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Wednesday, January 22, 2014

Energy Management for Healthcare Facilities


Energy and demand costs have a direct impact on a company’s bottom line. In fact, the cost of energy is one of the most commonly mismanaged expenses, regardless of a company’s size or the industry represented. In healthcare facilities energy management can be more difficult than any other industry, because you not only have to manage expenses, but you’re also dealing with managing human lives. Additionally, managing so many different functions within a single operation requires extra work to manage and measure energy improvements. Managing energy expenses does not have to come at a cost of sacrificing patient safety.
A typical facility can save from 10% to as much as 40% annually on energy costs by implementing a comprehensive energy action plan. And, while each facility will require an organized approach to recognize those savings, facilities first need to understand their power consumption, location of major loads, electric demand usage patterns, and associated costs.
A well organized monitoring and reporting system allows determination of where energy is going, identifies the biggest users, and decides which areas are likely to reap the largest benefits from energy management efforts while managing the impacts on patient safety. The benefits from applying monitoring and reporting principles and guidelines can be seen by comparing theoretical, equipment, system, and actual kWh/unit of production as a function of time.
Because a healthcare facility operates so many different areas and operations, the units of production will vary by department. As an example, the Xray, CT, MRI Test Department may be measured on the number of tests performed per hour, day or week vs. the amount of energy consumed; the Emergency Room (ER) would be measured by the number of patients treated per hour; and the Intensive Care Unit would be measured based on the amount of occupied patient beds per hour. Subsequently, in order to realize measurable improvements in energy conservation, it is essential to measure each of the various areas and apply the proper unit of production accordingly.
Benefits of Energy Monitoring Systems:
  • Energy expenditure reductions: Load profile can be generated to track daily, weekly and seasonal variations in energy consumption, while critical loads can be metered and sub-metered to evaluate consumption and reduce energy costs.
  • Allocate Costs and Perform Activity-based Costing: Track energy-related costs by department, tenant, process or output. Revenue-accurate metering allows for easy cost comparison with utility bills.
  • Manage Energy Purchase Agreements: Use historical load profile data to develop price/risk curves for evaluating energy purchase agreements or for joining an aggregated group to purchase power at reduced costs.
  • Perform Energy Conservation and Load Reduction: Shed non-essential loads or bring distributed generation on line to reduce consumption and/or participate in utility-sponsored demand reduction programs. Evaluate the value of energy efficient equipment such as lighting and HVAC changes.
  • Reduce Demand Peaks and Related Costs: Avoid demand surcharges to predict kW demand and identify the cause of demand peaks and limit peak occurrences. Generate alarms on events such as excessive load, equipment failure, or when operations are likely to exceed contract terms for energy supply.
  • Evaluate Impact of Production Equipment on Energy Costs: Monitor the efficiency of large, energy-consuming equipment to improve performance. Plan for expansion by analyzing load trends and available capacity for new equipment.

Tuesday, January 7, 2014

Data Center Uptime


In today’s 7x24 uptime world, a power outage begins after four milliseconds and can cost millions of dollars a year in downtime. Minimizing the probability of that impact requires facility managers to fully understand their power system infrastructure so they can maximize power reliability and quality. And while most data centers have invested in power Power monitoring is key to maximizing uptime and ensuring all power infrastructure is functioning properly.
mitigation technologies such as UPS and backup generation technologies, a 7x24 operation needs continuous power information to ensure that these systems are delivering highly reliable, clean power. 
Handheld and Portable Instruments: Typically used for troubleshooting or forensic investigation of power quality problems, these instruments can be brought into the field and used to collect information on an as-needed basis. Dranetz’s weather-resistant packaging enables users to leave instruments in the field for long-term monitoring and studies.
Permanently Installed, Continuous Monitoring Systems: The continuous capture of power quality and energy data puts facility managers in a position to proactively manage their power infrastructure, by increasing their knowledge and giving them the tools to increase system reliability.
Power Quality Software: Interpreting power monitoring data can be an overwhelmingly complex and time-consuming task. Dranetz prides itself on having the most user-friendly power quality software on the market.

Thursday, December 19, 2013

Wind Generation Power Quality & Interconnect Issues


Wind generation plants are growing at a fast pace. Government assistance in the form of production tax credits, grants for capital investment and other sources of funding are fueling such growth. Howe
ver, concerns remain over the interconnection of such plants to the grid as well as overall power quality characteristics. Dranetz provides ideal various solutions for both temporary monitoring or troubleshooting and fixed systems for continual 7x24 monitoring to capture the dynamics over time and alarm on faults, system dynamic changes and deteriorating conditions.
Wind turbine design has evolved with various types in use. Each type can have different power quality characteristics that relate to the generator type, associated power electronics, collector systems and other aspects. Common problems and design considerations studied are grounding, harmonics, voltage flicker, voltage regulation, reactive power and fault ride through capabilities. Measured values can be evaluated against existing standards and guidelines such as IEEE 519, IEC 61000-4-15/IEEE 1453 and those from the Federal Energy Regulatory Commission (FERC).
Trend of measured 5th harmonic current at a wind plant
Dranetz power quality solutions are ideally suited for wind power applications. Combined with our DranView software, our portable tools such as the PowerXplorer PX5 provide you the state-of-the-art tools for onsite troubleshooting and engineering studies performed by plant manufacturers, owner technicians, service organizations and consultants. For fixed, 7x24 applications our Encore Series provides cost effective continual remote monitoring and alarming in a common web browser environment that helps ensure the system is always operating within design guidelines and that you will be quickly notified should anomalies or failures occur.
References:
- Power Quality Considerations of Wind Power Plants, David Mueller, P.E., 2010 Georgia Tech Fault Disturbance Analysis Conference


Tuesday, November 5, 2013

Demand Response Case Study


Data Center uses Encore to monitor Demand Response Performance
A 1.2M square foot Data Center located in Northern New Jersey was participating in a Demand Response program utilizing their backup generators as the primary means of reducing their 7MW of load. The service provider that they worked with installed telemetry metering from the utilities KYZ pulse output to report the performance to the grid operator. However, the facility director wanted live access to the generators output so that they could measure the performance of the generators and watch loading on each of the four 2.5MW turbines in real-time and historically. And, it had to painlessly integrate into his existing BMS system over an IP backbone.
Backup generators are critical to the operation of a 24x7 facility, downtime is lost revenue and lost customers. A facility operator needs to know what’s happening to his system all the time, and electricity is the main backbone of his entire operation. Let’s face it, no matter how many T1’s are coming in from different carriers and different POP’s, if the electricity goes out everything stops working including communications.

Utilizing the Encore Series ES230 DataNode’s along with their existing Encore Series Software installation, the Facility Director was able to give his BMS team a Modbus map for the instruments which were easily programmed. Because these were backup generators installation was much easier, however they were done sequentially in bypass mode because no one knows if or when the power will go out and the engines would be needed for an emergency. After the installation was complete and the integration into the BMS was done, the facility manager performed a live test and the results were perfect. The facilities network operations center (NOC) was able to read the instantaneous values from the generators from their control room, the ES230’s were also integrated into the existing Encore Series Software system so the facilities engineers also gained that they were able to see all of the instruments remotely when needed.
The graphs below display how easy it is for a user to view their reports on energy usage, demand, and any other electrical parameters recorded in the Encore Series Software from any remote location.


The ES230 DataNode’s are small and easy to install and configurable either at the local display or through the Encore Series Software. These instruments are capable of recording Volts, Amps, kW, kWh, kVA, kVAR, Power Factor, Harmonics, and a variety of other parameters simultaneously. They also have the option of RS232, RS485, or Ethernet communications and support native Modbus protocols. The Encore Series Software is a web enabled application that does not require the installation of any software on a local users computer. The system can be accessed from any web-enabled browser by multiple people simultaneously, and performs a variety of operations, including; data collection, data analysis, reporting, alarming, and remote setup of the equipment. With the Modbus driver installed the software can easily read data from any previously installed instrument that supports the Modbus protocol. Additionally, the software allows for easy expansion, including the addition of Power Quality instruments for more detailed analysis of power anomalies.

Friday, October 11, 2013

Sub-optimal Power Quality Can Cause Sensitive Medical Equipment to Fail


www.dranetz.com

Power Quality has always been a key issue for healthcare facility managers. With the rapid advances in medical technology, hospitals, medical clinics and laboratories increasingly rely on sophisticated electronic devices for diagnosis, treatment and monitoring. This equipment is often interconnected within networks, industrial processes and power infrastructure and can be negatively affected by events that arise both from the supplying power system and aregenerated within the facility.
All of the interconnection of electrical circuits, and the high sensitivity of the equipment in use, demands a high degree of power quality and reliability to prevent disruption of mission-critical operations and procedures. Power quality disturbances can be caused by a range of internal and external phenomena and often re-occur because the location and nature of the event is not well understood or identified.
The Dranetz PowerVisa
While the costs of downtime or failures can result in thousands of dollars per hour, the costs of power and equipment failures in critical patient operations are immeasurable. Power monitoring is key to maximizing uptime and ensuring all power infrastructure is functioning properly.

Friday, September 27, 2013

Manufacturing Process Unexpectedly Halted


www.dranetz.com

This medium-sized manufacturing facility, located in an industrial park that experienced an unexplained shutdown of several adjustable speed drives (ASDs) , wreaking havoc on key process equipment. Each day, at approximately 6 am, the utility-owned PF capacitor kicks on to improve the voltage of inductive loads prevalent in many of the park’s manufacturing facilities. The ASDs are conditioned to anticipate this expected power quality event and are typically able to ride through the problem. So when one of the ASDs closed down and interrupted the continuous stream manufacturing process, the facility manager needed to learn why, correct the problem, and prevent it from happening again.

As you can see from the attached screen capture, a second, unanticipated capacitor switching event occurred shortly after the first. This event was categorized by the Encore Series System Capacitor Switching Answer Module , enabling the facility manager to pinpoint the exact source of the problem. Further analysis showed that the ASD shutdown was the result of an overcurrent trip, which was quickly remedied preventing hours of downtime, at a loss of $10,000/hour.





Friday, September 20, 2013

SecuTest & SecuLife Safety Testers From Gossen Metrawatt


www.gossenmetrawattusa.com

The SecuTest SIII+ and the SecuLife ST are universal test instruments for testing the electrical safety of portable electrical equipment in commercial, residential, and medical applications operating at 120V/60Hz or 230V/50Hz.  The SecuTest SIII+ and SecuLife ST are the same basic instrument, with the SecuLife including standard features specific to medical testing, such as testing up to 10 application parts and test sequences per IEC 60601.  In order to evaluate electrical safety, tests are performed for protective conductor connections, insulation resistance, and leakage current.  Individual tests can be performed manually, or testing can be automated by using built-in test sequences that are in accordance with widely accepted international standards.

In the video below, Dieter Feulner, Product Manager for Gossen Metrawatt,  tests for touch current on a mobile X-ray device.