Pakistan Liberalises the Petroleum Sector

1992 ◽  
Vol 10 (1) ◽  
pp. 33-45

On 20 November 1991 Pakistan announced a new and liberal petroleum policy. The text of the policy is included in full together with a brief description of the energy sector in Pakistan.

2019 ◽  
Vol 20 (2-3) ◽  
pp. 313-334 ◽  
Author(s):  
C. L. Lim

Abstract This article focusses on Chinese contractual practice in the energy sector and related sectors – principally in China’s inbound and outbound investments in the petroleum sector as well as in other energy-related financing and infrastructure construction contracts. Its concern is with the drafting of Belt and Road contracts, especially where this may lead to contract ‘internationalisation’. The article also discusses the interplay between Chinese contracts and treaties. It asks if there is Chinese receptiveness to international principles in seeking to protect the rights of Chinese as well as foreign parties. A preliminary finding is that there is an asymmetry between what Chinese upstream oil contracts do in protecting foreign ownership interests, even to the point of evincing Chinese acceptance of the ‘internationalisation’ of contracts, and the intergovernmental work done through negotiated treaty terms to protect Chinese investments abroad.


2020 ◽  
Vol 10 (8) ◽  
pp. 3993-4006
Author(s):  
Jainish Shingala ◽  
Vrutang Shah ◽  
Kaushalkumar Dudhat ◽  
Manan Shah

Abstract Due to soaring demand for universal energy, industry forced to look forward in either expand the limit of conventional energy resources or to look at other possibilities such as renewable energy resources and unconventional hydrocarbon resources. The challenges might be figured out by revolutionary technological developments in the energy sector by science and technology. The industry needs splendid technological breakthroughs in the energy sector to push the final frontier of conventional energy resources. Owing to its superior particle size and properties, nanotechnology can likely of moving far that current energy supply by introducing new technologies. The exact exploitation and manipulation of matter at measurements of (1–100) nanometres have revolutionized many sectors, including the petroleum sector. The upgrade in nanoscale organized materials represents one of the fascinating, inventive viewpoints bringing innovative advances in numerous industries. The charge of oil extraction is under heavyweight, and it becomes increasingly difficult to legitimize it when the gross price of oil is powerless and depressing. There is a universal belief that nanotechnologies can be to produce new, more valuable nanomaterials to oppose these technological limitations. Many research endeavours are being coordinated towards the opening of immense and diverse advantages of nanotechnology in the oil and gas industry. The research experts have experienced the utilization of different nanoparticle types and sizes. Nanoparticles show exceptional properties because of their large surface area and highly activated particle surface. The nanotechnology can be performed at a different scale in petroleum engineering from exploration, drilling, cementing, reservoir, completion, production, and processing and refinery in each stage. This paper intends to give a concise thought of the significant uses of nanoparticles, their potential advantages, associated economic and technical challenges, and solutions.


2020 ◽  
Vol 1 (2) ◽  
pp. 245-247
Author(s):  
Vicente Lopez-Ibor Mayor ◽  
Raphael J. Heffron

It is advanced here that a principle-based approach is needed to develop the energy sector during and after COVID-19. The economic recovery that is needed needs to revolve around ensuring that no one is left behind, and it should be an inclusive transition to a secure and stable low-carbon energy future. There are seven core energy law principles that if applied to the energy sector could enable this to be achieved.


2018 ◽  
Vol 28 (104) ◽  
pp. 16-32
Author(s):  
E. V. Bykova, ◽  
◽  
V. P. Berzan, ◽  
V. M. Postolaty, ◽  
I. V. Vasilievа
Keyword(s):  

2012 ◽  
Vol 3 (4) ◽  
pp. 38-39
Author(s):  
R.Narayanan R.Narayanan ◽  
◽  
Dr. R. Hamsalakshmi Dr. R. Hamsalakshmi

Author(s):  
O. M. Salamov ◽  
F. F. Aliyev

The paper discusses the possibility of obtaining liquid and gaseous fuels from different types of biomass (BM) and combustible solid waste (CSW) of various origins. The available world reserves of traditional types of fuel are analyzed and a number of environmental shortcomings that created during their use are indicated. The tables present the data on the conditional calorific value (CCV) of the main traditional and alternative types of solid, liquid and gaseous fuels which compared with CCV of various types of BM and CSW. Possible methods for utilization of BM and CSW are analyzed, as well as the methods for converting them into alternative types of fuel, especially into combustible gases.Reliable information is given on the available oil and gas reserves in Azerbaijan. As a result of the research, it was revealed that the currently available oil reserves of Azerbaijan can completely dry out after 33.5 years, and gas reserves–after 117 years, without taking into account the growth rates of the exported part of these fuels to European countries. In order to fix this situation, first of all it is necessary to use as much as possible alternative and renewable energy sources, especially wind power plants (WPP) and solar photovoltaic energy sources (SFES) in the energy sector of the republic. Azerbaijan has large reserves of solar and wind energy. In addition, all regions of the country have large reserves of BM, and in the big cities, especially in industrial ones, there are CSW from which through pyrolysis and gasification is possible to obtain a high-quality combustible gas mixture, comprising: H2 + CO + CH4, with the least amount of harmful waste. The remains of the reaction of thermochemical decomposition of BM and CSW to combustible gases can also be used as mineral fertilizers in agriculture. The available and projected resources of Azerbaijan for the BM and the CSW are given, as well as their assumed energy intensity in the energy sector of the republic.Given the high energy intensity of the pyrolysis and gasification of the BM and CSW, at the present time for carrying out these reactions, the high-temperature solar installations with limited power are used as energy sources, and further preference is given to the use of WPP and SFES on industrial scale.


2015 ◽  
Vol 6 (1) ◽  
pp. 19-29 ◽  
Author(s):  
G. Bitelli ◽  
P. Conte ◽  
T. Csoknyai ◽  
E. Mandanici

The management of an urban context in a Smart City perspective requires the development of innovative projects, with new applications in multidisciplinary research areas. They can be related to many aspects of city life and urban management: fuel consumption monitoring, energy efficiency issues, environment, social organization, traffic, urban transformations, etc. Geomatics, the modern discipline of gathering, storing, processing, and delivering digital spatially referenced information, can play a fundamental role in many of these areas, providing new efficient and productive methods for a precise mapping of different phenomena by traditional cartographic representation or by new methods of data visualization and manipulation (e.g. three-dimensional modelling, data fusion, etc.). The technologies involved are based on airborne or satellite remote sensing (in visible, near infrared, thermal bands), laser scanning, digital photogrammetry, satellite positioning and, first of all, appropriate sensor integration (online or offline). The aim of this work is to present and analyse some new opportunities offered by Geomatics technologies for a Smart City management, with a specific interest towards the energy sector related to buildings. Reducing consumption and CO2 emissions is a primary objective to be pursued for a sustainable development and, in this direction, an accurate knowledge of energy consumptions and waste for heating of single houses, blocks or districts is needed. A synoptic information regarding a city or a portion of a city can be acquired through sensors on board of airplanes or satellite platforms, operating in the thermal band. A problem to be investigated at the scale A problem to be investigated at the scale of the whole urban context is the Urban Heat Island (UHI), a phenomenon known and studied in the last decades. UHI is related not only to sensible heat released by anthropic activities, but also to land use variations and evapotranspiration reduction. The availability of thermal satellite sensors is fundamental to carry out multi-temporal studies in order to evaluate the dynamic behaviour of the UHI for a city. Working with a greater detail, districts or single buildings can be analysed by specifically designed airborne surveys. The activity has been recently carried out in the EnergyCity project, developed in the framework of the Central Europe programme established by UE. As demonstrated by the project, such data can be successfully integrated in a GIS storing all relevant data about buildings and energy supply, in order to create a powerful geospatial database for a Decision Support System assisting to reduce energy losses and CO2 emissions. Today, aerial thermal mapping could be furthermore integrated by terrestrial 3D surveys realized with Mobile Mapping Systems through multisensor platforms comprising thermal camera/s, laser scanning, GPS, inertial systems, etc. In this way the product can be a true 3D thermal model with good geometric properties, enlarging the possibilities in respect to conventional qualitative 2D images with simple colour palettes. Finally, some applications in the energy sector could benefit from the availability of a true 3D City Model, where the buildings are carefully described through three-dimensional elements. The processing of airborne LiDAR datasets for automated and semi-automated extraction of 3D buildings can provide such new generation of 3D city models.


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