Study of Efficiency and Environmental Performance of Propeller

The efficiency of propeller relation with the velocity of efflux plane, the distribution of axial velocity, the ratio of power required by the propeller and the power delivered to the propeller. This study investigated the current design of ship propeller to determine the efficiency impact on coastline. Propeller from RV Discovery is used in this study. The performance and the efficiency of the propeller were determined by using JavaProp software. The efficiency of the propeller is 50% which was good based on the propeller design. The environmental performances were determined by the range and speed of the distribution of axial velocity. The result has showed very good agreement with the previous research to validate the result.


Introduction
Propeller is a type of fan which is attached to the aft of ship and moves against resistant of water to drive the ship. It converts engine torque into propulsive force or thrust, thus overcoming ship's resistance to produce forward motion by creating a sternward accelerated column of water. In propeller design, it is important to ensure that it drives the vessel efficiently.
This study were focused on the propeller efficiency at optimum speed and impact of propeller wash to determine environmental performance of propeller in respect to impact such as coastal erosion seabed scouring, damage to moored vessel, marine structure and etc. [1,2]. This study is conducted base on theoretical modeling and simulation software [3]. Propeller efficiency is used to define how well a propeller transmits its rotational force or energy into thrust. The amount of energy it takes to rotate the propeller is almost always greater than the thrust from the propeller. Reducing the loss, and drag are the goal of propeller efficiency. The impact of a wave on a shoreline or structure is dependent on the parameters, wave height, wave period, wave direction and water depth. However, the common form of analysis is used for wind and waves are not directly applicable as there is so much variability in the parameters over the course of a single event. Stumbo et al. used an energy based analysis, whereby the total energy in the wave packet was determined and used as a design value [4,5]. Using this technique, he was able to assess the impact of different wave events on shorelines and structures.
The propeller affect the wake wash which cause coastal erosion and damage to the moored vessel, port, marine structure and marinas. Vessel movements in inland water require propulsive efficient and optimum speed [8]. Propeller jet caused seabed scouring [9]. This study determines the efficiency and environmental performance of propeller. This paper discusses the performance of current propeller design and the impact of propeller jet to environment.

Methodology
Tools employed in this study are described below: JavaPropsoftware: JavaProp is software used in this study to analysis the propeller impact. This software can be used for both airplane and ship propeller because it's the analysis are not too details. As both propellers are used in different medium, this requires setting a few parameters to make sure there is good accuracy of the result. In this research the parameters which are needed to set up are density of water, kinematic viscosity of water and speed of sound in water.

Axial momentum theory:
This theory is derived from the concept of conversation of momentum and energy, encompass five core assumptions: i. The propeller is represented by an ideal actuator disc without thickness in the axial direction. ii.
The disc consists of an infinite number of rotating blades, covering the entire disc without space in between. iii.
The disc is submerged in an ideal fluid without disturbances. iv.
All elements of fluid passing through the disc undergo an equal increase of pressure. v.
The energy supplied to the disc is, in turn, supplied to the fluid without any rotational effects being induced [10] (Figure 1).

Efflux plane:
Hamill et al. suggested the efflux velocity is influenced by other propeller characteristics such as blade area ratio and hub diameter of a propeller ( Figure 2).
Where, Hashmi HN (1993) proposed that the coefficient can be calculated using a semi-empirical equation by taking propeller diameter, hub diameter, thrust coefficient and blade area ratio into account. -0.403 where n is number of rev per sec of propeller, D h is hub diameter, C t is thrust coefficient, D is propeller diameter, BAR is blade area ratio.
Zone of flow establishment: The zone of flow establishment is the region where the jet was divided into two parts by the influence of the rotating hub. The velocity profiles of this zone contain two symmetric peaked ridges propagating downstream jet.
Predicting maximum velocity of a traverse profile is the first step to understand the whole distribution. This maximum velocity at the zone of flow establishment can be predicted using.
( ) For the efflux plane and the region up to 0.5 D p from the propeller, the distribution of axial velocity can be determine by and within the zone of flow establishment, Where R mo can be obtained using Berger's equation where R is the radius of the propeller and R h is the radius of the propeller hub.

Zone of established flow:
The fluid from the two peaked ridges will penetrated into the central axis to produce an individual peaked ridge. This zone has been called zone of established flow. The flow velocity will decelerate along the jet with distance from face. The maximum velocity of this zone can be predicted using the Hashmi's equation While the distribution can be calculated using Fuehrer and Romisch's equation Data collection and analysis: The data obtained for propeller performance from JavaProp software was transfer to Microsoft Excel. Then the data used for this study was selected and form in a new table for further analysis. The propeller performance was determined from data of power, torque, thrust and efficiency obtained. The data calculated for the propeller jet by using the equation was transfer to Microsoft Excel. The analysis for propeller jet included the efflux velocity and the distribution of axial velocity for Zone of Flow Establishment and Zone of Establish Flow.

Propeller performance
The propeller from UMT RV Discovery vessel was used in this research. The data uses for this research are shown in Table 1.
From the specification of engine and propeller, the propeller performance was analyzed by using JavaProp software. All the data were analyzed using off design analysis for full advance coefficient range. The performance data were shown in Table 2.
From the Figure 3, the graph of propeller performance, both coefficient of thrust and power decrease when the number of advance coefficient increase. The advance coefficient represents the speed of propeller.While the efficiency of the propeller, in the beginning of the advance coefficient from zero to 0.7 the graph gradually increases to the highest point which is 0.58. Then the efficiency start decrease as advance coefficient increase until the last point. Based on this graph, the propeller is designed with a good performance.
From the Figure 4, power versus propeller speed curve, it is observed that when the propeller speed at zero the power are higher   Max speed 12 knots clearly shows that the torque is inversely as propeller speed. The torque more needed when the propeller speed at 0 m/s compare to the speed 10.46 m/s. Based on the graph, the torque delivered to the propeller was good. This is because the torque was high in the beginning to overcome the resistance to rotate the propeller [11].

Impact of propeller jet
The propeller jet had been determined by their velocities from the propeller face. For this calculation the propeller specification of RV Discovery used are shown in Table 3.
which is 1.53 MW. From there the power gradually decrease until 0.27 MW as the propeller speed increase to 10.46 m/s due to less resistant. Based on the graph the power delivered to the propeller was good.
From the Figure 5, the graph thrust versus propeller speed, its show that when the propeller sDelft Hydraulics speed at 0 m/s the thrust produced was 139 kN. The thrust value continuous to decrease as the propeller speed increasing. Based on the graph, the thrust produced by the propeller was good. This is because the thrust required are higher when the propeller starts to rotate to drive the ship.
From the Figure 6, the graph torque versus propeller speed, it

Zone of established flow
This zone has been called zone of established flow. The flow velocity will decelerate along the jet with distance from face. Equation (7) and (8) were used in this calculation. All the calculated data for this zone are shown in Table 6.
From Figure 9, it is obserevd that the distributions of axial velocity at zone of establish flow along a radial distance from propeller axis at the distance 12 m from propeller face. Then, the axial velocity reached its lower velocity which is 0.67 m/s at distance 4.0 m. Based on the graph, the distribution of axial velocity is not good and the axial velocity are high for this region.
From Figure 10, its clearly shown that the distribution of axial velocity along radial distance from different distance from propeller face. At radial distance of 0 m the axial velocity increase from 2.69 m/s to 10.04 m/s and then decrease to 8.48 m/s.It shows the distribution along radial distance increase as the distance from propeller face increase. Based on the graph, the distribution of axial velocity was good but the axial velocities are high.
In conclusion, this study determines the efficiency and its environmental performance for propeller from UMT RV Discovery. Based on the result of the study, it shows that propeller efficiency depends on the

Efflux velocity
The exit plane of a propeller flow is called the efflux velocity. The efflux velocity were calculate using equation (1) which proposed by Hamilet al. While the coefficient can be calculate using equation (2) proposed by Hashmi 1993. From both equations the efflux velocity is 28.05 m/s. Based on the propeller size, the efflux velocity produced is quiet high.

Zone of flow establishment
First of all, the maximun velocity at zone of flow establishment should be determined. This maximum velocity was calculated by using equation (3)            relation between rate of revolution of propeller and power delivered to the propeller. The result of axial velocity and its distribution was along the radial distance from propeller axis for a certain distance from propeller face. The study also shows that the axial velocity are higher at zone of flow establishment compare to the zone of establish flow. This is because at zone of flow establishment there are turbulence flow while at zone of establish flow the turbulence flow has expanded and establish due to the distance from propeller face.

Recommendation for the future research are:
i. More than one propeller with different specification to make good comparison and to get a better result is suggested.
ii. Use computational fluid dynamic (CFD) simulation software to analysis the parameter involved for an accurate result. Besides that it's also a faster and cheaper method.
iii. Further study also needs to consider the hull interaction which generates the ship wake wave.