2015/03/05

Power rates rising

By Alena Mae S. Flores | Mar. 04, 2015 


Meralco notes higher demand

Increased demand and power plant shutdowns may translate into higher electricity rates in March, an official of distributor Manila Electric Co. said Wednesday.

Meralco vice president Lawrence Fernandez told reporters the distribution utility was still waiting for the billing from suppliers, but charges at the Wholesale Electricity Spot Market in February already pointed to an upward adjustment.

WESM, an offshoot of the Electric Power Industry Reform Act of 2001, acts as the country’s trading floor of electricity.

“We’re still waiting for billings from IPPs [independent power producers] and PSAs [power supply agreements], but WESM results appear to point to higher market prices,” Fernandez said.

“This may be due to increased demand, as the peak went up by around 200 megawatts from January to February, coupled with more capacity on outage,” he said, referring to the shutdown of Masinloc and Quezon power plants.

Meralco earlier reported higher WESM charges in the January supply month, due to higher incidence of scheduled and forced outages of generating plants.

The higher trading prices at WESM in January were offset by a reduction of billing adjustments from prior months.

Meralco’s electricity rates went up by P0.84 per kilowatt-hour in February, translating into an increase of P168 for small households consuming 200 kWh per month.

Electricity bill went up in February after generation charges were adjusted upward by P0.52 per kWh from P4.72 per kWh in January. Transmission charges, taxes and other charges also increased.

Meralco said a new line item, called FIT-Allowance, representing the subsidy for renewable energy projects, was also added to the bill in February.  The distribution charge, the item that goes directly to Meralco, did not register any movement. 

Overall power rates reached P10.51 per kWh in February.

Meralco said the generation charge went up by P0.52 per kWh, mainly due to a P1-per-kWh increase in the rates of generation companies under power supply agreements, as capacity fees normalized from a low level in the preceding month.

http://manilastandardtoday.com/2015/03/04/power-rates-rising/

2015/02/27

TIGHT POWER TO PERSIST UNTIL 2018



Manila Electric Co. on Monday warned Luzon will face tight power supply until 2018, because of aging power plants and the anticipated increase in electricity demand.

Meralco said it foresaw as early as 2013 the impending power supply shortage in 2015, which the government initially denied.

“What had not been evident before that came to light is really the effect of aging power plants. The phenomenon, not being there, [but] we expected them to be, became evident last quarter of 2013,” Meralco president Oscar Reyes said.

Power rates surged in the fourth quarter of 2013, following the Malampaya natural gas facility shutdown, coupled with the outage of several power plants.

Meralco recorded 83 forced outages or an average of seven outages per month and 52 scheduled outages in 2014.

Reyes said the country’s economic growth put pressure on the aging and inadequate power generation structure in the Luzon grid, resulting in increasing forced outages and longer scheduled shutdown of power plants.

“We are in a tight situation. I think recently there have been renewed warnings potential for brownouts. We still have to see latest reviews, how much forced outages you assume,” Reyes said.

He said the power supply projection would depend on whether the new power plants would be completed in time.

Power plants usually take three years to five years to build, including the permitting period, but are often delayed due to regulatory issues.

Among the power plants that are expected to be online this year are the 135-megawatt coal plant of Trans-Asia Oil and Energy Development Corp. and Ayala Corp. and the 150-MW Calaca coal plant of Sem-Calaca Power Corp. and other renewable energy projects.

Reference:
Flores, A. M. S. (February 23). Tight power to persist until 2018. Manila Standard Today. Retrieved from http://manilastandardtoday.com/2015/02/23/tight-power-to-persist-until-2018/

BLACKOUT




IT’S inevitable. The country will be plunged into darkness come the summer season. First victim: Davao City with two-hour rotating brownouts starting middle of February. Many fear the whole country will be next.

This crisis comes with alternating increases in electricity rates as summer looms. As of this writing, the Philippines stands in the roster of countries as one with the highest electricity cost.

The problem is, the price spike doesn’t seem to jive with the lowering of fuel costs internationally. More so, it doesn’t help that government’s main reason for imposing numerous taxes on electricity generation and distribution is all for show, “to protect the country’s credit rating.”

This would put the Philippines as one of the countries with the highest cost of doing business. In fact, the European Chamber of Commerce of the Philippines raised concerns as to what must be done should the power crisis become extreme.

In their website, one of the proposals was to push “more participants in the Interruptible Load Program (ILP)—targeting those with large embedded generation capacities, such as malls, large business establishments and factories.”
The ILP participants “must we willing to run their generators for about 10 hours a day during times of extreme shortage of power”.

The proposition of Department of Energy (DOE) secretary Carlos Jericho Petilla to grant the President emergency powers so he could address the power crisis has come under scrutiny from the public. Petilla cited Section 71 of the Electric Power Industry Reform Act of 2001 as justification for Pres. Aquino’s emergency powers in order for him to tap additional electrical capacity.

The problem with the proposition is that the ILP participants could further increase the cost of electricity than make it affordable.

The crisis will surely put the Philippines as one of the countries where the cost of doing business would be prohibitive. Business will be compelled to spend their capital on fuel and generators, rather than expansion.

To equalize productivity, companies will have to spend extra on personnel wages, extra machinery, operational costs, better security protocols for banks and lower profit margins. Maintenance, replacement and repair of damaged machinery due to power fluctuations could add to the expense.

In the end, the DOE must quit pussy-footing and do its job. Because any attempt to improve the country’s gross domestic product will fall by the wayside for sheer incompetence in the ways of power.

Reference:
(February 26). Blackout. Business Mirror. Retrieved from http://www.businessmirror.com.ph/blackout/

2015/02/10

PV Systems Simplified

By: 



Photovoltaic (PV) modules make electricity from sunlight, and are marvelously simple, effective, and durable. They sit in the sun and, with no moving parts, can run your appliances, charge your batteries, or make energy for the utility grid. It’s difficult to find a product that combines the longevity and productivity of PV modules. When you buy them, you’re buying 40-plus years of electricity for a one-time cost.
A PV array is the energy collector—the solar “generator.” To use the energy from the array, you also need other components which make up a solar-electric system, and you need to design the whole system for the purpose desired. This article explains the basic components and configurations for the four most common system options in solar electricity:
·                                 PV-DIRECT
·                                 STAND-ALONE (OFF-GRID)
·                                 GRID-TIED WITH BATTERY BACKUP
·                                 BATTERYLESS GRID-TIED
Specific systems will vary—not all equipment is necessary for every system type. In the diagrams, the numbers in red correspond to the major components needed. 

1. PV MODULES
(AKA: solar-electric modules)

PV modules are a solar-electric system’s defining component, where sunlight is used to make direct current (DC) electricity. Behind a PV module’s shimmering face, semiconductor materials work their magic, using light (photons) to move electrons in a circuit—what’s known as the photovoltaic effect.
PV modules are rated in watts, based on the maximum power they can produce under ideal sun and temperature conditions. You can use the rated output (along with a figure representing your local solar resource and an efficiency factor) to determine how many modules it will take to meet your electrical needs. Multiple modules combined together are called an array. Although framed modules are most common, PV technology also has been integrated into roofing shingles and tiles, and even peel-and-stick laminates for standing-seam metal roofs.
PV modules are very durable and long-lasting—most carry 25-year warranties. They can withstand severe weather, including extreme heat, cold, and hail.

2. DC-TO-DC CONVERTERS
(AKA: distributed power harvesters, power boxes, module maximizers)

A new component that’s showing up on some batteryless grid-tied PV systems is DC-to-DC converters. These units can maximize the output of each module and reduce losses due to variances between modules’ outputs. They are directly wired to each module and are bolted to either the module frame or the PV rack. The output of each power box is combined (either in series or parallel) to the other power boxes and the final output is wired to the PV disconnect.

3. ARRAY MOUNTING SYSTEM
(AKA: mounts, racks)

Mounts provide a secure platform on which to anchor your PV modules, keeping them in place and oriented correctly. Modules are generally mounted on a rooftop, atop a steel pole set in concrete, or at ground level. The specific pieces, parts, and materials of your mounting system will vary considerably depending on which method you choose.
Usually, arrays in urban or suburban areas are mounted on a south-facing roof (although east- and west-facing roofs can also be used), parallel to the roof’s slope. This approach is sometimes considered most aesthetically pleasing, and may be a local requirement. In areas with a lot of space or if your roof is not ideal because of orientation or shading, pole- or ground-mounted arrays are options.
Pole-mounted PV arrays can incorporate tracking, automatically following the sun across the sky from east to west each day. Tracked PV arrays can increase the system’s daily energy output by 25% to 40%, but come with more cost, complexity, maintenance, and potential failure than fixed arrays.

4. COMBINER BOX
(AKA: series string combiner)

The array combiner box is used to wire and combine parallel strings of PV modules. These are most commonly found in off-grid systems, although larger on-grid systems will have combiner boxes as well. Coming into the input side of a combiner box will be the positive and negative wire for individual module strings, each with its own terminal. Each positive terminal is internally connected to a series circuit breaker (or fuse) for that string. The output of each breaker/fuse is connected together on a common bus bar to which a positive output wire is connected. The strings’ negative wires are simply connected to a common bus bar along with the negative output wire. Some batteryless grid-tied inverters integrate a combiner box on the input side of the inverter, eliminating a separate combiner box. And some grid-tied systems only have a few PV module strings (3 or less), and do not need a combiner box at all.

5. DC DISCONNECT 

The DC disconnect is used to safely interrupt the flow of electricity from the PV array. It’s an essential component when system maintenance or troubleshooting is required, and may be mandated by local inspectors. The disconnect enclosure (sometimes a part of the inverter package), houses an electrical switch rated for use in DC circuits. It also may integrate either circuit breakers or fuses, if needed.

6. CHARGE CONTROLLER
(AKA: controller, regulator)

A charge controller’s primary function is to protect the battery bank from over‑
charging. As a battery becomes charged, the controller moderates the flow of electricity from the PV modules. Batteries are expensive and need careful treatment. To maximize their life, avoid overcharging or undercharging them. Most modern charge controllers incorporate maximum power point tracking (MPPT), which optimizes the PV array’s output to maximize energy production. Some battery-based charge controllers also include a low-voltage disconnect for the DC loads to help prevent over-discharging, which can permanently damage the battery bank.

7. BATTERY BANK
(AKA: storage battery)

PV modules produce electricity only when the sun shines on them. If your system is designed to provide energy without the utility grid, you’ll need a battery bank—a group of batteries wired together—to store energy so you can have electricity at night or on cloudy days. For off-grid systems, battery banks are typically sized to keep household electricity running for up to three cloudy days. Grid-tied systems also can include battery banks, which provide emergency backup power during grid outages to keep critical electric loads operating until grid power is restored.
Although similar to car batteries, the deep cycle batteries used in solar-electric systems are specialized for the type of charging and discharging they’ll need to endure. Flooded lead-acid batteries are most commonly used in solar-electric systems, are the least expensive, but require adding distilled water occasionally to replenish water lost during the charging process. Sealed batteries, absorbed glass mat (AGM) and gel-cell, do not require adding water and often used for grid-tied systems where the battery bank is usually small (as compared to off-grid banks), and the batteries are typically kept at a full state of charge.

8. BATTERY BANK TO CHARGE CONTROLLER DISCONNECT 

Because all electrical components may need to be serviced periodically, it is necessary, and required by the National Electric Code(NEC) to place disconnects between all sources of power and the other components. Because of this, a disconnect (usually a circuit breaker to also protect the wire) is placed between the battery bank and charge controller, which enables isolating the charge controller from the battery bank for servicing.

9. SYSTEM METER
(AKA: battery monitor, amp-hour meter)

System meters measure and display several different aspects of a PV system’s performance and status—tracking how full your battery bank is; how much electricity your solar-electric array is producing or has produced; and how much electricity is being used. Web-based monitoring is offered in some metering packages and is extremely handy to keep tabs and potentially troubleshoot the system. Operating your solar-electric system without metering is like running your car without any gauges—although it’s possible to do, it’s always better to know how much fuel is in the tank.

10. BATTERY TO INVERTER DISCONNECT
(AKA: main DC disconnect)

In battery-based systems, a disconnect between the batteries and inverter is typically a large, DC-rated breaker mounted in a sheet-metal enclosure. This breaker allows the inverter to be quickly disconnected from the batteries for service, and protects the inverter-to-battery wiring against too-high current.

11. INVERTER
(AKA: DC-TO-AC COVERTER)

Inverters transform the DC electricity produced by the PV modules or from the batteries into the alternating current (AC) electricity commonly used for lights, pumps, and other electrical appliances. Grid-tied inverters synchronize the electricity they produce with the grid’s AC electricity, allowing the system to feed any unused solar-made electricity to the utility grid.
Most grid-tied inverters are designed to operate without batteries, either tying to one or more strings (series grouping) of modules, or using a “microinverter” for each module. Similar to systems using DC-to-DC converters, microinverters offer module-level monitoring and maximize array output with module-level MPPT, enabling each module to operate independently of the others.
Battery-based inverters for off-grid or grid-tied use often include a battery charger, which is capable of charging a battery bank from either the grid or a backup generator during cloudy weather. Most batteryless inverters can be installed outdoors, but most battery-based inverters are not weatherproof and should be mounted indoors, close to the battery bank.

12. INVERTER AC DISCONNECT 

Utilities usually require an AC disconnect between the inverter and the grid. Some grid-tied inverters have integrated AC disconnects, but these may or may not meet local requirements, calling for a separate PV system AC disconnect box, usually located near the utility kWh meter. In battery-based systems an AC disconnect is also required between the inverter, the AC breaker panel and any other AC power source. It is usually incorporated into an inverter bypass breaker assembly, allowing the AC loads to be fed by either the inverter, or if power from the inverter is unavailable, by another AC power source such as a backup generator.

13. PV PRODUCTION MONITORING

An additional meter to measure solar production is useful for tracking system performance, and is needed for production-based (per kWh) incentives. This can be a dedicated kWh meter that counts the kWh coming out of the inverter, or can be a full revenue-grade or Web-based data monitoring package.

14. AC BREAKER PANEL
(AKA: mains panel, AC load center, breaker box, fuse box)

The AC breaker panel is where a building’s electrical wiring connects to the source of the electricity, whether that’s the grid or a solar-electric system. This wall-mounted panel or box is usually installed in a utility room, basement, garage, or on the building’s exterior. It contains a number of labeled circuit breakers that route electricity to the various rooms or household circuits. These breakers allow electricity to be disconnected for servicing, and also protect the building’s wiring against overcurrent, which may cause electrical fires.
Just like other electrical circuits, an inverter’s electrical output needs to be routed through an AC circuit breaker. This breaker is usually mounted inside the building’s mains panel, which enables the inverter to be turned off and isolated if servicing is necessary, and also safeguards the circuit’s electrical wiring.

15. KILOWATT-HOUR METER
(AKA: kWh meter, utility meter)

Most homes with a grid-tied solar-electric system will have AC electricity coming from and going to the grid. A bidirectional kWh meter can cumulatively track the flow in both directions. The utility company often provides these special meters at no cost. 

16. BACKUP GENERATOR
(AKA: gas guzzler, the racket)

Off-grid PV systems can be sized to provide electricity during cloudy periods when the sun doesn’t shine. But sizing a system to cover a worst-case scenario, like several cloudy weeks during the winter, can result in a very large, expensive system that will rarely get used to its capacity. To spare your pocketbook, size the system moderately, but include a backup generator to get through those occasional sunless stretches. Generators are also used to provide battery equalizing charging—occasional, high-voltage, prolonged charging that brings the weaker battery cells up to the charge level of the stronger cells.
Engine generators can be fueled with biodiesel, petroleum diesel, gasoline, or propane. These generators produce AC electricity that a battery charger (either stand-alone or incorporated into an inverter) converts to direct current, which is stored in batteries. Like most internal combustion engines, generators tend to be loud and polluting, and require maintenance. A well-designed PV system will require running a generator only 50 to 200 hours a year.

SOLAR-ELECTRIC SYSTEMS DEMYSTIFIED

As you can see, the anatomy of a solar-electric system isn’t that complicated. All of the parts have a purpose, and once you understand the individual tasks that each part performs, the whole system makes more sense. Now you’re ready to look at the system articles and schematics in Home Power without your eyes glazing over, and you’ll have a clearer understanding of what is going on. To solidify your understanding, your next task could be to examine a solar-electric system in person, going on a local solar tour, or getting on the solar grapevine to visit folks ahead of you on the solar curve.

As written in HomePower Magazine...


Justine Sanchez is Technical Editor at Home Power, a Solar Energy International instructor, a NABCEP-certified PV installer, and is certified by ISPQ as a PV Affiliated Master Trainer.
Home Power Senior Editor Ian Woofenden has been living with solar-electric systems since the early 1980s. His systems include a wide range of applications, including solar flashlights, vent fans, hybrid wind-PV systems for home and shop, a PV-powered waterslide, electric fence chargers, an iPhone backup charger, and more.

2014/12/15

Why choose Yingli solar panel?

This is our solar panel!

http://blog.yinglisolar.com/yinglis-guide-solar-zoo/

2014/11/26

Which Solar Panel Type is Best? 
Mono- vs. Polycrystalline vs. Thin Film
By: Mathias Aarre Maehlum

Crystalline Silicon (c-Si)

Almost 90% of the World’s photovoltaics today are based on some variation of silicon.[1] In 2011, about 95% of all shipments by U.S. manufacturers to the residential sector were crystalline silicon solar panels.[2]

The silicon used in PV takes many forms. The main difference is the purity of the silicon.

But what does silicon purity really mean? The more perfectly aligned the silicon molecules are, the better the solar cell will be at converting solar energy (sunlight) into electricity (the photoelectric effect).

The efficiency of solar panels goes hand in hand with purity, but the processes used to enhance the purity of silicon are expensive. Efficiency should not be your primary concern. As you will later discover, cost-and space-efficiency are the determining factors for most people.

Crystalline silicon forms the basis of mono- and polycrystalline silicon solar cells:

Monocrystalline Silicon Solar Cells

Solar cells made of monocrystalline silicon (mono-Si), also called single-crystalline silicon (single-crystal-Si), are quite easily recognizable by an external even coloring and uniform look, indicating high-purity silicon.

Monocrystalline solar cells are made out of silicon ingots, which are cylindrical in shape. To optimize performance and lower costs of a single monocrystalline solar cell, four sides are cut out of the cylindrical ingots to make silicon wafers, which is what gives monocrystalline solar panels their characteristic look.

A good way to separate mono- and polycrystalline solar panels is that polycrystalline solar cells look perfectly rectangular with no rounded edges.

Advantages

  • Monocrystalline solar panels have the highest efficiency rates since they are made out of the highest-grade silicon. The efficiency rates of monocrystalline solar panels are typically 15-20%. SunPower produces the highest efficiency solar panels on the U.S. market today. Their E20 series provide panel conversion efficiencies of up to 20.1%.[3] Update (April, 2013): SunPower has now released the X-series at a record-breaking efficiency of 21.5%. [7]

  • Monocrystalline silicon solar panels are space-efficient. Since these solar panels yield the highest power outputs, they also require the least amount of space compared to any other types. Monocrystalline solar panels produce up to four times the amount of electricity as thin-film solar panels.

  • Monocrystalline solar panels live the longest. Most solar panel manufacturers put a 25-year warranty on their monocrystalline solar panels.

  • Tend to perform better than similarly rated polycrystalline solar panels at low-light conditions.

Disadvantages

  • Monocrystalline solar panels are the most expensive. From a financial standpoint, a solar panel that is made of polycrystalline silicon (and in some cases thin-film) can be a better choice for some homeowners.

  • If the solar panel is partially covered with shade, dirt or snow, the entire circuit can break down. Consider getting micro-inverters instead of central string inverters if you think coverage will be a problem. Micro-inverters will make sure that not the entire solar array is affected by shading issues with only one of the solar panels.
  • The Czochralski process is used to produce monocrystalline silicon. It results in large cylindrical ingots. Four sides are cut out of the ingots to make silicon wafers. A significant amount of the original silicon ends up as waste.
  • Monocrystalline solar panels tend to be more efficient in warm weather. Performance suffers as temperature goes up, but less so than polycrystalline solar panels. For most homeowners temperature is not a concern.

Polycrystalline Silicon Solar Cells

The first solar panels based on polycrystalline silicon, which also is known as polysilicon (p-Si) and multi-crystalline silicon (mc-Si), were introduced to the market in 1981. Unlike monocrystalline-based solar panels, polycrystalline solar panels do not require the Czochralski process. Raw silicon is melted and poured into a square mold, which is cooled and cut into perfectly square wafers.

Advantages
  • The process used to make polycrystalline silicon is simpler and cost less. The amount of waste silicon is less compared to monocrystalline.

  • Polycrystalline solar panels tend to have slightly lower heat tolerance than monocrystalline solar panels. This technically means that they perform slightly worse than monocrystalline solar panels in high temperatures. Heat can affect the performance of solar panels and shorten their lifespans. However, this effect is minor, and most homeowners do not need to take it into account.

Disadvantages

  • The efficiency of polycrystalline-based solar panels is typically 13-16%. Because of lower silicon purity, polycrystalline solar panels are not quite as efficient as monocrystalline solar panels.

  • Lower space-efficiency. You generally need to cover a larger surface to output the same electrical power as you would with a solar panel made of monocrystalline silicon. However, this does not mean every monocrystalline solar panel perform better than those based on polycrystalline silicon.

  • Monocrystalline and thin-film solar panels tend to be more aesthetically pleasing since they have a more uniform look compared to the speckled blue color of polycrystalline silicon.


String Ribbon Solar Cells

String Ribbon solar panels are also made out of polycrystalline silicon. String Ribbon is the name of a manufacturing technology that produces a form of polycrystalline silicon. Temperature-resistant wires are pulled through molten silicon, which results in very thin silicon ribbons. Solar panels made with this technology looks similar to traditional polycrystalline solar panels.

Evergreen Solar was the main manufacturer of solar panels using the String Ribbon technology. The company is now bankrupt, rendering the future for String Ribbon solar panels unclear.

Advantages

·         The manufacturing of String Ribbon solar panels only uses half the amount silicon as monocrystalline manufacturing. This contributes to lower costs.

Disadvantages

·         The manufacturing of String Ribbon solar panels is significantly more energy extensive and more costly.

·         Efficiency is at best on par with the low-end polycrystalline solar panels at around 13-14%. In research laboratories, researchers have pushed the efficiency of String Ribbon solar cells as high as 18.3%.[3]

·         String Ribbon solar panels have the lowest space-efficiency of any of the main types of crystalline-based solar panels.

Thin-Film Solar Cells (TFSC)

Depositing one or several thin layers of photovoltaic material onto a substrate is the basic gist of how thin-film solar cells are manufactured. They are also known as thin-film photovoltaic cells (TFPV). The different types of thin-film solar cells can be categorized by which photovoltaic material is deposited onto the substrate:
  • Amorphous silicon (a-Si)
  • Cadmium telluride (CdTe)
  • Copper indium gallium selenide (CIS/CIGS)
  • Organic photovoltaic cells (OPC)

 Depending on the technology, thin-film module prototypes have reached efficiencies between 7–13% and production modules operate at about 9%. Future module efficiencies are expected to climb close to the about 10–16%.[4]

The market for thin-film PV grew at a 60% annual rate from 2002 to 2007.[5] In 2011, close to 5% of U.S. photovoltaic module shipments to the residential sector were based on thin-film.

Advantages

  • Mass-production is simple. This makes them and potentially cheaper to manufacture than crystalline-based solar cells.

  • Their homogenous appearance makes them look more appealing.

  • Can be made flexible, which opens up many new potential applications.

  • High temperatures and shading have less impact on solar panel performance.

  • In situations where space is not an issue, thin-film solar panels can make sense.

Disdvantages

  • Thin-film solar panels are in general not very useful for in most residential situations. They are cheap, but they also require a lot of space. SunPower`s monocrystalline solar panels produce up to four times the amount of electricity as thin-film solar panels for the same amount of space.[3]

  • Low space-efficiency also means that the costs of PV-equipment (e.g. support structures and cables) will increase.


  • Thin-film solar panels tend to degrade faster than mono- and polycrystalline solar panels, which is why they typically come with a shorter warranty.

Solar panels based on amorphous silicon, cadmium telluride and copper indium gallium selenide are currently the only thin-film technologies that are commercially available on the market:

Amorphous Silicon (a-Si) Solar Cells

Because the output of electrical power is low, solar cells based on amorphous silicon have traditionally only been used for small-scale applications such as in pocket calculators. However, recent innovations have made them more attractive for some large-scale applications too.

With a manufacturing technique called “stacking”, several layers of amorphous silicon solar cells can be combined, which results in higher efficiency rates (typically around 6-8%).

Only 1% of the silicon used in crystalline silicon solar cells is required in amorphous silicon solar cells. On the other hand, stacking is expensive.

Cadmium Telluride (CdTe) Solar Cells

Cadmium telluride is the only thin-film solar panel technology that has surpassed the cost-efficiency of crystalline silicon solar panels in a significant portion of the market (multi-kilowatt systems).

The efficiency of solar panels based on cadmium telluride usually operates in the range 9-11%.

First Solar has installed over 5 gigawatts (GW) of cadmium telluride thin-film solar panels world.

Copper Indium Gallium Selenide (CIS/CIGS) Solar Cells

Compared to the other thin-film technologies above, CIGS solar cells have showed the most potential in terms of efficiency. These solar cells contain less amounts of the toxic material cadmium that is found in CdTe solar cells. Commercial production of flexible CIGS solar panels was started in Germany in 2011.

The efficiency rates for CIGS solar panels typically operate in the range 10-12 %.


Many thin-film solar cell types are still early in the research and testing stages. Some of them have enormous potential, and we will likely see more of them in the future.

2014/11/11

LISTED FIRMS URGED TO RUN OWN GENERATORS

MANILA, Philippines - The 263 companies listed at the Philippine Stock Exchange (PSE) were urged yesterday to run their own generators under the government’s interruptible load program (ILP) to ease the projected electricity shortfall in next year’s summer.
“We are appealing to all PSE-listed firms to join the ILP,” Rep. Arnel Ty of party-list group Liquefied Petroleum Gas Marketers Association, who sits in the House energy committee, said.
The program seeks to encourage private companies to run their own generators during peak demand periods between March and June next year, instead of getting their supply from the Luzon grid.
The electricity that these firms would not be taking from the grid would be available to household and small users. The goal is to prevent a rotating brownout.
During next year’s summer months, the Department of Energy (DOE) is forecasting that electricity supply would be sufficient but reserves would be short of the desired level just in case one or two power plants break down.
Ty said seven PSE-listed firms – Ayala Land Inc., Century Properties Group Inc., GMA Network Inc., Megaworld Corp., Philippine Long Distance Telephone Co., Robinsons Land Corp., and SM Prime Holdings Inc. – have already signed up for the ILP.
He said Federal Land’s office skyscraper GT International Tower has also enlisted. Federal Land is a wholly owned subsidiary of PSE-listed GT Capital Holdings Inc.
He said Posh Properties Development Co., a unit of PSE-listed Anchor Land Holdings Inc., has likewise joined the ILP, along with Shangri-La Paza Corp., an affiliate of PSE-listed Shang Properties Inc.
He added that based on established protocols, ILP participants are to disconnect from the Luzon grid and run their own generators once there is a high risk that supply of electricity may fall short of demand.
A total of 29 private companies have so far enrolled in the ILP, and are ready to drive their backup generators.
“We applaud these entities for going out of their way to shield consumers, by helping to minimize the threat of potential power brownouts in Luzon between February to June next year,” Ty said.
The House and the Senate are no longer granting President Aquino’s request for special congressional authority to rent or buy generators from foreign suppliers. The rent or purchase scheme could cost as much as P12 billion.
Instead, lawmakers are now focusing on ILP, which they forecast is sufficient to meet the DOE-reported shortfall of 21-31 megawatts (MW) in the first two weeks of April and a desired reserve of 647 MW for the entire summer.
Mindoro Oriental Rep. Reynaldo Umali, House energy committee chairman, said as of October, ILP participants have committed to free up at least 800 MW, which would be available to small users.
Executive Director Francis Juan of the Energy Regulatory Commission has told the Umali committee that private companies have standby generating capacity of up to 3,000 MW, while the Philippine Chamber Commerce and Industry estimates such backup generators at 2,000 MW.
Diaz, J. (November 11). Listed firms urged to run own generators. Philippine Star. Retrieve from http://www.philstar.com/business/2014/11/11/1390261/listed-firms-urged-run-own-generators