector switches to another phase that does meet the criteria.

Components Required:

  1. Three-Phase Power Inputs: These are the three-phase power sources you want to monitor and select from.
  2. Voltage and Current Sensors: Sensors are used to measure the voltage and current in each phase. These sensors can be current transformers (CTs) and voltage transformers (VTs) or other suitable sensors.
  3. Microcontroller or Microprocessor: The brain of the Automatic Phase Selector that processes sensor data, monitors the criteria, and controls the switching mechanism.
  4. Relays or Contactors: These devices are used to physically switch the power connections from one phase to another based on the microcontroller’s instructions.
  5. User Interface (Optional): An interface, such as an LCD display or LEDs, can be included to show the selected phase or provide status information.

Construction and Operation:

Here’s a simplified outline of how an Automatic Phase Selector can be designed and operated:

  1. Safety First: Ensure all safety precautions and electrical codes are followed.
  2. Design the Circuit: Create a circuit diagram for the Automatic Phase Selector, incorporating the input connectors, sensors, microcontroller, and switching relays.
  3. Sensor Installation: Install voltage and current sensors in each phase to monitor their respective parameters.
  4. Microcontroller Programming: Write the code for the microcontroller to continuously monitor the voltage, current, and criteria. The microcontroller should decide which phase to connect to the load based on the criteria.
  5. Relay/Contactor Control: Program the microcontroller to control the relays or contactors to switch the power connections between phases.
  6. User Interface (Optional): If you want to provide user feedback, connect and program a user interface to display the selected phase or system status.
  7. Testing: Thoroughly test the Automatic Phase Selector under various conditions to ensure it performs as expected, including scenarios where one phase fails to meet the criteria.
  8. Installation: Install the Automatic Phase Selector in the desired location, connecting it to the power sources and the load.
  9. Safety Checks: Conduct safety inspections and ensure compliance with local electrical regulations.
  10. Maintenance: Regularly maintain and calibrate the Automatic Phase Selector to ensure its continued reliability.

It’s crucial to consult with a qualified electrical engineer or electrician when designing and constructing an Automatic Phase Selector to ensure safety and compliance with local electrical codes and regulations. The specific design and operation may vary based on the requirements of your application and the capabilities of the Automatic Phase Selector you choose to implement.