Showing posts with label oil and gas. Show all posts
Showing posts with label oil and gas. Show all posts

Monday, 5 October 2015

Top Three Professional Nigerian Leaders Make Oil & Gas Industry Recommendations

According to International statistics, 120 million occupational accidents occur annually at workplaces worldwide. Of these, 210,000 are fatal accidents.

Nigeria's oil and gas industry is the largest on the African continent with many triumphs and also set-backs due to major challenges:

  1. Regulatory framework uncertainties
  2. Corruption 
  3. Poor infrastructure
  4. Poor compliance to international operation policies.
  5. Inefficient basic first-aid training for workers in high risks and critical operations.
  6. Unavailability of the qualified facilities and personnel at the referral hospitals.
  7. Issues with health insurance.

Hot topics are to develop, promote and encourage safety knowledge and technical know-how. Educate on how to fully enforce standards and ethics in the practice of safety, and address the challenges of managing health in an offshore or remote site location in the Oil and Gas Industry.

Key Industry Professionals


Dr Nnamdi Ilodiubais the current President of the Institute of Safety Professional of Nigeria (ISPON). He specialises and recommends good preventive healthcare practices for health and safety of workers, geared specifically towards the Oil and Gas industry in Nigeria.

Dr Okon Akiba – is the Health & Services manager at OKLNG, and the National Chairman of the Society of Occupational and Environmental Health Physician of Nigeria (SOEPHON). He specialises and recommends on the Challenges of managing health in an offshore or remote site location in the Oil and Gas Industry.

Dr Olutomiwa Ogunbona - is our Flying Doctors Medical and Corporate Services Manager, a specialist in Medical Evacuation and Emergency Transport in Nigeria.

Specific recommendations for Oil and Gas industry in Nigeria, Africa



Accident Preventative Measures: By investigating every incident, we learn about causes and can take action towards mitigating and removing.  Making special provisions for emergency services on site such as fire, police, coast guard and emergency medical services (EMS) and preparation for higher risk incidents of civil unrest and violent crime should all be taken into consideration.

Medical Emergency Response (MER): Utilising and implementing telemedicine solutions such as the Internet and live video link for providing a variety of immediate treatment options for the offshore or remote workforce via allocated advanced first aid responders.

Preventing onsite Infectious Disease: Preparation of policy documents to include strategies that cover a safe working environment, adopt prophylaxis schemes to prevent disease and insuring staff are fully immunized against infectious disease where possible. Continue to emphasise and educate on total hygiene, particularly hand washing and a healthier lifestyle. Keep up with CDC (Centre for Disease Prevention and Control) adopting industry recommendations and staff training programmes that help recognize symptoms of possible infectious disease.

At Flying Doctors, we believe that our mission is to deal with geography hurdles when assisting and responding to remote location emergency situations. We try to overcome geographical difficulties and their negative effects on patient care.


Those services include medical evacuation, health cover, remote sites services, medical waste disposal, healthcare consultancy and occupational health.

We operate medical and medico-logistical services for corporate bodies running high-risk operations like oil and gas, mining, construction, telecoms and manufacturing companies.

Since operations in these sectors often involve expatriates and indigenous employees, we have developed bespoke specific plans with corporate clients unique to individual needs to accommodate the speedy handling of emergencies arising from work-associated incidents.

If you would like to discuss your business needs with our expert panel, then please contact us with a brief outline of how we can assist: management@flyingdoctorsnigeria.com

Medical Emergency Response Plans, Services, Transport and Assistance in Nigeria’s Oil and Gas Industry

Air ambulance transport in the oil and gas industry in Nigeria is a necessity.  Emergency transport in Nigeria depends mainly on road and air ambulance because of poor road infrastructure, long distances between tertiary centres and the low doctor to patient ratio.

Public emergency services in many areas of Africa rarely have access to the same resources as the western world, therefore companies must make special provisions for emergency transport and location of specialist centres such as cardiac, burns and neurosurgery when drafting medical emergency response plans.

Since operations in these sectors often involve expatriates and indigenous employees, working at great heights, driving long distances on poorly maintained roads, working offshore or working at remote stations, operating in extreme environments, exposure to endemic infectious diseases such as malaria, natural and operational disasters and security risks. Emergency response plans must be in place and effective on every site, enabling organizations and communities to deal with emergencies effectively and appropriately.

Emergency response oil and gas nigeria Flying Doctors Nigeria are specialists in recommending contingency plans and measures for business.

Some of our specific recommendations for corporate oil and gas medical emergency response plans

1. Ensuring emergency communication lines for assistance
2. Provision  of emergency transport (By land and air)
3. Regular consistent first-aid and life support training for in-house staff.
4. Preparation of organized plans and simulations scenarios
5. Journey plans should be meticulously implemented to help reduce risk of road traffic accidents
6. Major incident plans should be written up and revised

Our Mission
"To get the right patient to the right facility within the right time frame."

We operate medical and medico-logistical services for corporate bodies running high-risk operations like oil and gas, mining, construction, telecoms and manufacturing companies.

In a medical emergency in the Oil & Gas industry you need specialist help, and fast!

We operate a 24-hour centralised emergency contact centre where ambulances and emergency personnel are dispatched 24 hrs a day, 365 days a year, assuring your team has vital emergency planning around the clock.

Flying Doctors Nigeria have devised specialized plans for corporate bodies to accommodate the speedy handling of emergencies arising from any work-associated incidents in Nigeria.

Dr Olutomiwa Ogunbona is the medical and corporate services manager at Flying Doctors Nigeria.

We suggest if you are looking to take advice on improving employees overall safety and medical emergency requirements, Dr Olutomiwa Ogunbona would be more than happy to advice on the best routes to take for your business specific risk assessment and medical emergency planning. Please do get in touch today management@flyingdoctorsnigeria.com


Important considerations for advanced first aiders in a Nigerian Oil & Gas locations

Work differs greatly in Africa from other industrial regions such as the US or UK. Like the US & UK, oil and gas employers are regularly monitored and audited by safety bodies, to ensure the highest safety standards and practices are being met. However, In Africa employees face unique risks which every health & safety team should take into great consideration.

In Nigeria, the oil and gas industry faces major challenges, which play a huge part in major incident emergency response situations,

1. Poor healthcare infrastructure including emergency response
2. Corruption
3. The climate
4. Increased burden of infectious disease

Those four difficulties have direct and indirect effects on the quality of healthcare and emergency medicine response, especially in the remote, off shore areas.

Regardless of the size of the company and the work performed, adequate first-aid supplies and advanced trained first aiders should always be available 24/7. It is critical for our medical personnel to be able to act quickly and effectively in diagnosing a problem, supporting and stabilising the casualty and moving on to ascertain further assistance.

Oil and Gas medical emergency
Taking a proactive, preventive and effective approach to cultivate a safer working environment ultimately saves lives. 

Training staff as advanced first aiders is imperative, giving your staff the ability to manage incidents, and ensuring safety of bystander’s and the casualty. At the same time allowing our medical crew to accommodate the speedy handling of an emergency arising from work associated incidents, on-route to the proper medical facility.

In a medical emergency every second counts.


The table below shows the main differences between the basic and advanced first aiders skills.



Skills First-aider (basic skills) Advanced first-aider
AED Working knowledge Competent usage
Choking Competent Competent
Burns Management Basic skills Advanced management of burns with knowledge of patients transfer.
Airway Basic skills using mouth to mouth, and pocket mask. Advanced skills with basic knowledge of airway openings.
Breathing Working knowledge Basic assessment skills
Circulation Very limited Having an experience of basic assessment.
Managing Haemorrhage Only direct and indirect pressure. Competence with the most convenient method of haemorrhage control.


Oil and Gas corporates are addressing the real need for adopting specific additional strategies when working in Nigeria, Such as the need for additional training, kits, medical equipment and supplies.
Our range of services for corporate organisations includes;

1. Repatriation to our partner hospitals in USA, UK, South Africa, Turkey, Egypt, India etc.
2. Emergency transfer by road or air to best source of local help.
3. Medical escorts on commercial airline flights.
4. Malaria prophylaxis advice
5. Vaccination
6. Procurement of medical equipment and supplies for remote site support.
7. Health and safety advice/ training.
8. First aid training.
9. Risk assessment.

For more information on how the Flying Doctors can assist you with advanced medical planning, medical evacuation and oil and gas first aid training in Nigeria and Africa wide.

Please contact sales@flyingdoctorsnigeria.com

Increased Burden of Infectious Disease in Offshore Oil & Gas Locations

The search for oil and gas has taken us to increasingly distant locations and further into the offshore environment. Year on year, some of the world’s most profitable businesses are placing more emphasis on adopting crisis emergency services in Nigeria, signalling they are recognising the problems of insufficient capacity and the drastic need to change.

Because of poor road infrastructure, long distances between tertiary centres and the low doctor to patient ratio, air ambulance transport for the oil and gas sector is vital part of any corporate infectious disease preventative plan.

The prevalence of infectious diseases is higher in Africa than other countries and can be directly and indirectly spread from person to another. Therefore specific strategies and precautions must be developed by companies to avoid workers being exposed.

Below is a list of some infectious diseases found in Nigeria and other parts of Africa:

Disease Vaccination/Prevention/Mitigation Transmission
Elephantitis The best way to prevent lymphatic filariasis is to avoid mosquito bites. The mosquitoes that carry the microscopic worms usually bite between the hours of dusk and dawn.If you live in an area with lymphatic filariasis
*Sleep in an air-conditioned room or sleep under a mosquito net especially,between dusk and dawn
*Wear long sleeves and trousers and use mosquito repellent on exposed,skin
Elephanitis also known as Lymphatic filariasis, considered globally as a neglected tropical disease, is a parasitic disease caused by microscopic, thread-like worms. Lymphatic filariasis is spread from person to person by mosquitoes.
Lassa Fever Primary transmission of the Lassa virus from its host to humans can be prevented by avoiding contact with Mastomys rodents, especially in the geographic regions where outbreaks occur. Putting food away in rodent-proof containers and keeping the home clean help to discourage rodents from entering homes. The Lassa virus is transmitted to humans via contact with food or household items contaminated with rodent urine or faeces.
Malaria Antimalarial drugs are recommended unless they are contraindicated.Antimalarial drugs are recommended to those who intend to an extended Stay in Nigeria, and those who study abroad.Chemoprophylaxis is recommended to be taken for the entire duration of long-term travel. It is transmitted through bites of an infected mosquito (female Anopheles).
Typhoid It is also recommended to most travellers, especially those who are staying with infected friends or relatives, visiting smaller cities, villages, or rural areas where risk factors increase through the direct contact with food or water; or prone to adventurous eating. It is also transmitted through the Fecal-oral route.

Specific recommendations have been put together by our remote site, oil and gas emergency response expert team to circumvent infectious diseases in a corporate working environment.

1. Prepare a policy document and make sure to include strategies that ensure safe working environment, prophylaxis and vaccination.
2. Education on total hygiene, particularly hand washing, healthy lifestyle. For example, wearing long sleeves clothing in the evening.
3. Designing appropriate signage in toilets, restrooms, kitchens and canteens.
4. Training programmes that help recognize symptoms of possible infectious disease.
5. Provision of facilities and resources with equipment, and preparation of an adequately equipped clinic at workplace which should be provided with PPE, first aid boxes and alcohol hand gel.
6. Specific infectious disease training for healthcare staff. Many infectious diseases such as Lassa
Fever are under-diagnosed. High index of suspicion is required to ensure that diagnosed is made early and appropriate management undertaken.

We are starting to see employers adopting specific strategies, taking precautions, recognising and addressing the need for additional assistance and onsite medical equipment for unique circumstantial changing first aid needs.  For more information on how the Flying Doctors can assist you with infectious disease planning, medical evacuation and oil and gas first aid training in Nigeria and Africa wide. 



Monday, 13 July 2015

Aeromedical Evacuation: A Personal Outlook


Aeromedical Evacation often shortened to Medevac is the timely, efficient movement and en route care provided by highly trained medical personnel to ill, wounded patients, neonates and infants from an area with inadequate medical facility to one with better equipped facility.[1]

The United States Army is arguably the first set of people to use this lifesaving technique in Burma towards the end of the World War II using the Sikorsky R-4B helicopter. The British also used it in Sinai Peninsula when a Royal Aircraft Factory BE2 flew out a soldier in the Imperial Camel Corp who had been shot in the ankle.[2]

In modern times, aeromedical evacuation has gone way beyond just evacuation in times of war and conflict to evacuation from construction sites, remote sites, oil rigs, drills, mining sites to even neonatal and infant transport for better medical specialist care.[3]

In Nigeria, aeromedical evacuation is very new. Initially it was exclusive to  expatriates in the Oil and Gas sector to repatriate them to their home countries for better medical care and attention. However, today such services are available and accessible commercially. I was privileged to be on one in my home country.


The patient to be evacuated, Mr I.I, a 45 year old Nigerian male with a background history of hypertension and type II diabetes mellitus not regular on medications who had presented with a recent history of right sided hemispheric stroke possibly ischaemic and was stabilized in a hospital in his country home. His vitals as at the time of contacting the aeromedical evacuation team was a blood pressure of 150/90 mmHg, temperature of 37.1 C, Pulse of 90/minute regular, synchronous with no radio-radial or radio-femoral delays, respiratory rate of 18cycles/min and an SpO2 of 96-100%. The patient was conscious, alert oriented in time. place and person with a Glasgow Coma Score of 15/15. He was to be airlifted from Port Harcourt to Lagos for specialist care.

The first thing that caught my attention was the high level of commitment of the flight physicians on call. It was an early morning evacuation but the response time was 23 minutes. The team comprised an anaesthetist[4], a senior flight physician[5], myself, the paramedics, the pilot, co-pilot and the cabin crew. The anaesthetist was given a clear role as the lead physician.

He read out the medical history of the patient to be evacuated, possible aetiology, various modes by which such patients could present, the complications, risks of flying such patients at various altitudes, safety precautions to be taken and look-out signs on such patients. He stated that all such details have been explained to the relatives of the patients and they have signed a consent form with the legal team before we proceeded with this evacuation.
Simultaneously, I could see the flight engineers on the aircraft. I later found out that they were checking all the medical equipments were fully functional, the batteries fully charged and that the Air Transport Stretchers were comfortable for a non-ambulant patien



Just as we boarded, the lead physician took a few minutes off to repeat a summary of the patient to the pilot, co-pilot and cabin crew. Then we were cleared for take-off.  Aboard, we took turns to refresh one another on various topics in Advanced Cardiac Life Support. It was a 45 minutes flight.

On ground at the Port Harcourt Airport, the patients was at the tarmac with a land ambulance, had an anaesthetist, 2 physicians and a few paramedics. The lead physician again lead us to the patient, introduced us one after the other to the team on ground, I was asked to do a Pre-flight assessment of the patient. This included documenting the vital signs of the patient, performing and documenting general physical examination as well as systemic examination. Then the lead physician who was discussing with the on ground physicians and relatives came over to do a run through of yet another general physical examination but picked out only the affected systems for examinations. He then explained to the patient the risk associated with flying him, possible complications that could arise and the steps that have been taken but to forestall and control. 



He was then loaded into the air ambulance using a vacuum stretcher. He had his face mask connected, Intravenous fluid was set at 15drops/minute. One of paramedics were assigned to monitor the vitals of the patient every 10 minutes.


On ground at the Lagos airport, the receiving hospital had sent a land ambulance with paramedics to transport the patient over. The lead physician again briefed them on the clinical state of the patient after doing his Post-flight assessment.
We were then ushered to the airport lounge for a debrief and brunch.


Dr Olutomiwa Ogunbona is a staff of Flying Doctors Nigeria. www.flyingdoctorsnigeria.com/
The author takes full responsibility for the article. All correspondence should be directed at the author via email at tommyogunbona@gmail.com while drtommyflyingdoctors@gmail.com should be put in copy.






[1] en.wikipedia.org/wiki/Medical_evacuation
[2] en.wikipedia.org/wiki/Medical_evacuation
[3] Emergency Pre-hospital Care. Dr Ola Orekunrin
[4] Dr Wale Raji
[5] Dr Ola Orekunrin, Founder Flying Doctors Nigeria

Wednesday, 27 November 2013

Medical Practice at a Flying Doctor's Remote Site Clinic

Leading the team of medical personnel under the auspices of Flying Doctors Nigeria, our primary medical service is to respond quickly to any medical emergencies that may ensue from oil and gas exploration process. We also run a clinic where ailments like malaria, Respiratory Tract Infections e. t. c and some Chronic Medical conditions are attended to, to forestall complications. 
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Exploration and Production as parts of upstream sector of oil and gas are the major activities embarked on in this field.
The oil and gas exploration site where we attend to patients is a marginal field still at the early production facility (EPF) phase located about ten minutes from the residential camp.
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As a resident doctor in conjunction with other medical personnel, we do embark on a routine patrol with our well equipped Ambulance from the residential camp where the Clinic is located to the exploration site. 
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Indigenous contractors and also Expatriates from Europe and Asia are the Clients who have been benefiting from our medical coverage. Weekly up to date reports of medical emergencies vis-à-vis clinic attendance are relayed to our head office for expertise feedback.


Since inception of my practice on site, there has not been any overwhelming medical emergency necessitating the need for medical evacuation. However there have been cases of referral to a nearby hospital from the site clinic for further management. 
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The major challenges encountered on the field ranges from intermittent unrest on the part of host community to a complete disconnect from the larger society.
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Remote site medical coverage in oil and gas is a worthwhile experience that will forever linger in my memory.



Dr Wale Amerijoye


Flying Doctors Nigeria.

Tuesday, 3 September 2013

At the Speed of Life: The Importance of Rapid Response




                   

 Chances are very good that if you have never had to use the services of an air ambulance or medical transport you might never have heard of it. In a nutshell, an air ambulance is an aircraft that has had its interior specially configured so it can operate as a mobile hospital complete with intensive care unit. 

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Also an air ambulance can be seen as a specially outfitted aircraft that transports injured or sick people in a medical emergency or over distances or terrain impractical for a conventional ground ambulance. 

Like ground ambulances, air ambulances are equipped with medical equipment vital to monitoring and treating injured or ill patients. Common equipment for air ambulances includes medications, ventilators, ECGs and monitoring units, CPR equipment, and stretchers. A medically staffed and equipped air ambulance provides medical care in flight which is referred to as medical evacuation (MEDEVAC)
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Air ambulance services have established their usefulness in other countries, but their role in Nigeria is developing slowly.
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With the awareness of the importance of air ambulance services, the services will be provided to different types of patients, with different ailments and accidents at different locations. This will bring about the reduction of the mortality rates of the patients in question.
If you ever found yourself in either a remote location or in an area of Nigeria that doesn’t offer the specialized medical emergency care you or your family need, this is when the expertise of an air ambulance comes to the forefront of your mind. 
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Timely response via Air ambulance is very important in Nigeria because we have cities that simply don’t have good roads that are good enough to accommodate a traditional ambulance all the time.
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Also, our bigger cities seem to be overcrowded which brings about traffic. Traffic can cause the death of a patient in a critical condition. Immediately a patient overwhelms the level of medical care at any healthcare centre, such a patient needs timely response to get to the other healthcare centre that suits his condition. The transfer needs to be done at the speed of life. Every second that leads to a minute matters in this process.


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The importance of timely response in Nigeria via Air Ambulance cannot be over emphasized. It cuts the issue of traffic and any form of road transport delay.
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Even though the services of air ambulances are offered 24 hours a day, seven days a week, 365 days a year, it is better to be prepared. Being prepared could be as simple as contacting a potential service provider like “Flying Doctors Nigeria”, speaking with the medical specialist and describing not only your current health issues – if any – but also the location to which you are traveling. Doing this will not only save you precious time in the event of an emergency but it will help you know how long it could take for a provider to reach you in the event of an emergency evacuation. While it is unlikely that you will need a medical evacuation, it’s better to be prepared.

Tuesday, 19 March 2013

Highlights of the Nigerian Oil and Gas Conference 2013



 1. Nigeria's Oil And Gas Strategy In The Next Five Years- A New Dawn To Boost Investment And Production?

  • What are the next steps to Nigeria's oil and gas production?
  • How are the global economic crisis and uncertain oil prices impacting Nigeria?
  • How can Nigeria continue to attract investment amidst competition from other sub-Saharan African countries?
 2: Leading Lights Session
  • What is required to make Nigeria's oil and gas industry globally competitive?
  • How can countries place themselves in equal footing with other competitive resource holders?
  • Best practices in defining policy options





3: Setting Nigeria's Oil and Gas  Industry In A Domestic And Global Context- What Are The Challenges And Opportunities Ahead?
  • How are the global economic crisis and uncertain oil prices impacting Nigeria?
  • How can Nigeria continue to attract investment amidst competition from other Sub-Saharan African countries?
  • Creating an enabling environment for investment to boost oil and gas production
4: Revamping Nigeria's Oil and Gas Industry Through Increased Investment- From Upstream To Downstream
  • Boosting deep water production- what is needed to enhance investment in sector?
  • How can more players enter into deep water operations?
  • What is the best business model for the refining sector and how can private equity be obtained?





5: Panel Discussion; Gas, Power and Renewable- What Has Been Achieved And Where Are We Heading?
  • What has been achieved so far in terms of investment in the gas and power industries?
  • What is the financing strategy for domestic gas infrastructure
  • What progress has been made in electricity sector reform?
6: Leader's Panel; The Nigerian Oil And Gas Industry Moving Forward- What Are The Next Steps?
  • How will joint ventures evolve in Nigeria going forward?
  • Where will the drive for new exploration projects be?
  • Development plans in deep water projects
  • How will the PIB impact future E&P activities in  Nigeria
7: Focus On Independents; How Are Indigenous Companies Transforming The Nigerian Oil And Gas Industry?
  • Creating an enabling environment to encourage Nigerian Companies to enter and expand operations 
  • What are the fiscal and regulatory incentives that indigenous companies require?
  • How can indigenous companies access the technical know-how and financing to further their operations?
  • The divestment process from IOCs to indigenous companies: success and pitfalls?
8: Oil And Gas Stakeholders Forum; Community participation- What Has Been Achieved In Creating Win-Win Solutions For All Stakeholders In The Niger-Delta Region?
  • How are HSE initiatives impacting security in the Niger Delta Region
9: Focus on Petroleum Industry Bill- Is this A New Dawn For Nigeria?
CHAIR: Adeoye Adefulu, Partner, Odunjunrin & Adefulu
  • How will the PIB be implemented?
  • To what extent will the new fiscal terms encourage investments in deep water operations and increase production?
  • What is the impact of the PIB on indigenous Oil and Gas companies and what incentives exist?
  • What is the impact of the PIB on natural gas development projects?
10: Financing For Energy projects Along The Value Chain. What Are The Structures In Place?
  • What domestic and international markets are readily available for financial institutions in Nigeria to fund oil and gas projects?
  • What risks do bankers face in funding E&P project and what kinds of structures are used?
  • What is the appropriate framework for financing gas to power project?
  • What is the most effective ways for indigenous oil service companies to access funding in a typical Nigerian financial market? case study: The shell kobo fund.
  • How can downstream sector in Nigeria be financed sustain-ably?
11: Nigeria Content implementation So Far; How Do Different Stakeholders Interpret The Nigerian Content Act?
  • What has been achieved in Nigeria content implementation so far and what else needs to be done?
  • How have oil and gas divestment of assets boosted Nigerian content?
  • Lessons learnt from around the globe, how can Nigeria continue to succeed in Nigeria content implementation?
12: What Are The Legal And Operational Challenges And Opportunities Of Nigerian Content?
  • How can indigenous companies access adequate funding?
  • Implementing training to fill the skills gap
  • What support do suppliers need to meet operation requirements?
  • Improving the effectiveness of local contractors through technology transfer
  • Lowering costs through procurement and contracting strategies





13: What Are The Challenges And Opportunities Of Complying With Nigeria Content Requirement?
  • How do Nigeria content regulations provide a source of business opportunities?
  • How can indigenous companies access the technical know-how and training to further their operations?
  • What needs to be done to reach Nigeria content targets?
TECHNICAL SESSION
14: Human Capacity Development And HSE
  • Developing human capacity in the Nigerian Oil and Gas Industry
  • Remote health care in the Nigerian Oil and Gas industry (Dr Ola Orekunrin, Medical Director of Flying Doctors Nigeria)
  • Nigeria: A systematic approach to managing fire safety on offshore installations
15: Gas To Power And Alternative Sources
  • Flare gas to power initiative in the Niger- Delta
  • Electricity provision to the host community MPNS sustain-ably and reliability 
  • The development of industrial estates powered by gas in non-producing oil and gas regions
  • Review on Methane Hydrate; A cost efficient potential source of future Energy
  • Gas process for power generation
  • The Nigeria midstream challenge caterpillar dynamic gas blending reducing and fuel cost 
16: Deep Water Engineering And Maintenance

  • Addressing challenge for unconventional gas condition using advanced integrated technology
  • Design for reliability in subsea production control systems
  • Oil and Gas asset life extensive
  • Asset integrity corrosion survey system
  • Flow assurance news innovating ways to manage your MEG reclamation and regeneration with pure mega





17: Flare Reduction And Gas Gathering Technology
  • Critical overview of gas flaring reduction in Nigeria Oil sector and its challenges
  • Safe and increased protection without extra flare load: has integrity pressure protection system
  • FPSO system with integrated GTL solution for associated gas
  • Associated gas haring reduction
  • A cost efferent solution for flare gas recovery
  • Innovating rotary slide drilling system: an indigenous rotary steer able system alternative.





Tuesday, 19 February 2013

The Importance of a Surgical Safety Checklist...

THE IMPORTANCE OF A SURGICAL SAFETY CHEKLIST TO REDUCE MORBIDITY AND MORTALITY IN NIGERIAN HOSPITALS


Surgical care is an integral part of health care throughout the world, with an estimated 234 million operations performed annually. This yearly volume now exceeds that of childbirth. Surgery is performed in every community: wealthy and poor, rural and urban, and in all regions. The World Bank reported that in 2002, an estimated 164 million disability-adjusted life-years, representing 11% of the entire disease burden, were attributable to surgically treatable conditions. Although surgical care can prevent loss of life or limb, it is also associated with a considerable risk of complications and death. The risk of complications is poorly characterized in many parts of the world, but studies in industrialized countries have shown a perioperative rate of death from inpatient surgery of 0.4 to 0.8% and a rate of major complications of 3 to 17%. These rates are likely to be much higher in developing countries. Thus, surgical care and its attendant complications represent a substantial burden of disease worthy of attention from the public health community worldwide.


Data suggest that at least half of all surgical complications are avoidable. Previous efforts to implement practices designed to reduce surgical-site infections or anesthesia-related mishaps have been shown to reduce complications significantly. A growing body of evidence also links teamwork in surgery to improved outcomes, with high-functioning teams achieving significantly reduced rates of adverse events.


In 2008, the World Health Organization (WHO) published guidelines identifying multiple recommended practices to ensure the safety of surgical patients worldwide. On the basis of these guidelines, a team of medical experts in America designed a 19-item checklist intended to be globally applicable and to reduce the rate of major surgical complications. They hypothesized that implementation of this checklist and the associated culture changes it signified would reduce the rates of death and major complications after surgery in diverse settings.


Methods


Study Design


They conducted a prospective study of preintervention and postintervention periods at the eight hospitals participating as pilot sites in the Safe Surgery Saves Lives program. Between October 2007 and September 2008, eight hospitals in eight cities (Toronto, Canada; New Delhi, India; Amman, Jordan; Auckland, New Zealand; Manila, Philippines; Ifakara, Tanzania; London, England; and Seattle, WA) representing a variety of economic circumstances and diverse populations of patients participated in the World Health Organization's Safe Surgery Saves Lives program. These institutions were selected on the basis of their geographic distribution within WHO regions, with the goal of representing a diverse set of socioeconomic environments in which surgery is performed. Each hospital identified between one and four operating rooms to serve as study rooms. Patients who were 16 years of age or older and were undergoing non-cardiac surgery in those rooms were consecutively enrolled in the study.


Intervention


The intervention involved a two-step checklist-implementation program. After collecting baseline data, each local investigator was given information about areas of identified deficiencies and was then asked to implement the 19-item WHO safe-surgery checklist to improve practices within the institution. The checklist consists of an oral confirmation by surgical teams of the completion of the basic steps for ensuring safe delivery of anesthesia, prophylaxis against infection, effective teamwork, and other essential practices in surgery. It is used at three critical junctures in care: before anesthesia is administered, immediately before incision, and before the patient is taken out of the operating room.


Data Collection


Perioperative data included the demographic characteristics of patients, procedural data, type of anesthetic used, and safety data. Data collectors followed patients prospectively until discharge or for 30 days, whichever came first, for death and complications. Outcomes were identified through chart monitoring and communication with clinical staff.


They enrolled 3733 patients during the baseline period and 3955 patients after implementation of the checklist.


Outcomes


The primary end point was the occurrence of any major complication, including death, during the period of postoperative hospitalization, up to 30 days. Complications were defined as they are in the American College of Surgeons' National Surgical Quality Improvement Program: acute renal failure, bleeding requiring the transfusion of 4 or more units of red cells within the first 72 hours after surgery, cardiac arrest requiring cardiopulmonary resuscitation, coma of 24 hours' duration or more, deep-vein thrombosis, myocardial infarction, unplanned intubation, ventilator use for 48 hours or more, pneumonia, pulmonary embolism, stroke, major disruption of wound, infection of surgical site, sepsis, septic shock, the systemic inflammatory response syndrome, unplanned return to the operating room, vascular graft failure, and death. Urinary tract infection was not considered a major complication. A group of physician reviewers determined, by consensus, whether postoperative events reported as “other complications” qualified as major complications, using the Clavien classification for guidance.


They assessed adherence to a subgroup of six safety measures as an indicator of process adherence. The six measures were the objective evaluation and documentation of the status of the patient's airway before administration of the anesthetic; the use of pulse oximetry at the time of initiation of anesthesia; the presence of at least two peripheral intravenous catheters or a central venous catheter before incision in cases involving an estimated blood loss of 500 ml or more; the administration of prophylactic antibiotics within 60 minutes before incision except in the case of preexisting infection, a procedure not involving incision, or a contaminated operative field; oral confirmation, immediately before incision, of the identity of the patient, the operative site, and the procedure to be performed; and completion of a sponge count at the end of the procedure, if an incision was made. They recorded whether all six of these safety measures were taken for each patient.


Discussion


Introduction of the WHO Surgical Safety Checklist into operating rooms in eight diverse hospitals was associated with marked improvements in surgical outcomes. Postoperative complication rates fell by 36% on average, and death rates fell by a similar amount. All sites had a reduction in the rate of major postoperative complications, with a significant reduction at three sites, one in a high-income location and two in lower-income locations. The reduction in complications was maintained when the analysis was adjusted for case-mix variables. In addition, although the effect of the intervention was stronger at some sites than at others, no single site was responsible for the overall effect, nor was the effect confined to high-income or low-income sites exclusively. The reduction in the rates of death and complications suggests that the checklist program can improve the safety of surgical patients in diverse clinical and economic environments.


Whereas the evidence of improvement in surgical outcomes is substantial and robust, the exact mechanism of improvement is less clear and most likely multifactorial. Use of the checklist involved both changes in systems and changes in the behavior of individual surgical teams. To implement the checklist, all sites had to introduce a formal pause in care during surgery for preoperative team introductions and briefings and postoperative debriefings, team practices that have previously been shown to be associated with improved safety processes and attitude and with a rate of complications and death reduced by as much as 80%. The philosophy of ensuring the correct identity of the patient and site through preoperative site marking, oral confirmation in the operating room, and other measures proved to be new to most of the study hospitals.


In addition, institution of the checklist required changes in systems at three institutions, in order to change the location of administration of antibiotics. Checklist implementation encouraged the administration of antibiotics in the operating room rather than in the preoperative wards, where delays are frequent. The checklist provided additional oral confirmation of appropriate antibiotic use, increasing the adherence rate from 56 to 83%; this intervention alone has been shown to reduce the rate of surgical-site infection by 33 to 88%. Other potentially lifesaving measures were also more likely to be instituted, including an objective airway evaluation and use of pulse oximetry, though the change in these measures was less dramatic. Although the omission of individual steps was still frequent, overall adherence to the subgroup of six safety indicators increased by two thirds. The sum of these individual systemic and behavioral changes could account for the improvements observed.


Another mechanism, however, could be the Hawthorne effect, an improvement in performance due to subjects' knowledge of being observed. The contribution of the Hawthorne effect is difficult to disentangle in this study. The checklist is orally performed by peers and is intentionally designed to create a collective awareness among surgical teams about whether safety processes are being completed. However, their analysis does show that the presence of study personnel in the operating room was not responsible for the change in the rate of complications.


This study has several limitations. The design, involving a comparison of preintervention data with postintervention data and the consecutive recruitment of the two groups of patients from the same operating rooms at the same hospitals, was chosen because it was not possible to randomly assign the use of the checklist to specific operating rooms without significant cross-contamination. One danger of this design is confounding by secular trends. They therefore confined the duration of the study to less than 1 year, since a change in outcomes of the observed magnitude is unlikely to occur in such a short period as a result of secular trends alone. In addition, an evaluation of the American College of Surgeons' National Surgical Quality Improvement Program cohort in the United States during 2007 did not reveal a substantial change in the rate of death and complications. They also found no change in their study groups with regard to the rates of urgent cases, outpatient surgery, or use of general anesthetic, and they found that changes in the case mix had no effect on the significance of the outcomes. Other temporal effects, such as seasonal variation and the timing of surgical training periods, were mitigated, since the study sites are geographically mixed and have different cycles of surgical training. Therefore, it is unlikely that a temporal trend was responsible for the difference they observed between the two groups in this study.


Another limitation of the study is that data collection was restricted to inpatient complications. The effect of the intervention on outpatient complications is not known. This limitation is particularly relevant to patients undergoing outpatient procedures, for whom the collection of outcome data ceased on their discharge from the hospital on the day of the procedure, resulting in an underestimation of the rates of complications. In addition, data collectors were trained in the identification of complications and collection of complications data at the beginning of the study. There may have been a learning curve in the process of collecting the data. However, if this were the case, it is likely that increasing numbers of complications would be identified as the study progressed, which would bias the results in the direction of an underestimation of the effect.


One additional concern is how feasible the checklist intervention might be for other hospitals. Implementation proved neither costly nor lengthy. All sites were able to introduce the checklist over a period of 1 week to 1 month. Only two of the safety measures in the checklist entail the commitment of significant resources: use of pulse oximetry and use of prophylactic antibiotics. Both were available at all the sites, including the low-income sites, before the intervention, although their use was inconsistent.


Surgical complications are a considerable cause of death and disability around the world. They are devastating to patients, costly to health care systems, and often preventable, though their prevention typically requires a change in systems and individual behavior. In this study, a checklist-based program was associated with a significant decline in the rate of complications and death from surgery in a diverse group of institutions around the world. Applied on a global basis, and especially in developing countries like Nigeria, this checklist program has the potential to prevent large numbers of deaths and disabling complications, although further study is needed to determine the precise mechanism and durability of the effect in specific settings.


Adapted from The New England Journal of Medicine.