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BANGLADESH UNIVERSITY OF ENGINEERING & TECHNOLOGY NAME 338  SHIP DESIGN PROJECT & PRESENTATION-3 DATE-18 ,April,2011
DESIGN OF A WATER TAXI FOR 100 PASSENGERS in SADARGHAT-ASHULIA ROUTE Project Supervisor KhabirulHaqueChowdhury Professor Department of Naval Architecture & Marine Engineering,BUET Presented By- Hasib-Ul-Haque             (0712014) Ahmad ShibliSaleheen  (0712018)
OBJECTIVES To use the circular water ways around Dhaka city To ease the water way communication with comfortable service To reduce the pressure on land transport. To safe people from horrible traffic jam.
PRINCIPAL PARTICULARS  LENGTH: OVERALL          : 24.90   meter 	 Load water line   : 24.122 meter L.B.P                   : 22.95   meter BREADTH: MAXIMUM        : 6.5 meter MOULDED        : 6.3 meter DEPTH(MLD)       :  2.0 meter    DRAFT(MLD)       :  1.1 meter
PRESENTATION TOPICS 1.Rudder design. 2.Engine selection and foundation. 3.GA and Lines plan update 4.Weight calculation update 5.Hydrostatic calculation update 6. Trim and Stability update
Rudder Design-Calculation from GL
CAD Drawing
Steering Arrangement
Resistance & Power CalculationHoltrop Mennen Method RT = RF(1+K1) + RAPP + RW + RB + RTR + RA Where, ,[object Object]
(1+K1) = Form factor describing the viscous resistance of the hull form in relation to RF
RAPP = Appendage resistance
RW = Wave making and wave breaking resistance
RB = Additional pressure resistance due to bulbous bow near the water surface
RTR = Additional pressure resistance of immersed transom stern
RA = Model ship correlation resistance 
Resistance & Power Calculation  For our ship we get,  RF= 4.6430 KN (1+K1) = 1.22 RAPP = 0.1417 KN RW= 9.0478 KN RB = 0 RTR = 0 RA = 1.7609 KN So, RT = 16.6149 KN Effective power,PE = RT × V                                    = 16.6149 × 12 ×0.5149                                     = 102.65 KW = 137.68 HP
Resistance & Power Calculation Shaft Power,Ps= PE/[ ηR η0ηs(1-t)/(1-w)] = 188.19 HP Delivered Power,PD= ηs× Ps= 0.99 × 188.19 = 186.31 HP Break horse power = PS/ ηG = 194.01 HP Where, ηG= gear efficiency = 97%
Engine Selection Yanmar type 4JH4-HTE
Engine Selection Steyr Motor Engines-M0114K33
Why we select Yanmar type 4JH4-HTE?? The Yanmar type 4JH4-HTE Engine is designed for high performance. The innovative fuel injection technology enables an excellent torque and speed range. Service Life-this engine is manufactured using high alloy materials to provide enduring longevity for all running components. Comfort-The patented 2-stage UNIT Injector fuel injection technology provides for a worldwide approped and smooth operation noise Exhaust Emissions-The trend-setting UNIT INJECTOR system enables us already today to conform with the valid emission regulations. Transmission-this engine allow the installation with different driving system in our boat.
Power  Yanmar type 4JH4-HTE Steyr Motor Engines-M0114K33
Fuel Consumption Yanmar type 4JH4-HTE Steyr Motor Engines-M0114K33
Torque Yanmar type 4JH4-HTE Steyr Motor Engines-M0114K33
Engine Dimension Aft view Right View
Engine Specification
Engine Foundation
CAD Drawing
CAD Drawing
CAD Drawings
Equipments
VARIANCE IN DATA
                                      GA  Update
  MODIFICATION OF GENERAL ARRANGEMENT  1.Canteen facility has been cancelled 2.Number of Bulkhead is reduced 4.Seating arrangement has been renovated and updated 5.Change in Cabin type,size and position
Comparison between GA plans GA-Updated GA-Previous
Lines Plan Update
Deadweight calculation
DEADWEIGHT CALCULATION No of person on board: No of passenger = 100 No of crew = 6 Total = 106 Weight allowance per person: Weight per person = 75 kg Luggage per person = 5 kg Total = 80 kg Total weight for persons = 80× 106                                            = 8.48 tons
Capacity calculation
Summery from Capacity Calculation
Summary of deadweight
Lightweight  calculation
SHELL EXPANSION
Longitudinal
CALCULATION OF WEIGHT OF PLATES
weight of other items
WEIGHT OF OTHER ITEMS
MISCELLANEOUS : 2 TONNE
So,the total lightweight of the vessel is = (9.47+47.93) tons                                                                = 57.4 tons  Therefore,  the displacement of the vessel= Lightweight+Deadweight                                                 = 57.4 + 17.48                                                 = 74.88 tons Which was previously 123.48 tons
HYDROSTATIC UPDATE
Hydrostatic Parameters
Form coefficient
Longitudinal centre of buoyancy Updated Previous
                Longitudinal metacentre Updated Previous
Transverse metacentre Updated Previous
                     Displacement Updated Previous
Water plane coefficient Updated Previous
             Prismatic coefficient Updated Previous
Vertical centre of buoyancy Updated Previous
              Block coefficient Updated Previous
Midship section coefficient Updated Previous
Longitudinal centre of flotation Previous Updated
MCT 1m Previous
MCT 1m Updated
STABILITY CALCULATION

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