Monday, 1 January 2018

Utilization categories

Contactors are most commonly used in applications concerning control of electric motors. Contactors are used to start, stop, reverse, jog and plug the motors depending upon the application requirement. Contactors along with thermal overload relays also provide protection to the motor against overloads.

The most basic data required for contactor selection is the motor HP rating and it’s rated current. However this data is alone not sufficient. The type of load, duty cycle of the load, switching frequency are some of the factors that influence contactor selection. The switching capability of contactors is majorly dependent on the type of application, and hence international standards (IEC 60947-4-1) specify utilization categories which cover a broad range of applications. These utilization categories and the data associated with them are used by manufacturers to establish contactor ratings.

The utilization categories as per IEC 60947-4-1 are as follow:

AC-1 : Non-inductive or slightly inductive loads, resistance furnaces
AC-2 : Slip-ring motors : starting, switching off
AC-3 : Squirrel-cage motors : starting, switching off motors during running 1)
AC-4 : Squirrel-cage motors : starting, plugging, inching
AC-5a : Switching of electric discharge lamp controls
AC-5b : Switching of incandescent lamps
AC-6a : Switching of transformers
AC-6b : Switching of capacitor banks
AC-7a : Slightly inductive loads in household appliances and similar applications
AC-7b : Motor loads for household applications
AC-8a : Hermetic refrigerant compressor motor to control with manual resetting of overload release
AC-8b : Hermetic refrigerant compressor motor to control with automatic resetting of overload release
AC-15 : Control of a.c electromagnetic lods
DC-1 : Non-inductive or slightly inductive loads, resistance furnace
DC-3 : Shunt-motors : Starting, Plugging, Inching
Dynamic braking of dc motors
DC-5 : Series-motors : Starting, Plugging, Inching
Dynamic braking of dc motors
DC-6 : Switching of incandescent lamps

1) AC-3 category may be used for occasional inching (jogging) or plugging for limited time periods such as machine set-up: during limited time periods, the number of such operations should not exceed five per minute or more than 10 in a ten minute period.

2) A hermetic refrigerant compressor motor is a combination consisting of a compressor and a motor, both of which are enclosed in the same housing, with no external shaft or shaft seals, the motor operating in the refrigerant. 

The utilization categories most commonly encountered in contactor applications are AC-3 & AC-4

Applications under utilization category AC-3 (Normal Switching) are: Compressors, Pumps, Fans, Conveyors, Mixers, Agitators, Air conditioners, Elevators etc

Applications under utilization category AC-4 (Plugging, inching) are: Printing presses, Wire drawing machines, Centrifuges etc

The making and breaking capacities of contactors are dependent on the utilization categories and the standard specifies that the contactors or starters shall be capable of making and breaking currents without failure under the conditions stated.

Over voltage causes and effects

Over voltages or surges in the power system are the abrupt rise in the voltage level in the system. There could be several reasons for over voltage. The normal operating voltage of the system do not stress the insulation severely. But the voltage stresses due to over voltages can be so high that they may become dangerous to both the cables and the connected equipment and may cause damage, unless some protective measure against over voltages are taken. Over voltages occurrence in the system can be categorized by reasons:

1. External over voltages:

These over voltage originate from the atmospheric disturbances, mainly due to lightning. These over voltages take the form of a unidirectional impulse whose maximum possible amplitude has no direct relation with the operating voltage of the system. They may be due to any one of the following causes.
a. Direct lightning stroke
b. Electromagnetically  induced voltages due to lightning discharge near the line
c. Voltage induced due to the changing atmospheric condition along the transmission line
d. Electrostatic ally induced over voltages due to presence of the charge clouds 
e. Due to friction of the charged particles like dust, snow in the atmosphere or due to change in the altitude of the line. 

2. Internal over voltages:

Caused due to changes in operating conditions of the network, further classifieds into two groups.

a. Switching or transient over voltages
    The over voltages are generally of oscillatory nature caused by transient phenomena which appears when the state of network is changed by switching operations or fault condition.
The frequency of oscillation is governed by the inherent inductance and capacitance of the system and may very from few hundres Hz to few kHz

b. Steady state or temporary over voltages
    These are over voltages developed due to the disconnection of loads at power frequency.
 



Wednesday, 6 December 2017

IP Rating

IP Rating:
Rating
Protection from Solids
Protection from Liquids
IP00
No protection
No protection
IP01
No protection
condensation
IP02
No protection
water spray < 15 degrees from vertical
IP03
No protection
water spray < 60 degrees from vertical
IP04
No protection
water spray from any direction
IP05
No protection
low pressure water jets from any direction
IP06
No protection
high pressure water jets from any direction
IP07
No protection
temporary immersion to at least 1m from bottom and 15cm from top of object
IP08
No protection
continuous immersion to a specified depth or pressure
IP10
touch by hands (>50mm)
No protection
IP11
touch by hands (>50mm)
condensation
IP12
touch by hands (>50mm)
water spray < 15 degrees from vertical
IP13
touch by hands (>50mm)
water spray < 60 degrees from vertical
IP14
touch by hands (>50mm)
water spray from any direction
IP15
touch by hands (>50mm)
low pressure water jets from any direction
IP16
touch by hands (>50mm)
high pressure water jets from any direction
IP17
touch by hands (>50mm)
temporary immersion to at least 1m from bottom and 15cm from top of object
IP18
touch by hands (>50mm)
continuous immersion to a specified depth or pressure
IP20
touch by fingers (>12.5mm)
No protection
IP21
touch by fingers (>12.5mm)
condensation
IP22
touch by fingers (>12.5mm)
water spray < 15 degrees from vertical
IP23
touch by fingers (>12.5mm)
water spray < 60 degrees from vertical
IP24
touch by fingers (>12.5mm)
water spray from any direction
IP25
touch by fingers (>12.5mm)
low pressure water jets from any direction
IP26
touch by fingers (>12.5mm)
high pressure water jets from any direction
IP27
touch by fingers (>12.5mm)
temporary immersion to at least 1m from bottom and 15cm from top of object
IP28
touch by fingers (>12.5mm)
continuous immersion to a specified depth or pressure
IP30
tools & wires (>2.5mm)
No protection
IP31
tools & wires (>2.5mm)
condensation
IP32
tools & wires (>2.5mm)
water spray < 15 degrees from vertical
IP33
tools & wires (>2.5mm)
water spray < 60 degrees from vertical
IP34
tools & wires (>2.5mm)
water spray from any direction
IP35
tools & wires (>2.5mm)
low pressure water jets from any direction
IP36
tools & wires (>2.5mm)
high pressure water jets from any direction
IP37
tools & wires (>2.5mm)
temporary immersion to at least 1m from bottom and 15cm from top of object
IP38
tools & wires (>2.5mm)
continuous immersion to a specified depth or pressure
IP40
tools & small wires (>1mm)
No protection
IP41
tools & small wires (>1mm)
condensation
IP42
tools & small wires (>1mm)
water spray < 15 degrees from vertical
IP43
tools & small wires (>1mm)
water spray < 60 degrees from vertical
IP44
tools & small wires (>1mm)
water spray from any direction
IP45
tools & small wires (>1mm)
low pressure water jets from any direction
IP46
tools & small wires (>1mm)
high pressure water jets from any direction
IP47
tools & small wires (>1mm)
temporary immersion to at least 1m from bottom and 15cm from top of object
IP48
tools & small wires (>1mm)
continuous immersion to a specified depth or pressure
IP50
Limited dust ingress protection
No protection
IP51
Limited dust ingress protection
condensation
IP52
Limited dust ingress protection
water spray < 15 degrees from vertical
IP53
Limited dust ingress protection
water spray < 60 degrees from vertical
IP54
Limited dust ingress protection
water spray from any direction
IP55
Limited dust ingress protection
low pressure water jets from any direction
IP56
Limited dust ingress protection
high pressure water jets from any direction
IP57
Limited dust ingress protection
temporary immersion to at least 1m from bottom and 15cm from top of object
IP58
Limited dust ingress protection
continuous immersion to a specified depth or pressure
IP60
Total dust ingress protection
No protection
IP61
Total dust ingress protection
condensation
IP62
Total dust ingress protection
water spray < 15 degrees from vertical
IP63
Total dust ingress protection
water spray < 60 degrees from vertical
IP64
Total dust ingress protection
water spray from any direction
IP65
Total dust ingress protection
low pressure water jets from any direction
IP66
Total dust ingress protection
high pressure water jets from any direction
IP67
Total dust ingress protection
temporary immersion to at least 1m from bottom and 15cm from top of object
IP68
Total dust ingress protection
continuous immersion to a specified depth or pressure
IP69K
Total dust ingress protection
steam jet cleaning

IP55 time duration
How much time can equipment with ip 55 should stand rain water without problem?
There is a minimum time of at least 15 minutes, which is used for testing purposes, but we would suggest a product should be designed and tested for the intended purpose rather than a particular IP rating. You can then have a third party test the design to see what IP rating it meets.
IPW55 vs IP55
What is the difference between IP55 and IPW55 protection?
The “W” in IPW 55 signifies that the rating includes weather conditions.  e.g. rain, condensation and humidity.
IP55
·         Limited dust ingress protection.
·         Protected against low pressure water jets from any direction.

IPW55
·         Limited dust ingress protection.
·         Protected against low pressure water jets from any direction.
·         Protected against damp and wet weather.

Condensation protection (IP21)
What is meant by protected against condensation as part of an IP21 rating?
When the surface temperature of a device is lower than the dew point temperature (the temperature at which air cannot hold any more water) moisture will begin to collect on the device.
For example, condensation will form if you take a device that has been sitting in a cool environment such as an air conditioned room and move it to a hot and humid outdoor environment.
If a device has an IP21 rating it will be protected from damage due to any buildup of moisture on surfaces which are in contact with the air.
Sensitive components such as electronic devices are protected from condensation by coating the surface with a waterproof barrier such as a conformal coating.
IP23S vs IP23
What is the difference between IP23 and IP23S, and which has a more stringent testing criteria?
The ‘S’ means ‘Device standing still during water test’. IP23 is considered more stringent than IP23S, since it covers this and IP23M which means ‘Device moving during water test’.
D meaning in IP23D
I have a heat detector for a fire alarm system and I have been told it is ip23d, can you please let me know what the‘d’ is?
It is additional to the IP23 rating, and relates to protection against a wire touching hazardous parts.  For futher information see IP codes explained and additional IP code letters.
B meaning e.g. IP43B
What is the meaning of the ‘B’ in IP41B?
The “B” means: Protected against access to hazardous parts with a finger