Turbodrills design and performance analysis for efficient drilling in hard rocks

The authors have recently proposed Coiled Tube Turbodrilling technology for drilling deep hard rocks mineral exploration. Coiled Tube (CT) is a continuous length of ductile steel or composite tube that itself cannot rotate and therefore a down hole motor is needed to provide mechanical power to the...

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Main Authors: Mokaramian, A., Rasouli, Vamegh, Cavanough, G.
Other Authors: Prof Fuad Khoshnaw
Format: Conference Paper
Published: WITS 2012
Subjects:
Online Access:http://hdl.handle.net/20.500.11937/27368
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author Mokaramian, A.
Rasouli, Vamegh
Cavanough, G.
author2 Prof Fuad Khoshnaw
author_facet Prof Fuad Khoshnaw
Mokaramian, A.
Rasouli, Vamegh
Cavanough, G.
author_sort Mokaramian, A.
building Curtin Institutional Repository
collection Online Access
description The authors have recently proposed Coiled Tube Turbodrilling technology for drilling deep hard rocks mineral exploration. Coiled Tube (CT) is a continuous length of ductile steel or composite tube that itself cannot rotate and therefore a down hole motor is needed to provide mechanical power to the bit. Amongst the down hole motors, turbodrills (turbine down hole motors) are an excellent fit with CT operations for hard rocks, providing a smooth borehole with little vibrational effects during drilling with high output rotational speed. The turbine motor section has multistage of rotors and stators which convert the hydraulic power to mechanical power. This paper presents a methodology for designing turbodrills with asymmetric rotor or stator blades configurations. Here, the turbodrill is designed specifically for small size CT system providing suitable output power and rotation speed with applicable input flow properties. Also, the results of a few numerical simulations carried out using computational fluid dynamics (CFD) code are presented. The results help in choosing the best turbine motor configurations to obtain optimum rotational speed and torque during drilling hard rocks for small hole size exploration applications. Similar methodology can be used to design and choose the best turbodrill for other hard rocks drilling conditions.
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institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T08:05:32Z
publishDate 2012
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spelling curtin-20.500.11937-273682017-09-13T16:09:21Z Turbodrills design and performance analysis for efficient drilling in hard rocks Mokaramian, A. Rasouli, Vamegh Cavanough, G. Prof Fuad Khoshnaw hydraulic turbodrill coiled tubing (CT) drilling hard rocks turbine down hole motor numerical simulation drilling efficiency The authors have recently proposed Coiled Tube Turbodrilling technology for drilling deep hard rocks mineral exploration. Coiled Tube (CT) is a continuous length of ductile steel or composite tube that itself cannot rotate and therefore a down hole motor is needed to provide mechanical power to the bit. Amongst the down hole motors, turbodrills (turbine down hole motors) are an excellent fit with CT operations for hard rocks, providing a smooth borehole with little vibrational effects during drilling with high output rotational speed. The turbine motor section has multistage of rotors and stators which convert the hydraulic power to mechanical power. This paper presents a methodology for designing turbodrills with asymmetric rotor or stator blades configurations. Here, the turbodrill is designed specifically for small size CT system providing suitable output power and rotation speed with applicable input flow properties. Also, the results of a few numerical simulations carried out using computational fluid dynamics (CFD) code are presented. The results help in choosing the best turbine motor configurations to obtain optimum rotational speed and torque during drilling hard rocks for small hole size exploration applications. Similar methodology can be used to design and choose the best turbodrill for other hard rocks drilling conditions. 2012 Conference Paper http://hdl.handle.net/20.500.11937/27368 10.2495/PMR120111 WITS restricted
spellingShingle hydraulic turbodrill
coiled tubing (CT) drilling
hard rocks
turbine down hole motor
numerical simulation
drilling efficiency
Mokaramian, A.
Rasouli, Vamegh
Cavanough, G.
Turbodrills design and performance analysis for efficient drilling in hard rocks
title Turbodrills design and performance analysis for efficient drilling in hard rocks
title_full Turbodrills design and performance analysis for efficient drilling in hard rocks
title_fullStr Turbodrills design and performance analysis for efficient drilling in hard rocks
title_full_unstemmed Turbodrills design and performance analysis for efficient drilling in hard rocks
title_short Turbodrills design and performance analysis for efficient drilling in hard rocks
title_sort turbodrills design and performance analysis for efficient drilling in hard rocks
topic hydraulic turbodrill
coiled tubing (CT) drilling
hard rocks
turbine down hole motor
numerical simulation
drilling efficiency
url http://hdl.handle.net/20.500.11937/27368