Aug 18, 2011

Why Fluorescent Light Bulbs Flickering?

Have you seen fluorescent light bulb flickering? Sure does. But have you ever wondering what the cause of this flickering are?
There are several factors that contribute to flickering in these light bulbs which are:
a)    Frequency
In reality, the lighting bulb is always flickering. This is due to the frequency of the power supply itself. Let say, for 50Hz of power supply, the bulb will be in OFF for 100 times in every second due to the a.c signal reaching zero. This flickering however is non-identifiable by using naked eye.
b)    Ballast
Ballast that is equipped in the light fitting is to control the flow of electricity from a power source to the light source. This ballast purposely to deliver a steady flow of electricity to the light bulb and when this steady flow is disrupted, the bulb will flicker.
c)    Improper bulb and improper installation
Mismatch of voltage might occur once improper bulb being use which results flickering. Bulb that not tightly fitted can cause this flickering problem.
d)    Wear & Tare
As the years goes by, the phosphor coating inside the bulb that reflect ultraviolet light will deteriorate thus flickering occur.
e)    Weather Effect
Fluorescent Bulb is filled with gas. This gas basically requires enough temperature (higher than 50 Fahrenheit) in order to fully light up the bulb.
f)     On certain cases, you might influence flickering when the bulbs are operated on a dimmer switch.

Aug 16, 2011

What is Earthing Transformer?

Have you heard about Earthing Transformer? Some says YES, but most will say NO. It is not surprise since most of electrical engineers are being exposed with normal types of transformer such as power transformer (132/33kV and etc), distribution transformer (33/11kV or 11/0.433kV) and instrument transformer (VT and CT).
photo
Earthing transformer is usually being used in electrical substation. The main purpose is to create a neutral point in areas where earth point is not available. Earthing transformer having  the zig-zag (interstar) winding. This winding arrangement is to achieve the required zero phase impendence stage which provides the possibility of neutral earthing condition. In addition auxiliary windings can also be provided to meet the requirement of an auxiliary power supply.

As for connection, the earthing can be connected directly, through an arc-suppression reactor or through a Neutral Earthing Resistor (NER). The excess current from power transformer is being fed to the NER then to the HV part of earthing transformer. This earthing transformer will convert the incoming power to 415V of power supply. This power supply eventually will be supplied to the LV Board which is being used for the power consumption of the substation itself. In the nutshell, the leakage current from power transformer is being used as a source of power for the whole substation rather than it’s going directly to the ground as wastage.

Generally, there are 4 inspection/tests need to be done to ensure good functionality of the earthing transformer:
i)              Physical Check
ii)             Electrical Test
iii)            Insulating Oil Test and
iv)           Functionality check.

Physical Check
Below is the itemized that need to be check;
i)              Check for any corrosion, damage or defect
ii)             Coordinating gaps (alignment and gap where applicable)
iii)            Name plate
iv)           Earth connection
v)            Pressure Relief Device (PRD)
vi)           Bucholz relay
vii)          Breather (leaks inspection, silica gel and etc)
viii)         Valves in operational position
ix)           Oil level in conservator tank
x)            Missing components
xi)           Ensure all terminal blocks, gauges and other accessories are fully sealed and moisture proof.

Electrical Test
Below is the testing that needs to be carried out:


No.
Test
Description
Remarks
1
Insulation Resistance
It shall be perfomed using a 5kV insulation tester. The following measurement must be recorded:
a) Between Primary and Earth
b) Between Secondary and Earth
c) Between Primary and Secondary
All value must acceed 200MΩ
2
Polirization Index
It shall be perfomed using a 5kV insulation tester. The following measurement must be recorded:
a) Between Primary and Earth
b) Between Secondary and Earth
c) Between Primary and Secondary
value shall be > 1.2
(R10/R1min)
3
Turn Ratio
Ration of HV over the LV winding
Within 0.5% of the nameplate ration of the rated voltage.
4
Impedance Voltage
Percentage measurement of zero and positive sequence impedance
As declared on nameplate
5
Winding Power Factor
Measurement of power factor of all windings
shall be < 0.5% at 20˚C
6
Vector Group
Checking the vector group of the transformer
measured vector diagram shall be equal with manufacturer's vector diagram

Insulating Oil Test
Below is the testing that needs to be carried out:



No.
Test
Description
Highest Voltage for Equipment
(≤72.5kV)
Remarks
1
Moisture Content (ppm)
≤ 15
IEC 814
2
Neutralization Value (ppm)
≤ 0.03
IEC 296
3
Interfacial Tension (mN/m)
> 35
IEC 6295
4
Colour
≤ 2.0
IEC 296
5
Dielectric Breakdown Voltage (kV) Test Gap (2.5mm)
> 50
IEC 156
6
Oil Power Factor
< 0.1% at 20°C
No.
Test
Test Method
Remarks
7
Dissolved Gas Analysis (DGA)
Using Full Gas Extraction and Headspace Methods

Standard

ASTM Standard D 3612-01
Analysis od Gasses Dissolved in Electrical Insulationg Oil by Gas Chromotophraphy Method A & C

IEC567 Standard Section 7.3 Vacuum Extraction by Partian Degassing Method.
Hydrogen gas levels should not exceed 20ppm

No detactable amount of Methane, Ethylene and Acetylene gases.

This test dhall be carried out one to two eweek after continuous energisation of transformer.



Functional Check
To ensure that the transformer is functionally well, the itemized below need to be inspected:
i)               Transformer guard check: alarms, indications, flags, facia and relay operation at transformer, relay panel and control panel shall be recorded clearly. Actual operation for each signal of all earthing transformer guards shall also be check and mentioned except for PRD.
ii)             Oil level indicator shall be functional.
iii)            All temperature indicators shall be operational.

Aug 11, 2011

TNB's Term For Newbies

For those who are newbies with working related with Tenaga Nasional Berhad, this are few technical term that commonly used.


No.
Term
Definition
1
Transmission Facility
The transmision substation and/or line cable equipment (66kV and above) or part thereof. It shall also include the distribution equipment in the transmission substation.
2
Site Acceptance Test (SAT)
Pre-commissioning test performed on the transmission facility before PIAT
3
Pre-commissioning Inspection and Testing (PIAT)
Quality Assessment activity performed by PCU after the successful completion of SAT to determine the readiness of the Transmission Facility to be energised.
4
Primary Injection
Testing by means of injecting current into the primary circuit to verify the CT Ratio, CT Polarity and the CT secondary circuits. It is not being considered as a stability test.
5
Stability Test
It is the test to asess unit protection as a complete scheme thatremain unstable for all out-zone faults and operate only for in-zone faults.
6
Unit Protection
Protection system with a clearly defined zone of protection and it is usually demarcated betwenn 2 or more sets of CT's.
7
On-Load Test
It is the test  or measurement for by means of using the energised secondary voltage and secondary load current after a circuit has been energised.
8
Live Plant
A fenced area with energised high voltage equipments.
9
Live Bay
A transformer, line/cable, bus coupler or bus section bay that being energised at high voltage. Since the word is "LIVE", those equipments basically is not isolated or earthed.
10
Electrical Service Engineer
A person who being certified by Energy Commission to carry-out the work.
11
PTT
Protection, Telecommunication & Telecontrol Department in TNB Transmission Division.

Aug 1, 2011

The Chronicle of The Lightning Protection System.

BS CP326 was first published in 1965. Then, the BS 6651:1999 Protection of structure against lightning has been adopted as guidance on the design and installation of lightning protection since 1985.

Since that 1985 publication, the UK has become more involved with the European Union (EU), particularly relating with the standardization. As a result, any British Standard now published has to be in common with its European equivalent.

By publishing the BS EN 62305, there will be a finite period of time (this period will be within 2 years) when both BS 6651 and the new BS EN 62305 series will run in parallel. Eventually, the British Standard Institution has to withdraw all their conflicting National Standard (i.e. BS 6651) in favour of the EN Standard. By the end of August 2008, the withdrawal of BS 6651 will take place.

British Standard European Norm (BS EN) 62305 is a standard which describing the “Protection Against Lightning’. It is itself consists of four distinct parts:

a)    Part 1: General Principle
It is an introduction to the other part of the standard and essentially describes on how to design the Lightning Protection System in accordance to the standard.

b)    Part 2: Risk management
The risk management is more concentrate on the risk of human life, loss of service to the public, economic losses as well as loss of cultural heritage.

c)    Part 3: Physical damage to structures and life hazard
It relates directly to the major part of BS 6651. It differs from BS 6651 in as much that this new part has four Classes or protection levels of Lighting Protection System.

d)    Part 4: Electrical and electronic system within structures
This part covers the protection of electrical and electronic systems housed within structures. With the new zonal approach called Lightning Protection Zones (LPZs), it provide information for the design, installation, maintenance and testing of a Lightning Electromagnetic Impulse (LEMP) protection system for electrical / electronic system within structure.

As the above is a general content of my posting and I will elaborate more on each of every part in BS EN 62305 in my next post.