THIS BLOG IS WRITTEN FOR CONSTRUCTION SUPERVISORS AND ENGINEERS TO GAIN PRACTICAL KNOWLEDGE ON THERMAL POWER STATION BOTH ON SUB CRITICAL AND SUPER CRITICAL TECHNOLOGY.
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Saturday, 5 November 2016
PRE CHARGING TEST AND COMMISSIONING OF HT SWITCH GEAR (TYPICAL) -ABC OF THERMAL POWER STATION
CONCLUDING PART
PRE – ENERGISING CHECKS &
TESTS
-Inspect any physical damage in
the busbar, insulation, panel doors, power & sliding contacts etc. and to be rectified if found. Special attention to be
given on porcelain insulators holding the live line
-Making the panel inside dust
free & free from foreign materials
-Checking the tightness alignment
& clearance of bus bars ,smoothness in racking in & racking
out of modules, proper making of
limit switch contacts(test and service), tightness of input power cables and outgoing power & control internal wirings.
-Inspect all relays and make sure
that any blocking used for shipping purpose is removed and the
armature moves freely.
-Check all doors for proper
mounting with respect to the switch handle.
-Check door interlock mechanism
and connection.
-Test the pts,cts & relays
involved. keep the recommended settings for the relays like over
current, under voltage & overload protections,
calibrate the meters (ammeters, voltmeters, power
meters & energy meters etc) and
keep proper records for future reference.
-
Test the insulation of boards with 5000 v dc megger & the value
should be as per the relevant
is specification (more than 50
mega ohms).
-Check closing & tripping
interlocks ,overload relay setting in the panel.
-Measure busbar resistance , vcbs
contact resistance (should be less than 50 milli ohms), closing
& tripping time if test
report is not available at site.
-Check the protection circuit
wiring connection by conducting primary injection current.
-Carry out high pot test for 75%
of voltage mentioned in the test report for ht buses,100 % for ht
incoming power cables and find
out the leakage current.
-Check the input power cable terminations from
transformer secondary
-Ensure the phase sequence of incoming pt wirings and
circuit closing of cts are proper before
charging the panel.
-Check closing & tripping
mechanism operates smoothly both manually and electrically.
-Space heaters & thermostat
shall be in good condition Space heaters to be ON a day before charging.
-Ensure all covers are provided
and no conducting part is earthed. All the gland holes are covered
and temporarily sealed to
minimize the short circuit of live terminal through rodents.
CHARGING PROCEDURE:
-Ensure tie breaker in associated station switchgear is in
withdrawn position.
-Ensure all feeder breakers of unit Swtichgear are in withdrawn position.
-Check and record the final IR of supply cables for the DC
control bus and the AC heater supplies :
-Energise both the supply cables for DC control bus and AC
heater supplies.
-Put the tie breaker
in Test position.
-Put all control
fuses for the Tie breaker in position and switch on its control supply.
-Select LOCAL/REMOTE selector switch to local and close and
trip the tie breaker once check its
operation.
-Check tie
isolator. Interlock in
closing circuit of tie breaker.
-Check that tripping relays for Tie breaker and main incomer
breaker are not operated and are reset.
-Select Tie breaker Local / Remote switch to REMOTE.
-Give closing impulse to Tie breaker from UCB and check that
the breaker closes.
-Short Terminals (tripping contact of E/F and O/C Relay) and
check that tripping relay energises and tie breaker trips.
-Switch off the control supply and reset the tripping relay
and remove the shorts as detailed
earlier.
-Put the incomer breaker
in Test position.
-Put control fuses of Incomer breaker in position and switch
on control supply.
-Select Local/Remote switch of Incomer breaker to local and
close and trip the incomer breaker once to check its operation.
-Short the terminals in Incomer breaker cubicle to bypass the
“Generator Breaker closed permissive”.
-Select Incomer breaker Local/Remote switch to Remote.
-Give closing command by control switch in UCB and check
that the breaker closes.
-Switch on the control supply to tie breaker.
-Short terminals in
incomer breaker and check that :
a. Incomer
breaker trips
b. Tie
breaker closes automatically
-Reset all alarms and relays and remove shorts.
-Give trip command to incomer breaker control switch in UCB
to bring switch position corresponding to breaker position.
-Put check/manual switch for incomer breaker in UCB in
MANUAL position.
-Give closing command to incomer breaker and check that :
a. Incomer
breaker closes.
b. Tie
breaker trips automatically.
-Reset all alarms and relays.
-Give trip command to tie breaker control switch in UCB to
bring switch position corresponding to
breaker position.
-With incomer breaker ON and check/manual switch in manual
position, give closing command to the tie breaker and check
that :
a. Tie breaker
closes;
b. Incomer
breaker trips.
-Reset all alarms and relays.
-Trip the Tie breaker.
-Switch off the control supplies to both incomer and tie
breakers.
-Remove all test connections and check that any
disconnections made for the purposes of testing have been correctly reinstated in tie and incomer panels.
-Keep incomer breaker
in withdrawn position (It will remain in withdrawn position till unit auxiliary
transformers are commissioned).
-Check ‘danger/warning notices’ are fixed at relevant points
to ensure safety.
-Ensure effective communications between UCB and switch board room are established.
-Check and record the final IR value of the following
equipments :
a Isolator/Tie
breaker of associated station switchgear.
b.Tie
breaker of Unit switchgear
c. Unit
switchgear bus bar
d.Tie bus
duct/cable megger used ___________ KV
-Ensure VT is in
service position with all its fuses put on.
-Check all the relay settings in TIE breaker panel are as
per their protection schedule.
ENERGIZING PROCEDURE
-Put the Tie breaker of associated station switchgear in
service position and close the tie breaker to charge the Tie cable.
-Observe the cable for any abnormality.
-Put the tie breaker in service position.
-Switch on the control supply to the tie breaker.
-Inform all concerned parties about the intention of
charging the unit switch board.
-Put local/remote switch of tie breaker in REMOTE position.
-Give closing command from the UCB to tie breaker to charge
the unit switch board.
-Check and record the unit bus bar voltage for all the three
phases.
-Observe the unit switch board for any abnormality.
-Put the synch. Check/manual selector switch to CHECK.
-Check permissive contact in synchronising check relay
closes.
-Check the phase sequence at
unit bus VT secondary terminals as detailed in following table. (It shall be same as that of associated station board).
MEASUREMENT IN VT CUBICLE
-Do the phasing out between VT secondaries of station and
unit board.
-Keep the board charged for 24 Hours and observe it for any abnormality.
-Inspect all equipment externally for any sign of abnormality after being charged
for 24 Hrs.
-It will be the duty
of the testing team leader to ensure that when the system is operating under
load conditions that all equipment are externally inspected for any sign of
stress or abnormality.
Few photographs of drawing is given below
balance phographs in final part
Saturday, 22 October 2016
HT SWITCHGEAR ERECTION ,TESTING AND COMMISSIONING (PART-II) -ABC OF THERMAL POWER PLANT
In my last dispatch I have indicated the number of panels
required to be installed for HT connection .A picture of the same was also
attached. Numbers of panels are erected aligned on line. Incoming and outgoing
cables are laid through spreader room . These panels are erected by the side of
the service bay through an opening kept for this purpose only. Once these
panels are and aligned then pre-commissioning activity starts.
Opening has been kept at service bay side to lift panels as shown in the above picture.
Cable spreader room erection of cable trays under progress. This is below the Panel room
This is the panel room ..civil works under progress.
Following testing are being carried on HT panel after
erection.
a. Insulation resistance measurement of bus
bar (power ,control ),vcb
b.
Busbar,contact resistance measurement
c. High voltage test
– bus.
d. Primary injection test
- vts & cts.
e.
Protection, interlocks and metering circuits .
Following
instruments (calibrated) , systems ,
qualified testing personnel ( Accident
while testing is very common, this may be fatal at HT lines) etc are required
to be lined up.
5000v insulation tester (motorized)
; 3 phase 415 ac 50 hz system with
variac (3 ph and 1 ph)
Dc control supply (preferably from
permanent DC source; Hi pot ac/dc source
Measurement kit ; Current injection kit ; Micro
ohm meter; Milliseconds timer ; Multimeter ( 4 and half digit ) digital ; Ananlog
Multimeter ; Volt and Ampere meter for measurement; Tong tester; Number of long testing leads with end
connectors ; Supplier’s tools for the panel etc.
Safety precaution is paramount
before and after testing a few points are given below:-
The Engineer-In-Charge of the
testing team will inform each member of
his team as to the exact nature and extent of his contribution and
responsibilities towards the tests carried out.
Only nominated person will take part in the
tests.
All persons must acquaint
themselves with the use and location of fire
extinguishers and first aid posts.
Adequate lighting facilities will
be provided at all times.
Each test will be carried out under
the control of the test team leader.
A strict and safe method of
applying test leads shall be practiced.
Bare wires shall not be inserted into sockets.
A record of any alternation made
during the test such as shorts or disconnections, shall be made and annexed to
relevant test procedures .
Adequate number of poster
,signboard are placed strategic location for safety.
All procedures are recorded and
checked with the drawings . A single line diagram or conditions to energise the
particular panel and also for tripping may be made before testing .This will be
immense help. This is not a must condition but helps during testing as ready
reference.
CHECKLIST FOR THE FOLLOWING PANELS
ARE CHECKED
i. Incomer panels (1 & 2) ;ii. Outgoing
feeders; iii. Bus coupler; iv. Tie breaker
- All incoming and outgoing cables
to incomer panels are completed.
-Interlocks for closing and protection
for tripping are to be checked as per standard check list.
-11KV Bus Duct/Cable erection from
station switch gear to unit switch gear complete in all respects.
-The Tie Breakers at station
switchgear end of tie is tested and in withdrawn position with shutters locked.
All circuit breakers contained in
11KV unit switch gear in withdrawn position.
Clearance from Erection Department
for carrying out tests on 11KV unit switchgear
and 11KV Bus duct/cable from unit to station switchgear obtained.
-11KV station switchgear associated
with the energising of this unit switchgear is live.
-Safety Clearance notification
issued and effective for 11KV unit
switchgear and 11KV tie bus duct/cable.
-The associated DAS/Annunciation
scheme is complete, tested and in service.
-The control supplies are
available.
COMMISSIONING PROCEDURE :
-Check and test all the panels of
11 KV unit switch board and associated equipments as per their standard check
list. Record in a format for future use.
Check and test the unit switchgear
bus bars and the Tie bus duct/cable to the station switchgear as per their
standard check lists and record.
Check and test supply cables for
the DC control bus and the AC heater supplies as per their connection diagram
and record.
Continued to PART-III --PRE ENERGISING TESTING ,AND COMMISSIONING
Friday, 30 September 2016
ELECTRICAL SYSTEM ( HT ) PANEL 11KV FOR EQUIPMENTS AND SYSTEM (PART -I)- ABC OF THERMAL POWER
Till last dispatch basics electrical system discussed which
are essential for the erection and commissioning of the Power system. Earthling
rods and flats are laid at different places when civil works under progress.
Riser are kept at different places to get it connected. Slowly it becomes like
a grid. There value etc are precisely monitored time to time. After that main
plant DC system are getting erected .As it was told no AC system will run
without the DC input.
Two more systems are coming after that one is HT ( 11kv/6.6
KV /3.3KV system ). It allows to distribute power in power plant as bulk and also
the source running equipment like BFP , ID ,FD PA etc motors . Higher rating
equipments are connected with HT ac voltage and this will reduce the cable size
considerably and easy handle at site.
Here is brief description of panel in a 500 MW power station.
There will be variation site to site but more or less these feeders will be
there. This will give a good idea of number of HT panel to be commissioned. Viewers
comments /value addition will be appreciated.
11 KV Switchgear
Generally a few companies supplied these panels
and they are BHEL . ABB , C&G ETC . these panels are installed in service
bay near unit one side at an elevation of 8.5m .
1. PLANT DETAILS
:
THIS
SYSTEM CONSISTS OF 11 KV AND 3.3 KV HT
SWITCHGEARS (UNIT SWITCH BOARD BA,BB,CA,CB FOR UNIT #1 AND UNIT #2 AND STATION
SWITCH BOARD 0BA,OCA FOR 11 KV/3.3 KV
STANDBY SWITCHBOARD SUPPLY IN
CASE OF BOTH GENERATORS OUT OF SERVICE) .
MAKE: BHEL,BHOPAL
RATINGS VOLTAGE : 11 KV & 3.3 KV 3PHASE 50 HZ AC ,
CURRENT:2750 A
11 KV SWITCHGEARS
I.The 1BA Board consists of the following HT Panels :
1.Incomer Panel ( incomer from UT A )
2.PT PANELS ( line /feeder PT
and Bus PT )
3. Tie breaker
from standby switchboard (0BA)
4 . OUTGOING FEEDERS
3240 KW
Cooling Water Pumps 1 & 2
2450 KW Primary Air fan A
(Unit #1)
16MVA Unit
Aux. Transformer A
16MVA Misc.
service Transformer()
2MVA Unit service transformer A
3MVA VFD
transformer (ID Fan 1A Channel 1&2)
1.25MVA Bunker
area service transformer
1.6 MVA ESP
Service transformers
1.25 MVA CHP
transformer 1A
0.75 MVA
Track Hopper Service Transformer
1.6MVA Fuel
oil service transformer
7.5 MVA
Station aux. Transformer.
2 MVA
Station Service Transformer
6.3 MVA CHP
Aux.
5. Spare
feeders
a) 3240 KW
Motor feeder
b)2 MVA
Transformer feeder
II.The 2BA Board consists of the following HT Panels :
1. INCOMER PANEL
Incomer
Panel ( incomer from UT A ) (Unit #2)
2. PT PANELS (
line /feeder PT and Bus PT )
3. Tie breaker
from standby switchboard (0BA)
4. OUTGOING
FEEDERS
3240 KW
Cooling Water Pump 4
2450 KW
Primary Air fan A (Unit # 2)
16MVA Unit Aux. Transformer A
16MVA Misc.
service Transformer
2MVA Unit service transformer A
3MVA VFD transformer
(ID Fan 2A Channel 1&2)
1.25MVA
Bunker area service transformer
1.6 MVA ESP
Service transformers
1.25 MVA CHP
transformer 1B
0.75 MVA
Track Hopper Service Transformer
1.6MVA Fuel
oil service transformer
7.5 MVA
Station aux. Transformer.
2 MVA
Station Service Transformer
6.3 MVA CHP
Aux.
5. Spare feeders
3240 KW
Motor feeder
2 MVA
Transformer feeder
III. The 1BB Board consists of the following HT Panels :
1. INCOMER PANEL
Incomer
Panel ( incomer from UT B ) (Unit #1)
2. PT PANELS (
line /feeder PT and Bus PT )
3. Tie breaker
from standby switchboard (0BA)
4. OUTGOING FEEDERS
10000 KW MD
BFP (Unit # 1)
3240 KW
Cooling Water Pump 3
2450 KW
Primary Air fanB (Unit # 1)
16MVA Unit Aux. Transformer B
2MVA Unit service transformer A
3MVA VFD
transformer (ID Fan 1B Channel 1&2)
1.6 MVA ESP
Service transformers
1 MVA
Switchyard Service Transformer
2 MVA Ash
Sys Compressor Plant Transformer
1 MVA Ash
Water Power House Service Transformer
2 MVA Off
Side Plant Service Transformer
2 MVA WTP
Area Service Transformer
2 MVA
Station Service Transformer
0.5 MVA Raw
Water Pump House Service Transformer
1.6 MVA
Administration Building Service Transformer
5. Spare feeders
2450 KW
Motor feeder
1 MVA Transformer
feeder
IV.The 2BB Board consists of the following HT Panels :
1. INCOMER PANEL
Incomer
Panel ( incomer from UT B ) (Unit #2)
2. PT PANELS ( line /feeder PT and Bus PT )
3. Tie breaker from standby switchboard (0BA)
4. OUTGOING FEEDERS
10000 KW MD
BFP (Unit # 2)
3240 KW
Cooling Water Pump 5
2450 KW
Primary Air fanB (Unit # 2)
16MVA Unit Aux. Transformer B
2MVA Unit service transformer A
3MVA VFD
transformer (ID Fan 2B Channel 1&2)
1.6 MVA ESP
Service transformer
1 MVA Switchyard
Service Transformer
2 MVA Ash
Sys Compressor Plant Transformer
1 MVA Ash
Water Power House Service Transformer
2 MVA Off
Side Plant Service Transformer
2 MVA WTP
Area Service Transformer
2 MVA
Station Service Transformer
0.5 MVA Raw
Water Pump House Service Transformer
1.6 MVA
Administration Building Service Transformer
5. Spare feeders
2450 KW
Motor feeder
1 MVA
Transformer feeder
Above description is typical of coal based super thermal
power station feeder list. There may be variation site to site and of uses. But
this will given an idea of HT drives and transformer required for HT drives.
Recently i was visiting a super thermal power station and there HT panel erection is going on. Some other picture on this will be on next dispatch.
continued to pat -ii
Friday, 9 September 2016
220 VOLT DC SYSTEM-BATTERY CHARGER -COMMISSIONING PART -I I-ABC OF THERMAL POWER PLANT.
COMMISSIONING
PROCEDURE:
TESTING OF BATTERY CHARGERS:
The insulation value shall be checked with 500 V DC Megger.
During this test, all low voltage circuits
& Relays etc, shall be
bypassed ( shorting)
The panel shall be switched on at no load. For this, first make input switch ON & check the voltages at all phases indicated by lamps & voltmeter by selector switch . Now the voltage is connected to the primary of the Main transformer which steps the voltage down as required for the specific DC output Voltage & isolates AC Input line from Battery circuits. The transformer's secondary is connected to the Full wave rectifier assembly.
The bridge is standard three phase full wave half controlled silicon bridge. The voltage control is accomplished by the application of a positive pulse to the gate terminals of the SCR at the desired time. Before the pulse is applied , the SCR is open and no current flows in the circuit. As soon as SCR is fired, it operates as a standard silicon rectifier until the forward current is reduced to almost zero.
Check the no load output voltage at the output terminals.
Ensure the
output voltage is steady without any trouble for 15 minutes.
Check for
annunciation interlocks etc.
If load is
available, the equipment shall be loaded progreesively upto rated value
Check for
voltage regulation, free from oscillation, ripple etc.
Check for
dropping characteristics at higher loads.
Run the
equipment for 4 hours and observe of stability and check for local
heating. When unit is loaded the ripple
voltage level (peak to peak) may be observed . Follow the advice of Service
engineer.
II FIRST CHARGING OF BATTERY:
Thumb
rule says DC Voltage needed for battery
charging will be 2 times the no of cells in battery bank. The initial charging
will take approximately 16 to 24 hours since the batteries are already charged
and sent as maintenance free ones.
k board is
firmly coIt is of utmost importance that the terminal of the battery is
connected to +ve load of charging source. So polarity should be ascertained.
Commence
charging not later than 24 hours after connecting all battery cells.
Give the
first portion of charge at a rate of 100 Amps for 10 Hours
Discharge it
using Water resistance or halogen lamps as recommended by supplier
Give the
second charging at the rate of approximately 20 Amps till the signs of
completion of charge observed.
Select any
one cell (except the end cell or regulating cell) as pilot cell out of every
rack as given in the layout of the battery bank.
Voltage and
specific gravity reading from pilot cells will indicate the state of charging
of the whole battery system. Follow supplier’s recommendation
All cell
terminals & connections are to be applied with pertroleum jelly to reduce
contact resistance. No adjustment should be made which will disturb charging.
When all the
cells have been greasing freely and when voltage and specific gravity of pilot
cell has been constant over 3 successive hour readings, the cells can be deemed
to be fully charged and the charging may be terminated. Then wipe down outside
of all cells and clean the floor.
Put the
battery system on trickle charging when charging completes.
The trickle
charge should be adjusted to give optimum battery voltage of 1.53 - 1.67 volts
per cell.
III ENERGISING OF DISTRIBUTION BOARD:
Take final
I.R. value of the board. Check ea
ethi ected with earth through wire or strip as shown in the drawing.
ethi ected with earth through wire or strip as shown in the drawing.
Ensure that
all outgoing circuits are locked in OFF position.
Ensure that
all safety procedures have been observed.
Check that
polarities of D.C switch board battery charger and battery are matching.
Close the
incomer switch of board to charge it.
Measure D.C
Voltage at the Input.
Observe D.C
board for any abnormality.
If board
condition is satisfactory, check that all remote end fuses of outgoing circuits
are removed.
Switch ON
outgoing feeders one by one. Record the following for each circuit.
i.) Polarity at both ends of circuit
ii.) Voltage at both ends of circuit.
IV EARTHFAULT RELAY ON LOAD TEST:
To
carry out on load test for the Battery
E/F relay, connect variable resistance box of the range of 15 to 150 K Ohms
between +ve pole of the board and earth
Keep
selectivity setting plug of E/F relay at
3 ms setting.
Cut out
resistance slowly to simulate an E/F and
observe the current in milli ammeter when the relay operates.
Record
resistance and current in mA
Carry out
this test on each available setting on relay.
While doing
test observe and record the direction of deflection in the ammeter. Check
whether it confirms the pole on which the fault is simulated.
Repeat once a again on -ve pole of the board.
The test is
satisfactory if the operation of the relay confirms with the setting.
Note :
Electrical commissioning demands cool approach not rushed to wards the job. Any
mistake may cause permanent damage and that was witnessed many a time.
All
instrument need to calibrated so that during dispute you can rely. This is also
a common problem.
All hand tool
should be insulated one and value checked before using.
Electrical
signboard /safety signboard should be displayed .
Wednesday, 7 September 2016
220 VOLT DC SYSTEM-BATTERY CHARGER PRE-COMMISSIONING PART -I -ABC OF THERMAL POWER PLANT.
220 volt dc system with battery
charger commissioning
Till last
dispatch I have discussed about the basic requirement of electrical system in
apower plant . In continuation with that commissioning of DC 220v system will
be described briefly.
The system
consist of :-
i. Battery Bank
ii. Battery Charger - Main and Standby
iii. DC Distribution board.
The battery is installed in the battery room in the HT
switchgear room. This provides a 220 V
DC supply to the relay and control circuits in the Generator. Generator
transformer and Unit transformer protection and control panels, 11KV and 3.3 KV HT switchgear and 4.5 V LT
switchgears Unit and station service boards and aux. Control panels. As told
you earlier 220 volt DC system is backbone of the electrical system .To
energise AC system you need DC system.
Battery
Cells - Data Sheet ( Typical 500 MW power plant
Guaranteed AH Capacity at 10
Hrs.discharge
Rate 1 Volt / Cell at 27 C - 990 AH
Designation - KPH 990 P
Recommended range of floating/trickle
Charging voltage - 1.4 -- 1.42 V/Cell
Recommended range of boost charging
Voltage - 1.53 -- 1.67 V/Cell
Trickle charging current - 1 to 2 MA /AH
Boost charging current - 198 A
Open circuit voltage of cell when
completely
Discharged at 27 C at 5 hrs
discharge rage - 1.0 V
Dimension (mm) - 522 L x 192 W x 405 H
Amount of
specific gravity or electrolyte
Per cell required for first filling at 27 C - 18 Lit / cell, 1.19 +- 0.01
Specific gravity of cell when fully
charged 1.19+- 0.01
Max. electrolyte temp. that cell can
withstand
Continuously - 50 C
Net dry cell weight - 45 Kg
With electrolyte - 68 Kg
Cell container material - Polypropylene
No of cells / Bank - 169
Charger - I & II
Input Voltage - 415 V+- 10%
Output Voltage - 220 V DC
Float Voltage - 236 V DC
Boost Voltage - 287.3 V DC
Rectifier current limit - 400 A
Battery current limit - 198 A
Auto charge over current - 40 A
Steady state output voltage
Regulation (For +- 10% I/P
Voltage variation - +-1%
0 - 100 % load variation
at a time).
The above
data was given from a data sheet of particular power station but this may vary
marginally power station to power
station depending on system design and integration for which I am not expert.
Pre -commissioning
- Battery, battery charger and distribution boards are
installed as per drawing.
- Cabling between
the battery / battery charger and the distribution boards completed .
-
Basic
testing .quality checks of components like insulation testing ,continuity
testing , dimension checking etc are over. Charge the distribution board live
at 220 V DC in a safe and orderly manner
without load and keep it charged for 24 hours.
- To carry
tests and checks to ensure that all the components on the boards are operating
satisfactorily including cables to all the remote points in the 400 KV
substation and control room.
- AC distribution board for input supply to be
charged and commissioned.
- Each module will be checked individually
- Each outgoing supply will be tested up to the
fuses at the remote end.
- Battery E/F will be simulated for both the
poles and E/F relay sensitivity will be
checked.
- Following
services will be required during
,testing and pre –commissioning
- 415 V,
3 Phases, 50 Hz supply ,Adequate running water, Suitable voltmeter,
ammeter,
thermometer and hydrometer,Variable
resistance or water load for discharging the battery.
Electrolyte for cells as per IS-266, Pure
battery grade distilled water, Variable resistance box
of 15 to 150 K Ohms, 1 No. 500 VDC megger, Multimeter , hand tools etc.
-Standard
safety equipment for handling acid and battery . Also fire prevention equipment like
extinguishsers
, Exhaust fans to take out fumes if any , etc should be made available.
Different
precautionary
sign board in and around the panel battery room etc.
continued part -II battery charger commissioning.
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