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<title>Thesis-FMPE</title>
<link>http://localhost:8080/xmlui/handle/123456789/4</link>
<description/>
<pubDate>Wed, 22 Jul 2026 23:09:45 GMT</pubDate>
<dc:date>2026-07-22T23:09:45Z</dc:date>
<item>
<title>DEBARKING MACHINE FOR JIGAT TREE</title>
<link>http://localhost:8080/xmlui/handle/123456789/2414</link>
<description>DEBARKING MACHINE FOR JIGAT TREE
JAZAL KT; Dr. Jayan P. R., (Guide)
</description>
<pubDate>Thu, 01 Jan 2026 00:00:00 GMT</pubDate>
<guid isPermaLink="false">http://localhost:8080/xmlui/handle/123456789/2414</guid>
<dc:date>2026-01-01T00:00:00Z</dc:date>
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<item>
<title>Investigations on physico-mechanical properties of coconut palm for the design and development of a coconut palm climber</title>
<link>http://localhost:8080/xmlui/handle/123456789/2067</link>
<description>Investigations on physico-mechanical properties of coconut palm for the design and development of a coconut palm climber
Ayisha Mangat; Sureshkumar, P K (Guide)
Coconut palm (Cocos nucifera L.) is a versatile tree with global cultivation&#13;
spanning about 12 million hectares. India leads in production, contributing around&#13;
31.45% of the world's total coconut output. In Kerala, coconut is the second most&#13;
important crop after paddy, producing 5,921 million nuts annually. Despite its&#13;
widespread cultivation, harvesting remains a significant challenge due to a shortage of&#13;
skilled labor, youth reluctance to pursue coconut harvesting as a career, health risks,&#13;
and the lack of proper mechanical climbing devices.&#13;
A study was conducted to investigate the physico-mechanical properties of the&#13;
coconut palm such as height of palm, girth at different levels, inclination of palm trunk&#13;
with respect to ground and hardness, with the aim of developing a climbing device. It&#13;
was collected from three districts viz. Malappuram, Palakkad and Thrissur. Two&#13;
instruments namely Inclinometer and Tree hardness tester were developed for&#13;
measuring inclination and hardness of live palm as there are no instruments readily&#13;
available for those measurements.&#13;
A comparative study of some existing models of coconut palm climbers like&#13;
Chemberi model, TNAU model, CPCRI model, KAU coconut palm climber, KAU&#13;
Kera Suraksha, and Chachoos Maramkeri was conducted to identify their important&#13;
features. Additionally, an engine-operated coconut climbing device was also studied.&#13;
The height ranges from 8 to 18 m for tall varieties and for dwarf varieties it&#13;
ranges from 3 to 8m. The GBH of coconut palm comes within the range of 60 to 100&#13;
cm. The maximum number of palms falls in the range of 80-85 cm GBH. The crown&#13;
width comes within a range of 7-12 m, with an average value of 9-9.5 cm. The&#13;
inclination was categorized into four groups and the data reveals that 92.1% of the&#13;
palms fall under the "Erect" category.&#13;
Hardness of palm trunk was measured using the developed Tree hardness tester&#13;
with three different indenter tools of different head geometries like wedge, spherical,&#13;
and square. It was measured at four different penetration depths such as 1 mm, 2 mm,&#13;
3 mm and 4 mm. All tools demonstrate a reduction in hardness as penetration depth&#13;
increases. Highest hardness recorded is 6.85 N mm-2 for sphere shaped tool. The Wedge&#13;
tool experiences the sharpest decline in hardness with depth, suggesting that its&#13;
penetration becomes easier as it moves deeper into the palm.&#13;
Based on the preliminary study of the physico-mechanical properties of coconut&#13;
palms and the analysis of the features of existing climbing devices, some functional&#13;
requirements were identified for designing a new coconut climber. A conceptual design&#13;
was then finalized and the subsystems were developed to meet these requirements.&#13;
The components of the designed climbing device were Extendable Mechanism,&#13;
Hauling mechanism, Safety mechanism, Top fixture ring and Mounting fixture and&#13;
transport aid. The extendable mechanism comprised a telescopic rung ladder with three&#13;
sections, each measuring 4.6 meters, designed to reach a height of 12 m. The extension&#13;
to its full length is facilitated by a hauling system that includes steel wire rope and&#13;
pulley, a winch mechanism, and a power source.&#13;
The power required to lift the ladder and climber to a height of 12 m was&#13;
calculated based on the weight to be lifted and the desired lifting speed. A 1 hp electric&#13;
motor was selected as the power source to efficiently operate the hauling mechanism&#13;
and lift the ladder to the required height. Suitable speed reduction mechanism for the&#13;
winch system with a speed reduction ratio of 60:1 was selected to get the desired&#13;
climbing velocity of 0.14 ms-1.&#13;
The telescopic ladder is securely supported on the palm trunk using a top fixture&#13;
ring that prevents the ladder from sliding sideways. Self-adjusting, spring-loaded&#13;
rollers were incorporated within the top ring to accommodate the varying girth&#13;
dimensions of the palm trunk corresponding diameters ranging from 200 mm to 320&#13;
mm, representing the minimum and maximum trunk diameters observed in the field.A&#13;
sturdy, trapezoidal-shaped basket was hinged to the top of the ladder section for&#13;
operator safety. A safety harness was also recommended for enhanced protection. All&#13;
the components were mounted on a trolley platform with provisions for rotational&#13;
control and tilt control.&#13;
Finite element analysis of the ladder and mounting fixture was done. The values&#13;
for ladder show that the deformation and stress reach a maximum of 76.612 mm and&#13;
70.814 MPa, respectively for an applied load of 1500 N. For mounting fixture, the&#13;
deformation was 2.7766 mm and stress was 205.76 MPa.&#13;
The time taken for climbing a 12 m height coconut palm including setting time&#13;
was 130 seconds and that for climbing down including dismantling was 120 seconds.&#13;
The climber requires an initial investment of ₹95,000, has a lifespan of 15 years, and a&#13;
resale value of ₹9,500. The total operating cost of the device was ₹240 per hour, while&#13;
the cost of climbing per tree was ₹40, assuming six trees were climbed per hour.
</description>
<pubDate>Wed, 01 Jan 2025 00:00:00 GMT</pubDate>
<guid isPermaLink="false">http://localhost:8080/xmlui/handle/123456789/2067</guid>
<dc:date>2025-01-01T00:00:00Z</dc:date>
</item>
<item>
<title>An Air assisted sprayer with electrostatic nozzle for coconut palms</title>
<link>http://localhost:8080/xmlui/handle/123456789/2065</link>
<description>An Air assisted sprayer with electrostatic nozzle for coconut palms
Athira Prasad; Dhalin, D (Guide)
An air-assisted electrostatic sprayer prototype suitable for coconut palms&#13;
was designed and developed. Studies on the important plant parameters, including&#13;
height of palm, canopy diameter, and angle of leaf orientation, were carried out as&#13;
the primary step in developing the prototype. The major components of the&#13;
developed unit are a High Voltage DC (HVDC) System, nozzle unit, liquid delivery&#13;
unit, and an air-assistance unit. The high-voltage DC system capable of generating&#13;
voltages in the range of 1 to 10 kV was developed using a Line Output Transformer&#13;
(LOPT 1010A) coupled with a Metal-OxideSemiconductor FieldEffect Transistor&#13;
(MOSFETIRFZ44E). Among major electrostatic spray droplet charging methods,&#13;
induction with a ring electrode (4.3 mm diameter copper wire) was chosen due to&#13;
its several advantages over the other methods. The diameter of ring electrode (40,&#13;
60, and 90 mm) and the horizontal position (5, 10, and 15 mm) of the electrode in&#13;
front of the nozzle were optimized under laboratory conditions in terms of chargeto-mass ratio (CMR) of the developed electrostatic system using a specially&#13;
designed Faraday Cage apparatus. A high-pressure hydraulic nozzle was selected&#13;
for the liquid atomization and a double-stage diaphragm pump with a cut-off&#13;
pressure of 10.5 kg‧cm2 was selected for the liquid supply unit. An Electric Ducted&#13;
Fan (EDF) was chosen for the airassistance unit.&#13;
The spray-gun comprising both the nozzle and the EDF was mounted on an&#13;
8 m long telescopic carbon fiber pole, and all other major components and control&#13;
units were arranged as a backpack unit for easy handling. Water Sensitive Papers&#13;
(WSPs) were used to study the effect of electrostatic charging on spray&#13;
characteristics. The performance evaluation of the developed prototype in terms of&#13;
deposition, droplet density, spray drift and biological efficacy was carried out under&#13;
actual field conditions and compared with a conventional sprayer (Rocker sprayer).&#13;
The field trials were conducted under optimized operating conditions viz. electrode&#13;
diameter (90 mm), electrode position (10 mm), operating pressure (5 kg‧cm2&#13;
),&#13;
VMD (156 μm), and EDF air flow velocity of 17 m‧s-1&#13;
. The results concluded that&#13;
the spray deposition of the developed sprayer has 20.69, 27.23, and 63.95 per cent&#13;
higher in the adaxial surface at the lower, middle, and upper middle canopy&#13;
respectively compared to the air-assisted spraying. And 39.05, 22.7, and 84.33 per&#13;
cent higher with respect to the conventional rocker sprayer. Moreover, electrostatic&#13;
spraying has 1.81 times more droplet density compared to rocker sprayer, and 1.2&#13;
times more than the air-assisted sprayer. The deposition efficiency was calculated&#13;
as 69.77, 43.09, and 33.86 per cent for the spraying with electrostatic sprayer, air&#13;
assisted sprayer and rocker sprayer respectively. Spraying with the developed&#13;
sprayer was able to reduce the Rugose Spiralling Whitefly (RSW) incidence,&#13;
severity and RSW live colony per leaflets by 32.76, 64.17, and 74.91 per cent&#13;
respectively. The total cost of the developed prototype was Rs. 22,120/- The&#13;
operational cost of the developed electrostatic sprayer was calculated to be ₹151&#13;
per hour, significantly lower than that of the conventional rocker sprayer, which&#13;
stood at ₹231 per hour.
</description>
<pubDate>Wed, 01 Jan 2025 00:00:00 GMT</pubDate>
<guid isPermaLink="false">http://localhost:8080/xmlui/handle/123456789/2065</guid>
<dc:date>2025-01-01T00:00:00Z</dc:date>
</item>
<item>
<title>A Sensor based tractor drawn ginger planter</title>
<link>http://localhost:8080/xmlui/handle/123456789/1984</link>
<description>A Sensor based tractor drawn ginger planter
Mahesh Babu, T; Preman, P S
India is the largest producer of spices in the world and ginger contributes 43.00&#13;
per cent of world production of ginger. Ginger, turmeric, garlic, clove, etc. are some of&#13;
the common spice crops. The production of ginger in Kerala was 51.18 million tonnes&#13;
in an area of 2.58 thousand hectares with the productivity level of 19820 kilogram per&#13;
hectare in 2022-2023.&#13;
The major constrain in raising of ginger crop is the non-availability of labour in&#13;
time, especially, during peak periods of sowing and harvesting. Traditional methods of&#13;
growing ginger involve manual planting of excess rhizomes and thinning of the plants&#13;
is needed to obtain the desired plant population at uniform plant spacing. For obtaining&#13;
a high yield, it is very essential to drop the desired number of seeds in rows maintaining&#13;
accurate seed rate and seed spacing during metering. Among the different planting&#13;
techniques, precision planting is the preferred method, since it provides accurate&#13;
spacing of single seeds in the row with proper planting depth and creating a uniform&#13;
germination environment for each seed.&#13;
In conventional planters, the metering mechanism is usually driven by a ground&#13;
wheel while operating with tractor. The speed ratio between the ground wheel and seed&#13;
metering mechanism could not be maintained due to the power transmission loss,&#13;
resulting in a reduction in uniformity of seed distribution. To solve the above problem,&#13;
an alternative method of driving the metering mechanism with a 24 V DC motor was&#13;
identified in this study. The metering unit was synchronized with the forward speed&#13;
with the help of an encoder, Arduino Nano and Cytron drive.&#13;
The performance of the seed-metering device of a sensor based ginger planter&#13;
was investigated under laboratory and field conditions to optimize the operating&#13;
parameters for ginger planting. The effect of operational speed of the metering chain,&#13;
forward speed and cell size were evaluated by examining the minimum values of mean&#13;
hill to hill distance 16.0 cm, 0.95 per cent, miss index 1.71 per cent, multiple index 0.95&#13;
per cent, and highest quality of feed index 97.54 per cent as well as cell fill efficiency&#13;
93.33 per cent. For picking single seed, the planter cell sizes of 40 mm, 50 mm and 60 mm diameter were tested under laboratory. From the laboratory test, optimised cell size&#13;
of 50 mm was tested in the field condition.&#13;
For the field evaluation, forward speeds of 1, 1.5 and 2 km h-1 were selected for&#13;
ginger planting. When the speed of chain was increasing from 86 rpm to 106 rpm,&#13;
increase in mean hill to hill distance 16.0 cm, missing index 1.7 per cent, multiple index&#13;
0.95 per cent and decrease in quality of feed index 97.54 per cent as well as cell fill&#13;
efficiency 93.33 per cent was observed. However, lower miss index was observed at&#13;
optimum cell size and lowest speed. Low multiple index was observed at optimum cell&#13;
size and highest speed.&#13;
The maximum field capacity and efficiency of the developed sensor-based&#13;
tractor drawn ginger planter were found to be 0.11 ha h-1 and 84 per cent respectively.&#13;
Cost of planting with the developed ginger planter is Rs. 5583.07 ha-1. By manual&#13;
method, it is Rs. 12500 ha-1. The cost and time saving over manual planting was about&#13;
89.1 per cent and 98.84 per cent respectively. The cost of rhizome planter was&#13;
Rs.80238.18. Based on the field performance evaluation, it is concluded that the&#13;
developed tractor drawn sensor-based planter is economical and efficient for planting&#13;
ginger.
</description>
<pubDate>Mon, 01 Jan 2024 00:00:00 GMT</pubDate>
<guid isPermaLink="false">http://localhost:8080/xmlui/handle/123456789/1984</guid>
<dc:date>2024-01-01T00:00:00Z</dc:date>
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