Refrigeration, Air conditioning system and ventilation

Refrigeration: is a process in which the temperature of a space or its contents is reduced to below that of surroundings.

Uses of Refrigeration:
1. Domestic fridge rooms on ships for preserving foodstuffs for the crew.
2. Accommodation air-conditioning system.
3. Reefer control air dryers in engine room.
4. Refrigeration is used in the carriage of some liquefied gases like LPG and LNG.
5. Reefer containers for carrying food stuffs.
6. Reefer ships where the entire cargo space is refrigerated for carriage of perishable fruits and meat products.
7. To cool bulk CO2 for firefighting systems.

Live & Dead Cargoes: The perishable foodstuffs carried as refrigerated cargo or as stores on ships can be categorized as dead produce such as meat and fish or as live produce such as fruit and vegetables.

Fruit and vegetables are regarded as live cargoes until consumed, because they continue to ripen though slowly under refrigerated conditions. Fruit and vegetables continue a separate existence during which oxygen is absorbed and CO2 is given off, with the generation of heat.

The purpose of refrigeration in the carriage of perishable foodstuffs is to prevent or check spoilage, the causes of spoilage are:

1 excessive growth of micro-organisms, bacterial and fungal;
2 changes due to oxidation, giving poor appearance and flavours;
3 enzymatic or fermentive processes, causing rancidity;( it refers to the spoilage of a food in such a way that it becomes undesirable,and usually unsafe for consumption).
4 drying out (dessication);
5 The metabolism and ripening processes of fruit and vegetables.

Principle of Refrigeration.

When a liquid evaporates a cooling effect is produced. For example, a few drops of volatile liquid i.e. after shave,poured on to the hand gives a cold sensation, as it evaporates rapidly taking heat out of the skin.

Evaporation of leaked water from porous earthen pot surface keeps the water inside the pot surface cool. Similarly if liquid CO2 is made to vaporize at a coil as shown, the heat to vaporize the liquid CO2 will be taken from the surrounding i.e. in this case a bottle of water.
The draw back in the example shown is that the cylinder will soon become empty of liquid CO2 and the cooling effect will stop unless cylinder is recharged with further liquid CO2.

Vapor Compression System

Image credit: http://engineering.myindialist.com
Vapour compression cycle is the most commonly used system of refrigeration. In this system a gas called as refrigerant is used as a medium of heat transfer and is alternately condensed and evaporated to remove heat from the spaces being cooled.

(The temperature at which fluid boils or condenses, is known as saturation temperature and varies with pressure).

The system consists of 4 processes namely:

1. Compression: Compression of the gas is carried out in the compressor, which delivers the gas at high pressure and temperature, raising the saturation temperature, so that it is higher than the sea water temperature or air cooling the condenser.

2. Condensation: The compressed high pressure gas is now condensed to a high pressure liquid in a condenser to below saturation temperature relating to compressor delivery pressure by circulating sea water (or air in case of domestic refrigerators).

3. Expansion: The high pressure liquid is then passed through an expansion valve to reduce its pressure, after passing thru the expansion valve the refrigerant consists of low temperature liquid and a small quantity of vapour both at low pressures.
The pressure drop through the expansion valve causes saturation temperature of the refrigerant to fall so that it will boil at the low temperature of the evaporator.

4. Evaporation: The liquid refrigerant containing small quantity of vapour is now passed thru an evaporator which is located in the space required to be cooled. Here the refrigerant absorbs heat from the surrounding secondary coolant (air or brine) receives latent heat and evaporates, cooling the surrounding space. The evaporated liquid (gas) is passed to the compressor suction for the entire process to repeat itself.

Vapor absorption cycle

Vapor absorption cycle

In the early years of the twentieth century, the vapour cycle of absorption using ammonia water systems was popular and widespread. After the development of vapour compression cycle, the vapour absorption cycle has lost much of its importance because of its low performance (about one fifth of the vapour compression cycle). Today, the steam absorption cycle is mainly used when fuel oil is present, but no electricity.

Absorption Type Refrigeration Unit :
1. Hydrogen vapor which is insoluble in water, leaves the absorber and rises until it meets ammonia liquid falling into entry of evaporator. Due to hydrogen pressure causing lowering of ammonia pressure, this results in vaporization of ammonia.
2. Ammonia and hydrogen vapor are carried down to the absorber where water absorbs and dissolves ammonia and hydrogen vapor re cycles.
3. Ammonia vapor which is highly soluble in water, rises with the water vapor from the generator to the seperator where the water vapor and some ammonia vapor condenses.
4. Ammonia vapor then rises, is liquefied in the condenser, reduced in pressure and vaporized in the evaporator and falls to be absorbed in absorber. Ammonia, dissolved in water, falls down into lower pipe to the generator.
5. Water vapor leaves the generator, is condensed in the separator, falls through the absorber dissolving the ammonia vapor and returning to generator.
The unit requires no compressors or pumps and is silent and vibration less. Condenser, evaporator and vapor liquid separator are air cooled, with fins welded or brazed on to the piping to give extended surface heat transfer.  

AIR-CONDITIONING

The basic principles of air conditioning: Air conditioning is the process of treating air so as to control simultaneously its temperature, humidity, cleanliness and distribution to meet the requirements of the conditioned space. 

Action involved:
Temperature control
Humidity control
Air filtering, cleaning and purification
Air movement and circulation
Winter conditioning relates to increasing temperature and humidity of air whilst summer conditioning relates to decreasing temperature and humidity of air.
What are the objectives of air conditioning on ships ?
1. To extract excess heat
2. To raise air temperature when required
3. To add moisture as required
4. To reduce moisture content as required
5. To maintain sufficient air flow
6. To remove dust


When moisture evaporates from a surface, the latent heat required, is drawn from the surface causing it to be cooled. If a thermometer bulb is covered by a wetted fabric and exposed to the air, the rate of evaporation will depend upon the humidity of the surrounding air. As the heat required must come from the bulb, this results in a lower temperature reading than if the bulb was dry.

Important definitions in air-conditioning:

Hygrometer or Psychrometer: Hygrometer is an instrument to measure the humidity of air. This consists of an ordinary thermometer which gives the dry bulb temperature and a wet bulb thermometer (wetted with gauze cover).The wet bulb reading will be less than the dry bulb reading, the difference is quoted as the wet bulb depression.

The drier the air, the more rapid the moisture evaporation from the gauze giving a cooling effect. Thus greater the difference between the dry and wet bulb readings, drier the air and lesser the relative humidity.

Relative humidity (r.h.): The relative humidity is a measure of the amount of water vapor in the air (at a specific temperature) compared to the maximum amount of water vapor air could hold at that temperature, and is given as a percentage value.

Relative humidity depends on the temperature of the air, as warm air can hold more moisture than cold air. A relative humidity of 100 percent indicates that the air is holding all the water it can at the current temperature and any additional moisture at that point will result in condensation.

A relative humidity of 50 percent means the air is holding half the amount of moisture that it could. As the temperature decreases, the amount of moisture in the air doesn't change, but the relative humidity goes up (since the maximum amount of moisture that cooler air can hold is smaller).

Dewpoint (d,p): is the temperature to which unsaturated air must be cooled to bring it to saturation point and to cause moisture to precipitate. (If an unsaturated mixture of air and water vapour is cooled at constant pressure, the temperature at which condensation of water vapour begins is known as the Dew point.)
Or
The atmospheric temperature (varying according to pressure and humidity) below which water droplets begin to condense and dew can form.
The dew point is the temperature to which the air must be cooled at constant pressure in order for it become saturated, i.e., the relative humidity becomes 100%.
A higher dew point indicates more moisture present in the air.

Physcometry: It is the study of properties of mixture of air and water vapour. This subject is important to air-conditioning because the systems handle air-water vapor mixtures, not dry air.

Some air-conditioning processes involve the removal of water from the air-water vapor mixture (dehumidification) while some involve the addition of water (humidification).

A convenient way to represent the properties of air-water vapor mixtures is the psychrometric chart. On the chart, such properties as dry bulb temperature, wet bulb temperature, dew point, relative humidity, humidity ratio, specific volume, and enthalpy are presented in graphical form.

Comfort Zone chart
 
Comfort Zone: The condition of the air in a space depends on its temperature, humidity and movement. The effect of the air on people in a space varies considerably between one person and another, so it is only possible to stipulate a fairly wide zone.

Under summer conditions relative humidity between 30% and 70%, average about 50% and thermometer readings 19 deg to 25deg, average 22deg gives the best degree of summer comfort.


Ventilation is defined as the circulation of air around a space to clean and refresh it, but not changing the temperature.

Air Velocity: The early air conditioning systems were rather bulky because designs were based on low air velocities in the distribution ducts, with velocities in the order of 10 m/s or less. In later years with very substantial increases in air velocities, reaching a maximum of about 22.5 m/s in the ducts and producing a large reduction in the space occupied by the equipment. Higher velocity systems have increased operating costs but lower installation costs.

What is Low velocity system in ventilation?

A low velocity System is one in which the velocity of air at the beginning of main duct is 5 to 10 m/s and successively lower there after which results in low frictional resistance. Thus in this system we require a fan which is having low power rating, but the only problem with this type of arrangement is that it will require large sized and expensive ducts and installation will be difficult.

What is High velocity system in ventilation?

In high velocity system, velocity of air at the beginning of the main duct is 15 to 30 m/s. Since it includes a high power fan that will produce a high air pressure, it requires small sized ducts and would result in
economy of material,
low manufacturing and installation cost
easy installation on board ship,
considerable space saving in the ship.

This system will have high recurring cost and will also result in high noise levels. Also since the machinery will be running at high speed, the frictional loses in this system will be more.

Typical Air-conditioning System

 Typical Air-conditioning System

The main components of the system, such as the oil separator filter, condenser, expansion valve and evaporator, are explained in the refrigeration system; The components, which are generally unique to the air conditioners, are described below:

Compressor: It can be stroke based or rotatory. In almost all cases, a method for changing the amount of the feed is taken. The piston compressors therefor is also a rotary feed unit for the speed.

Compressor protection: Compressors are under similar protection systems as of refrigiration plant, low pressure cooling zone, high pressure part (manual reset) and this cuts the differential oil pressure. In addition, it has a lock for the compressor installed, can not be started when the air handlink unit fan is not started. When the fan stops, the compressor is turned off.

An alternative is to mount the solenoid valve upstream of the compressor as shown in the diagram above, which only open when the fan is running. The compressor is triggered with a low suction pressure. The purpose is to prevent liquid back to the compressor.

Air handling unit

Air handling unit

In the diagram above a single unit contains an evaporator fed through a gas compressor. A belt driven fan supplies air to the evaporators through an air filter with fine mesh. This filter is removed and washed regularly in a soapy solution containing a disinfectant. The air flows over the evaporator, where it is cooled, and gives water vapor. The water condenses and is transported in a collecting basin and pipelines. The previous draft a collector was installed to remove water droplets entrained in the air, they are not always equipped. A perforated tube is installed after the evaporator allows the low steam quality to be introduced into the air to improve the moisture when it is too dry.

The fresh air is taken from the outside atmosphere and the recirculated air is the return air housing. The air is distributed to the ships during their stay in the port or during navigation normally, Air is recirculated normally on tankers during port stay or during sailing when any cargo or IG related operations are on to prevent cargo vapours from entering the accommodation spaces. For the mass stay at loading port air is taken back for ship carring raw materials such as coal, iron ore etc., To avoid them from entering the air housing.

Thermostat in AC system

A thermostat is the component of an Air-con system which regulates the temperature of the space to be cooled so the temperature is maintained near a desired set point temperature. The thermostat does this by indirectly switching the compressor on or off, to maintain the correct temperature.

As long as the desired temperature in the accommodation space is not reached the Air con compressor keeps working and thereby cooling the accommodation, when the desired temperature is reached the thermostat actuates and closes the liquid line magnet valve(solenoid valve) located on liquid line after the condenser, the compressor then eventually stops on low suction pressure cut off. However the air handling unit blower keeps running all the time.

Now as the accommodation temperature starts going up above the desired set point the thermostat energizes the liquid line magnet valve, the suction pressure now goes up as the gas starts flowing to the compressor, the compressor then immediately starts on L.P cut in thereby the cooling now again commences, this cycle is repeated to maintain the desired temperature in the accommodation spaces.

Thermostats are normally located in the air handling unit; they sense the temperature of Return air. Alternately they are also located in one of the cabins on the top deck.

Recently, digital thermostats have no moving parts to measure the temperature, and instead rely on thermistors or other semiconductor devices, such as a resistance thermometer (resistance temperature sensor). Each has an LCD screen that displays the measured temperature and the set temperature.

What is Capacity Control?
Capacity control of an air-conditioning plant can be defined as a system which controls the output of the plant as per the load in demand. Refrigerating capacity control with reciprocating compressors running at constant speed consists of controlling the quantity of gas delivered to match the fluctuating load

Holding the valves open: This is the most common method used in unloading in multi cylinder V & W type compressors. It is accomplished by lifting of suction valves, usually of 2 cylinders together by means of push pins. When the suction valve is lifted the gas drawn during suction stroke is pushed back into the suction line during the upward stroke of the piston. No work is done except frictional work during such idling. The push pins are operated by oil pressure. More and more cylinders are unloaded as the suction pressure or evaporator temperature continues to drop.
Normally in warm weather area the AC plant is always running at full load, ideally the air conditioning plant will start unloading when the ship goes into colder weather. The thermostat control will come into action only when further drop in temperature takes place, and this will stop the air-con compressor.

#Cover Image credit: Chitre Sir (Marine Faculty) / If you have any problem regarding post, please contact us!

# Various books, study material and other online sources has been refereed prior to writing this article but no part is copied or produced  from any of the source but explained same thing in better detailed way.

Author: Amit                                                                Article Requested by: Pranesh Devadiga


Air Compressor maintaince and Troubleshooting

Air Compressor maintaince and Troubleshooting

In order for ships air compressors to work effectively, at any time, you should know what the most common problems can occur and their causes. You need to know how to take care of vents; How to hold and replace the air valves; Maintenance of pneumatic cylinders and pistons; And like the bearings adjust, crank pins and links. You should be able to replace and repair the lubrication , cooling, control and air systems.

AIR INTAKES

A clean, dry air is essential to the proper operation of the compressors. To do this, the air intake filters should be regularly inspected and cleaned; If the filter is clogged there is a loss of capacity. A clogged air screen or inlet filter can also lead to extraction of oil from a compressor crankcase, around the rings or through oil seals to cause an explosion. Remove the filter element and clean with a jet of hot water or steam or by immersing in a strong solution of sodium hydroxide. The filter housing must be drained and replaced. When the filters are soaked in oil, dipping in clean oil, intermediate and complete emptying must be done before the filter at the inlet changes. Do not clean the filter with petrol or kerosene! Vapors can accumulate and explode in the compressor or the receiver. Make sure that no rain or dew on the inlet side be present and a means to drain the water from suction tube be provided. The lines should be as short and direct as possible. To supply air compressor air to the divers, avoiding compressor absorbs every internal combustion engine exhaust. You should also avoid possible inlets fumes from the fuel tank, spilled oil or gasoline.

AIR VALVES

The inlet and exhaust must be clean and kept in good condition. The valves if have leakage are generally contaminated and cause a loss in capacity. Valves are removed by loosening the fastening screws or clamps and then removing the cover plates. Each relief valve , if provided, can be lifted. Each valve should be checked to ensure that it returns to the same port from which it was removed. The valves removed for inspection should not be removed for cleaning if the conditions so require. Usually, dirt or carbon in the valve hole can be removed without removing the valve. This is done by soaking the valves in kerosene, then giving a stiff, light brushing or light scraping. The action of the valve is to be tested by inserting a screwdriver through the seat opening; The valve must lift and close freely. If necessary, remove the valve, check the arrangement of the various parts so that the corresponding relationship is maintained with the valve assembly. (The periodic reports on board show damage to the piston and valve parts if connected poorly mounted valves in the way of the piston lugs protrude.) Before replacing the cylinder in a cylinder, replace the air valves, check the seals and replace them. Plates coated with copper or asbestos thin and thin copper. Alternatively, they can be used together of compressed asbestos temporary 1/16 inch. Each valve assembly is inserted into the same hole that has been removed. Since it may be difficult in many cases to distinguish between the suction valve and the pressure valve, care must be taken when the valves are inserted into the cylinder. Make sure the suction valves are open to the center of the cylinder and exhaust valves are clear. Failure to do so will result in serious injury or loss of capacity. Then, the valve cap in the cylinder ensures that the gasket is in place; Lower even coverage of nuts and again do not tilt the lid. Tighten the set screw of the valve or clamping screw, pulling the valve in its seat. If no special lock in the threads of the screw of the valve to prevent leakage leakage must be placed through a locking nut in a recess around the screw and placing welding or fuse wire.

CYLINDERS AND PISTONS

The cylinders on pistons should be inspected only AFTER the manufacturer’s technical manual has been consulted.   Be   careful   when   removing   heads,   particularly where metal-to-metal joints are involved, to prevent damage to the joint.
If replacement of piston rings is required because they are worn or broken, take accurate measurements of the cylinder liners. Standard size rings may be used in oversize cylinders if the oversize does not exceed 0.003inch per inch of cylinder diameter. The liner may also need to be replaced if it is badly worn or out of round. When replacing piston rings, first fit them to the cylinder to check for proper end clearance. You can file the ends, if necessary, to make them fit. The side clearance of the rings should be such that the rings will fall easily into the piston grooves, which should be deep enough for the ring thickness.  Ring splits should be staggered.  After you assemble the piston, wire the rings tight with a soft copper wire so that they will enter the bore easily. This wire can be removed through the valve ports after the ring has started into the cylinder bore.
When reassembling the air cylinders and heads, be sure  they  are  all  drawn  down  evenly,  especially on multistage   compressors   where   the   heads   contain cylinders  for  third  and  fourth  stages. Otherwise, the result will be excess wear on the cylinders and pistons.
When a compressor piston has been replaced, the piston end clearance must be checked. This is done by inserting a lead wire through a valve port or indicator connection. Jack the compressor over. When the piston has  moved  to  the  end  of  its  stroke,  the  lead  will  be flattened  to  the  exact  amount of  clearance.  The  wire should  be  long  enough  to  permit  a  reading  near  the center of the piston. These readings should be taken after any adjustment or replacement of the main, crank pin, wrist pin, or crosshead bearings. Methods of adjusting the clearances vary according to the compressor design. You should consult the manufacturer’s instructions for suggested   adjustment.

MISCELLANEOUS  ADJUSTMENTS 

From time to time other miscellaneous adjustments are  required  on  compressors,  including  those pertaining to  wrist  pins,  crosshead  shoes,  reduction  gears, couplings,   and   V-belt   drives.   The  manufacturer’s technical manual will give you specific information forth   care,   adjustment,   and  replacement   of   all   fitted bearings.  Refer  to  the  manufacturer’s  instructions  for detailed information  on  when  and  how  to  make  these adjustments.
Wrist pin bushings are replaced when necessary. This  is  done  when  they  are  worn  to  the  point of becoming noisy. In making a replacement, be sure the oil hole in the bushing is properly lined up with the oil hole in the connecting rod. After being pressed into the rod, the new bushing must be reamed.

Crosshead shoes are provided with shim or wedge adjustment.   Wear   should   be   slight,   but  adjustment should be made when the travel of the piston rod causes movement in the stuffing boxes.
Alignment of reduction gears and pinions should be checked periodically, especially on a new compressor. Misalignment  may  be  caused  later  by  settling,  straining, or  springing  of foundations; pipe  strains  on  turbine-driven compressors; bearing wear; or springing due to heat from a turbine.

Flexible couplings require very little maintenance when they are properly lined up.  Some types require occasional lubrication to prevent excessive wear of springs and bushings. A noisy coupling is an indication that the bushing is worn and requires replacement.
V-belt drives require adjustment for belt tension. Belts generally stretch slightly during the first few months of use. A loose belt will slip on the motor pulley and cause undue heating and wear on the belt. A tight belt will overload the bearings. Belts should be protected against oil and high temperatures.  To prevent rapid deterioration, belts should not be used at temperatures above 130°F. V-belts are usually installed in sets of two or three.  If a single belt is worn or deteriorated, the complete set should be replaced to ensure that each belt will carry its share of the load.

LUBRICATION SYSTEM

Proper care of a compressor lubrication system includes the following:-
  1. Keep the oil at a normal level in the reservoir at all times to maintain proper oil temperature.
  2. Change crankcase oil periodically, and at the same time clean and flush the crankcase and clean the oil filter.
  3. Maintain proper lube-oil pressure by keeping the oil pump in good working order and adjusting the bypass relief valve.
  4. Keep  the  oil  cooler  free  from  leaks  (since pressure  on  the  water  side  exceeds  that  of  the  oil)  to prevent oil contamination and emulsification.
  5. Properly adjust the lubricator for the specified quantity of oil feed.

COOLING SYSTEM

Proper  care  of  a  compressor  cooling  system includes  the  following  inspections  and  maintenance procedures:
  1. Periodically inspect the intercoolers and aftercoolers
  2. Remove  collections  of  gummy  oils  or  tarry substances from the cooler tubes by washing tube nests with  a  suitable  solvent  and  drying  them  thoroughly before reassembling.
  3. Correct any leakage in tube nests to prevent leaks of water into the compressor while secured or leaks of air into the water side during operation.
  4. Inspect and clean the cylinder water jackets periodically with a cleaning nozzle.
When  filling  the  cooling  water  system  after  the compressor  has  been  drained,  open  the  water inlet slightly to allow the water to rise slowly in the cooler shells and water jackets. Vent valves fitted to the water spaces should be opened to permit entrapped air to escape and to remove any air pockets.

CONTROL DEVICES

Because of the great variety of regulating and unloading devices used on compressors, you will have to  consult   the   manufacturer’s   technical   manual   for information regarding the adjustment of these device son particular compressors.
If a control valve fails to work properly, it should be taken apart and cleaned Some valves are fitted with filter  filled  with  a  sponge  or  woolen  yarn  to  prevent particles of dust or grit from being carried into the valve chamber. These filters remove gummy deposits from the oil used in the compressor cylinders. When repacking, use only genuine wool. Cotton will pack and stop the airflow.  Relief   valves   are   very   important   for   safe compressor operation. They should be set as specified by the manufacturer and lift-tested by hand each time the compressor is placed in operation.  To check the setting periodically, test by raising the pressure in the spaces to which they are attached.

SUMMARY

Since an Engine man may encounter so many types of   compressed   air   systems,   air   dryers,   and  air compressors both ashore and aboard Navy vessels, this chapter presented only general procedures and facts.  To maintain, repair, and overhaul specific compressed air systems,  air  dryers, or reciprocating  air  compressors, you  must  refer  to  the  manufacturer’s  technical  manuals. A  definite  preventive   maintenance   schedule   with frequency and assignment of responsibility is required. You should have the manufacturer’s manual handy to establish   minimum   requirements  and   to   follow   its recommendations for maintenance.


Author Amit                                                                            Article Requested By: Rauhjek

 

Watch Keeping at sea for Marine Engineers | Step-by-step


Watch keeping is an integral part of marine engineer’s duties on board ship. The technicians perform tasks and routines for monitoring the ship's engine room. The clocks are divided into three periods of four hours and the following work must be carried out and checks carried out at sea.

  • Check the colour of  exhaust emission from funnel.
  • Check the Economizer temperatures, pressure drop and the system for any leakage.
  • Check the oil fired boiler water level, blow through gauge glass and check pressure.
  • Check the boiler circulating pump for operating pressure, vibration, noise, gland leakage and bearing oil level.
  • Check and confirm normal operation of incinerator if running.
  • Check the waste oil tank level and temperature, drain off water.
  • Check Main & Aux. engine header tank levels, if they require filling record the quantity of water added.
  • Check the temperatures and pressure of the fuel valve cooling system. Examine the level of the F. V. C  header tank, check for contamination and confirm through flow.
  • Check stern tube header tank level, return flow, sump, pump and oil condition.Examine M. E cylinder tops for leakage, movement, overheating and any temperature or pressure outside the normal parameters.
  • Check for exhaust gas leaks.Examine turbo charger oil levels, pump operation, temperatures, pressures and differentials, whilst checking also for any unusual noise or vibration.
  • Monitor air cooler pressure drop, and ensure Makers operating parameters are adhered to with regard to dew point temperature.
  • Check cylinder oil day tank level and individual lubricators for level, flow and function.
  • Check all bunker fuel tanks for level, temperature and drain for water.
  • Check fuel fine filter differential.Examine fuel pumps for leakage or unusual noises.Ensure oil mist detector is functioning correctly and test alarm.
  • Check ME governor oil level and fuel pump racks.
  • Examine auxiliary blower if running and scavenge belt to ensure that scavenge and air cooler drains are clear.
  • Feel over scavenge belt.Test air line drains for water.
  • Check all standby pumps are on auto mode and ready to start.
  • Check air compressor  oil level, and the temperatures and pressures whilst  running.
  • Check fresh water generator for normal operation & also chemical dosing to feed line.
  • Check sewage treatment plant for normal operation.
  • Examine A/E and check all running parameters are within limits. Fuel leakage, non fitting of double skin pipes and removed  protection or insulation from exhaust manifolds to be rectified immediately .
  • Check A/E bilge’s for leakage.
  • Confirm that an alternator engine is on standby in the control room and that the L. O priming pumps are on Auto.
  • Checking drinking and domestic water hydrophore systems for levels, and leakage. Ensure that the Calorifier, circulating pump and UV Sterilizer are operating satisfactorily.
  • Examine boiler feed water system for normal pump operation and check the cascade tank for temperature and level. Also check that there is no hot well contamination with fuel oil due fuel oil heating coil leaks.
  • Examine air reservoirs and check the drains for water, ensure that control and service air reducing valves are functioning correctly and that the control air dehydrator is operating normally.
  • Examine the purifier room for leakage, ensure that running purifiers and operating normally with regard to oil levels, flow rates, temperatures and pressures. 
  • Ensure lowest throughput for L O purifiers.Check Calorifier.
  • Examine Booster pumps, flow-meter and heaters for normal operation without leakage.
  • Ensure that all main engine pumps are running normally and that standby pumps are ready for Auto operation.
  • Check HFO Serv & Sett tanks levels and temp. Drain off water.
  • Check all running purifiers for normal operation. Check gear case oil level, Separated Oil temperature and feed rate, motor load etc.
  • Skim off sludge from recycle tank.
  • Check F. O booster p/p, check F. O temperature.
  • Check JCW pump and motor for normal operation.
  • Check M/E Lubricating Oil Pressure (Bearing), X-Head Oil Pressure and Piston Cooling.Check piston cooler and L. O cooler in/out temp.
  • Check sounding of all sludge tanks, bilge storage tanks, compare with previous sounding.
  • Check M/E L O pump discharge filter Pressure drop.
  • Check M/E L O pump/motor for normal operation.
  • Check thrust bearing L. O temperature Fwd/Aft.
  • Check E/R bilge level with special attention under the flywheel.
  • Check L. O levels and temps of intermediate shaft bearings.
  • Check stern tube L. O sump level, oil pressure, temp and return flow.
  • Check M/E L. O sump sounding. compare with earlier soundings recorded.
  • Check and confirm L. O purifier is operating normally note L. O temperature.
  • Check piston cool leak off tank, open skimming v/v to skim off oil from top.
  • Check piston cooling water tank level top up if required.
  • Check and confirm main S. W p/p, motor and auxiliary  S. W pump/motor working normally.
  • Check piston cooling p/p pressure and in/out temp of all units check flow.
  • Check A/E load and winding temp. Do a function test on alarm panel. Reconfirm all running parameters of M/E and A/E.
  • See the Chief Engineer’s standing instruction book and also notice board for daily instruction and guidance. Discuss with outgoing watch keeping engineer if there have been any special operations problems during his watch or any change in status of running machinery Function and lamp test of Alarm panel.
  • Check no alarms are inhibited.Ensure no alarms indicating abnormal condition are active.
  • Ensure air and water on deck shut if not required.
  • Log down all parameters in log book
  • Check for following hazards and rectify :-
  • No Fuel, L. O or water  leaks.
  • No loosely stowed equipment.
  • Gas bottles shut and welding plant shut down.
  • Fuel high pressure pipes for M/E & A /E’s secure and no leaks.
  • No abnormal vibrations of any type.
  • No water tight openings open unnecessary.
  • Ensure that the welding equipment is off.Double check additional A/E on standby, and Emergency Generator on Auto.
  • Double check M. E controls on Bridge and max speed limit set as per Chief Engineer’s instructions
  • Check no alarms have been isolated, unless authorized by C/E and E/O. Note there are no existing alarm condition, unless a valid reason and C/E and E/O aware of.
WHEN IN DOUBT DO NOT HESITATE TO CALL CHIEF ENGINEER


Author Amit                                                                            


Basics of Main Air compressor on board Ship

Main Air compressor

Main Air compressor on ship is used to produce service, control and starting air. In the following article we explain the introduction, working and maintenance done on Main Air compressor.

What is a compressor?

A compressor is a machine capable of compressing and delivering the air at desires pressure and is driven by a prime mover(Engine or a electric motor). A compressor takes in atmospheric air, compresses it and delivers the high pressure air to a receiver(storage vessel) from which it may be conveyed by a pipeline.

Applications of compressed air on Ship:

  • For control air and service air application on board ship.
  • For various automation and controls, general service applications.
  • For starting main and auxiliary engines
  • To supercharge IC Engines
  • painting and spraying.
  • For operating pneumatic hand tools such as rivet sets, drills..
  • To operate air brakes in automobiles , ram lifts and pneumatic conveyors.
  • To blow air.
  • To transmit power for operation of machines.
  • To clean machines and work shop floor

Types of Compressors: 

Types of compressors

Types of air compressors in use:
  1. Reciprocating  Compressor
  2. Centrifugal Compressor
  3. Screw Compressor
  4. Rotary compressor
  5. Diaphragm compressor
Classification of Air Compressors -

1.According to working: Reciprocating compressors, and (b) Rotary compressors.

2.According to action: Single acting compressors, and (b) Double acting compressors.

3.  According to number of stages: (a) Single stage compressors, and (b) Multi-stage  compressors.

Main Components in Compressed Air Systems:

  • Intake air filters
  • Inter-stage coolers
  • After coolers
  • Air dryers
  • Moisture drain traps
  • Receivers

Reciprocating Compressor:

The first commercial piston compressors were built in the middle of the last century, and evolved from the steam engines which provided the prime mover. Construction at first was double acting, but there was difficulty in maintaining gas-tightness at the piston rod, so the design evolved further into a single-acting machine.

The stroke/ bore ratio has diminished to the point of becoming fractional because of improvements in valve design and manufacture. Machines of four, six and eight cylinders arranged in either V or W formation are common. These are arranged in a multi bank configuration with two, three or four connecting rods on the same throw of the crankshaft to give a short, rigid machine.

This construction gives a large number of common parts – pistons, connecting rods, loose liners and valves through a range of compressors, and such parts can be replaced if worn or damaged without removing the compressor body from its installation.

Reciprocating Compressor

Working Cycle

The general form of positive displacement compressor is the piston type, being adaptable in size, number of cylinders, speed and method of drive.

It works on the two-stroke cycle, as the piston descends on the suction stroke, the internal pressure falls until it is lower than that in the suction inlet pipe, And the suction valve opens to admit air from atmosphere. At the bottom of the stroke, this valve closes again and the compression stroke begins. When the cylinder pressure is higher than that in the discharge pipe, the discharge valve opens and the compressed air passes to the air bottle. Clearance air left at the top of the stroke must re-expand before a fresh charge can enter the cylinder.

Reciprocating compresor indicator diagram

Single stage Compression

  1. It suffers the following drawbacks:
  2. The size of the cylinder will be too large.
  3. Due to compression, there is a rise in temperature of the air. It is difficult to reject heat from the air in the small time available during compression.
  4. Sometimes, the temperature of air, at the end of compression, is too high. It may heat up the cylinder head or burn the lubricating oil.
In order to overcome the above mentioned difficulties, two or more cylinders are provided in series with inter-cooling arrangement between them. Such an arrangement is known as multistage compression.

Advantages of Multistage Compression

Following are the main advantages of multistage compression over single stage compression.

  1. The work done per kg of air is reduced in multistage compression with intercooler as compared to single stage compression for the same delivery pressure.
  2. It improves the volumetric efficiency for the given pressure ratio.
  3. The sizes of the two cylinders (i.e. high pressure and low pressure) may be adjusted to suit the volume and pressure of the air.
  4. It reduces the leakage loss considerably.
  5. It gives more uniform torque, and hence a smaller size flywheel is required.
  6. It provides effective lubrication because of lower temperature range.
  7. It reduces the cost of compressor.
  8. In commercial shipping industry, highest air pressure requirement is about 30 bar (M/E starting air).
It is a standard practice to use two stage reciprocating compressors on board ship to satisfy all compressed air requirements on board ship.

Two stage compressor

Operation and maintenance:

Compressors must always be started in the unloaded condition otherwise pressures build up rapidly producing very high starting torques. During running there is an accumulation of oil carried over from the cylinders and water from moisture, precipitated in the coolers.

The emulsion is collected in separators at cooler outlets and these must be drained off regularly, to reduce carry over. This is extremely important, first to prevent any large quantity of water and oil emulsion reaching a subsequent compression stage and causing damage to a further stage and secondly to reduce the amount carried over to the air receivers and starting air lines.

Moisture in air receivers can give rise to corrosion and despite the proper operation of compressor cooler drains, a large amount tends to collect, particularly in humid conditions or wet engine rooms. It is good practice to check air reservoir drains regularly to access the quantity of liquid present.

In extreme conditions, drains may have to be used daily to remove accumulated emulsion. This is very important if air for control systems is derived from the main receivers, to prevent problems with the reducing valve, moisture traps and filters.

Moisture traps for the control air system also require regular checking and possibly daily draining. A compressor is unloaded before stopping by opening first and second stage drains.

Effect of Choked Inlet Filter

Safety Devices:

  1. Relief valve fitted to every stage
  2. Fusible plug   (melts at 120°C)
  3. Bursting disc or relief valve for cooling jacket
  4. Alarms and cut outs for:
    • High air temperature
    • High cooling temperature
    • Low lubricating oil pressure

Author Amit                                                                            Article Requested By: Abhishek Verma