management (6)

Dear Colleagues, 

Today the National Mission for Green India (GIM) is identified as one of the eight Missions outlined under the National Action Plan on Climate Change (NAPCC). It's main focus is to protect, restore and enhance India’s diminishing forest cover and made it favourable to cope with the present climatic conditions. It envisages a holistic view of greening and focuses on multiple ecosystem services, especially, biodiversity, water, biomass, preserving mangroves, wetlands, critical habitats etc. along with the main issue of the Green economy i.e., the carbon sequestration as a co-benefit. 

The ICASCG-E conference is an attempt to offers a track of quality R&D updates from key experts and to provide an opportunity to understand some new techniques and horizons that will contribute to advancements in Renewable Energy, Green Technology & Environmental Science in the coming few years. Besides the presented papers in the colloquium, all the submitted papers will be undergone a peer-review process and accepted papers will be published in a Special issue of Ambient Science (both Electronic & Print format with proper DOI), a UGC listed journal, indexed in WoS (Thomson Reuters).

-Regards

3839122089?profile=original

Submit your Paper now: For Details just visit - Conference page.

Read more…

Centre for Science and Environment (CSE) is pleased to invite you to attend a five-day training programme on ‘Integrated Waste Management’, to be held from January 8-12, 2018.

Centre for Science and Environment (CSE) recognises that focus on waste management needs to shift to processing and resource recovery. The objective of the training is thus is to get a better understanding of main features of the management of Solid, Plastic, Bio-medical, E-waste and C&D waste, the technologies involved in their treatment, the key legislative frameworks and the stakeholders involved. Some of the main takeaways for participants from this training shall be: existing status of waste management in India, major provisions of the new Waste Management Rules 2016 and their status of implementation, role and responsibility of different stakeholders, inventorisation and Extended Producer Responsibility, decentralised waste management, use of IEC for behaviour change and site visits to learn about best practices.

We hope you can nominate yourself and/or your colleagues for this 5 day training programme.

For more information, kindly visit the advertisement below:

http://cseindia.org/content/training-programme-integrated-waste-management

Training Methodology

Lectures, case studies, class exercises, discussions and field visits.

 

Course fee: 

Rs. 35,000/- INR (Includes Tuition fee, External expert lectures and sessions, Boarding and lodging, Transport from New Delhi to AAETI and back, Training material). Scholarships available

 

Venue:

Anil Agarwal Environment Training Institute 
(a Centre for Science and Environment initiative), 
Nimli (near Alwar),
Tijara, Rajasthan
 
Last date for applicationDecember 27, 2017
For queries please contact:
Mobile - +919833216072
Phone - +91-11-2995 5124 / 6110 (Ext. 251);
Fax: +91-11-2995 5879

 

Read more…

3 Innovative Green Business Models

green_business.jpg
 
Green Business models support the development of Products and Services with Environmental benefits.Green business growth models can either rely on Technological overhaul of the existing systems or can develop Innovative Business models utilizing the existing systems itself. For example, a Refrigerator Manufacturing company can sell a Number of Cubic feet of space with a lowered temperature for a (certain period of time as long as the customer needs it),while the company owns the Unit.The incentive is to save the life cycle costs including Energy savings, Maintenance and Disposal.Such Innovative new solutions can radically change the Green growth story.
 
Key Challenges to the Green Models are -
1.Knowledge gap about the real benefits and the costs among Suppliers,Financial institutions and Customers.
2.Need for a change in the mindset of both the companies and the public institutions to be more open to create new solutions through public private partnerships.
3.Policy efforts have to be coordinated and regulated.
 
However, there are certain Green Business Models which are being adapted in a steady fashion.According to a paper - 'Green Business Models in the Nordic Region' some of the Business models are as follows 
 
1.Product and Service Based Model 
This is a revolutionary concept of 'Owner less Consumption'. The Refrigerator example stated above clearly exemplifies this concept.Green Product and Services model increases the Manufacturers market potential,increases the differentiated product services provided by them and increases customer loyalty too. However both manufacturers and customers are often concerned about the risk absorption methodology here as well as the challenges in determining the right costing of such services.
figure3-10.jpg
2.Energy Saving Companies (ESCO's)
In this model an Energy saving company is Financed by a third party institution such as a Bank.The company  accomplishes energy saving projects of its client in exchange of a Fee.An example of an ESCO project could be where an ESCO installs a new heating system, insulation and a temperature control system in an old school. The ESCO makes the investment and the energy savings are split between the school and 
ESCO. Drivers for such projects are country specific and depend on the country's market maturity,size etc.However cost minimization and rising energy prices remain the key concern for such projects.
 
3.Sharing Business Model
The key driver for such a model is improved Resource efficiency and intensive resource utilization.Some of the examples of Sharing models are Car Sharing,Holiday Cottage and Time sharing, Washing centers and so on.Also the cost savings related to sharing products allows the product provider to profit on the business model.However, key barriers to such a model is High frequency requirement of customers,tendency to own a product rather than to share it and availability of the shared good.
 
According to Jill Fehrenbacher, CEO,Founder Inhabitat, some of the Green Businesses that are booming even in these tough economic times are 
Bicycle Sharing Shops - A smart business model based on Product and Services.
ZIPCAR - Community based resource sharing where cars services are shared among its users.According to some estimates the car sharing services is expected to $3.3 Billion approximately by 2016.
Green Construction- Such projects are in high demand due to increase in consumer consciousness towards the Environment.
Eco Fashion - Recycle and Reuse is the new mantra for New age fashion industry.
 
Green growth is inclusive of economic growth and protection of natural resources and the environment. Existing technology and consumer behavior is expected to produce positive outcomes upto a certain point, and therefore innovation is the key to create new ideas.But Green business models are still relatively new to industry and policy makers. A bigger knowledge and better understanding of emerging practices is needed to create appropriate policies and to encourage the industry. 
Read more…

Food Waste to Energy - Indian Perspectives

 

Food Waste to Energy Conversion - Indian Perspectives

 

 

Setu Goyal 

 

 

 

 

 


 

Introduction

The problem of waste management runs across geographies and its gravest causal agent, i.e. urbanism, is a global phenomenon. However, its ramifications are relatively more pronounced in developing nations on account of improved standards of living and changing consumption patterns. The growing population and increasing consumer demand is leading to excessive consumption of available resources and generation of tremendous amount of different kind of wastes, which is emerging as a chronic problem in urban societies. Their efficient management is needed at the earliest to avoid numerous problems related to public and environmental health.

The waste management hierarchy suggests that reduce, reuse and recycling should always be given preference in a typical waste management system. However, these options cannot be applied uniformly for all kinds of wastes. For examples, organic waste is quite difficult to deal with using the conventional 3R strategy.  Of the different types of organic wastes available, food waste holds the highest potential in terms of economic exploitation as it contains high amount of carbon and can be efficiently converted into biogas and organic fertilizer.

Market Size

A consistent growth rate of 8 to 10 percent for India is symbolic of its increasing production and consumption trends.  The main reasons for such trends have been the increasing disposable incomes and the growing consumerism and urbanism. All this has significantly contributed to the growth and economic development of the country, apart from tremendous increase in waste generation across the country.

The amount of waste generated by any country is directly proportional to its population and the mean living standards of the people.  As per the last census of India, the Indian population was 1027 million with about 5161 urban cities and towns contributing up to 28% of the total population.  A constant rate of increase of about 30% per decade in the number of town/cities urbanized is something to be considered with utmost diligence, since it is the urban areas, which mostly contribute to the waste generation. The situation grows even starker from the observation that the per capita waste generation in India has been rising by about 1-1.3% annually over the past few decades and the population itself has been rising at an annual rate of 1.2-1.5%.

With organic or food waste being one of the main constituents of the total urban waste generated,  it not only makes it essential to seek means for its safe disposal but at the same time, reiterates the huge business potential that ensues the proper utilization of such a widely available potential energy/power resource.

Anaerobic Digestion Technology

Anaerobic digestion is a proven and commercially available technology to handle wastes having high carbon content. It is widely acknowledged as the best means to deal with organic waste in rural as well as urban areas. One of the major benefits of anaerobic digestion is its almost negative impact on the environment since it saves on emissions which would have been caused if the organic waste was dumped into landfills or an equivalent amount of power would be generated using conventional fossil fuel based resources. Another important feature is its scalability and ability to accept varied types of biomass. World over, the technology has been reaching newer and higher scales, with plants of capacity 300 tonnes per day and above already in operation in countries like Austria, Germany, Sweden and Italy.


Process Description

The feedstock to be utlized, e.g. organic waste from various sources, is first collected and then passed through a shredder to reduce the minimum particle size. The homogenated mass is then moved to a mixing tank, wherein it is mixed with the recirculated digestate to bring it in contact with some of the wore out/used microbial biomass to increase the rate of biochemical degradation in the subsequent steps and also to make the input feed more acclimatized to the system or process requirements. This homogenate along with the recirculated digestate from the mixing tank, which is responsible for maintaining the adequate solid content in the feed in terms of volume, is then transferred to a storage tank. The main purpose of placing another tank in between the mixing tank and main bio-digester is to maintain an input reservoir in order to account for a few days of unavailability in feedstock. In certain cases of large-scale power application of this technology, waste heat is utilized from the gas engine exhaust and fed to the storage tank to double it up as a pre-digester by facilitating the growth of thermophilic bacterias and elimination of any pathogens.

 

 

The feed is then directed into the anaerobic digester. The most commonly used biogas plants for power generation using biogas are the Continiuous Stirred Tank Reactors (CSTR). These reactors involve anaerobic digestion at mesophillic temperaturres and generally have a retention time of about 20-25 days. For smaller scales and other domestic and thermal applications of biogas, other reactors are also commercially available like the floating drum KVIC model, fixed dome type model by TERI, the Janata model or the TERI Enhanced Acidification and Methanation (TEAM) setup which is essentially Upflow Anaerobic Sludge Blanket Reactors (UASB).

The quality and quantum of biogass depends on a variety of factors like the technology used, type of waste, moisture content, volatile matter, ash content, C/N ratio etc. An important consideration while generating power using biogas is the desulphurization of the gas. Anaerobic process results in the formation of H2S which on combustion generates SO2. It is not only corrosive to the gas engine but also harmful to the environment. To tackle this situation, chemical or biological desulphurization is carried out. The chemical desulphurization involves the use of FeCl2 in which chloride is replaced by sulphur owing to the higher affinity of the latter with Iron. Biological desulphurization on the other hand, utilizes the sulphur oxidizing bacteria and converts hydrogen sulphide into elemental sulphur, in the presence of air.

An important component of a typical biogas facility is the gas holder which is used to maintain a buffer between the production and consumption rates of the biogas. The gas is drawn into the gas engine from the gas holder and the waste heat generated is utilized to improve the overall efficiency of the system by directing it through the pre digester and the main digester.

Since the water effluent from such a process is expected to possess high BOD and COD characters, the need of a dedicated effluent treatment plant is ineluctable.  This waste water is mainly obtained after the dewatering of the slurry obtained from the above process. The solid content in the slurry increases after going through the de-watering stage in multiple stage screw-presses and it can be sold as high quality compost in the market.

Present Scenario

Although the Municipal Solid Waste Management Directive (2000) mandates source segregation of waste which is easily biodegradable in nature, in reality it has not been able to find widespread implementation till now. The major reasons include lack of proper implementation and reporting mechanism, and lower degree of awareness among the people in general. In addition, urban waste in India is also mixed with a huge amount of rubble, construction and demolition waste and other such wastes, which render the food-waste unsuitable for subsequent conversion to energy.

Most of the organic waste generated in the country is either being dumped into the landfills or composted or sent to piggeries. It is a sheer waste of such biodegradable waste capable of generating energy to be sent into the landfills. There it is not only responsible for large scale green house gas emissions, but also becomes a health hazard and creates terrestrial pollution.

There are numerous places which are the sources of large amounts of food waste and hence a proper food-waste management strategy needs to be devised for them to make sure that either they are disposed off in a safe manner or utilized efficiently. These places include hotels, restaurants, malls, residential societies, college/school/office canteens, religious mass cooking places, airline caterers, food and meat processing industries and vegetable markets which generate organic waste of considerable quantum on a daily basis.

Conclusion

The anaerobic digestion technology is highly apt in dealing with the chronic problem of organic waste management in urban societies. Although the technology is commercially viable in the longer run, the high initial capital cost is a major hurdle towards its proliferation. The onus is on the governments to create awareness and promote such technologies in a sustainable manner. At the same time, entrepreneurs, non-governmental organizations and environmental agencies should also take inspiration from successful food waste-to-energy projects in other countries and try to set up such facilities in Indian cities and towns.

References

  1. http://www.censusindia.gov.in/Census_Data_2001/Census_Newsletters/Newsletter_Links/eci_2.htm
  2. http://www.scribd.com/doc/27348441/Urbanization-in-India
  3. http://www.indiaenvironmentportal.org.in/files/swm_in_india.pdf
  4. http://www.adb.org/Documents/Events/2005/Sanitation-Wastewater-Management/paper-kumar.pdf
  5. http://www.nls.ac.in/CEERA/ceerafeb04/html/documents/Muncipalsoildwaste.htm
  6. http://www.teda.gov.in/page/Bio-wastetoenergy.htm
  7. http://www.worldsecuritynetwork.com/showArticle3.cfm?article_id=13488
  8. http://www.uperc.org/olduperc/Explanatory%20Memorandum.pdf
  9. http://www.mnre.gov.in/annualreport/2009-10EN/Chapter%205/chapter%205_1.htm

 

About the Author

Setu Goyal is pursuing Masters Program in Renewable Energy Engineering and Management at the TERI University (New Delhi), and has an entrepreneurial zeal to improve waste management and renewable energy scenarios in developing countries. He can be reached at setu.goyal@gmail.com

 

Read more…
Guidelines for Storm Water Management

Dear Friends,

Every spell of rain brings localized water logging in towns, ofter described in local news papers as flood. We have found that the major cause is engineered structures like roads, drains and compound walls that block the free flow of storm water. Natural drainage paths are blocked, or restricted. This is often neglected by local authorities since there is no guidelines for storm water management. I feel that it is time for us to have proper storm water management guidelines, for quantity as well as quality.
Read more…
You may be interested in a new initiative by the North Australian Indigenous Land and Sea Management Alliance that is developing new tools to support Indigenous management of land and sea country – including formally designated Indigenous Protected Areas.I-Tracker uses the renowned and free Cyber Tracker software (www.cybertracker..org) on rugged handheld PDAs. It provides for electronic user friendly, customisable data collection in the field and data download and management and GIS analysis capacity in the office. It is being taken up enthusiastically by the growing workforce of Indigenous Rangers across north Australia.Our I-Tracker website is at http://www.nailsma.org.au/projects/i-tracker.html and a video on the Djelk Rangers using I-Tracker can be seen at http://www.nailsma.org.au/projects/nailsma/itracker_whos_involved.html.A report on the recent review of I-Tracker can be downloaded from http://www.nailsma.org.au/publications/itracker_report.htmlWe welcome hearing from anyone with similar experience and particularly Indigenous groups who have similar interests in monitoring tools and are interested in sharing learnings.If you would like to know more about NAILSMA and its other programs please start with a visit to our website - www.nailsma.org.au.RegardsDr Rod KennettSaltwater Country ManagementNorth Australian Indigenous Land and Sea Management AllianceTel:+61 8 (08) 8946 6271Fax:+61 8 (08) 8946 6388Email:Rod.Kennett@cdu.edu.auAddress:NAILSMAPurple 12.3.27Charles Darwin UniversityDarwin NT 0909
Read more…