Thursday, February 28, 2008

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FINAL LIST OF SCHOOLS WITH PROJECTS BY TYPE AND TIME ALLOWED TO PARTICIPATE IN THE FIRST SOLAR OLYMPICS THE SCHOOL YEAR 2007-2008 RESOLUTION BY THE DIRECTOR GENERAL OF EDUCATION AND INNOVATION MANAGEMENT OF DECEMBER 3, 2007
1 .- MODE SUNDIAL

CENTER DIRECTOR
teacher responsible
STAR LEVEL

CEIP JUAN CARLOS MORALES LORENZO ACOSTA FRANCISCO VILLEGAS

6 º
CEIP LAUREL PRIMARY SOURCES
LIGIA
ELSA PADILLA GARCÍA SANTANA
5 th & 6 th PRIMARY
CEIP LOPE OF WAR
NIEVES M ª LOPEZ RODRIGUEZ
NIEVES M ª LOPEZ RODRIGUEZ
5 th & 6 th PRIMARY
CEIP PROFESSOR CARLOS SOCAS MUÑOZ
M ª LUISA SANTANA PEREZ
FRANCISCO HERNANDEZ ARTILES
5 th & 6 th PRIMARY
CPEIPS SAN MIGUEL ARCHANGEL
MATILDE SANCHEZ CABRERA
CARLOS MEDINA TRUJILLO
6 th PRIMARY
2 .- MODE OVEN SOLAR
CENTER
DIRECTOR
teacher responsible
LEVEL
CPEIPS SAN MIGUEL ARCHANGEL
MATILDE SANCHEZ CABRERA
MAXIMUM SANTANA SANTANA
2 º ESO
IES VALLE DE GUERRA ANDREW
ABRANTES Bethencourt
MARGARITA Modolell Mainou
1 º and 2 º ESO
IES SANTIAGO SANTANA DIAZ
FELISA GONZÁLEZ EL JABER
JOAQUIN MIRALLES MARTIN
1 º ESO
IES MAYOR BARNABAS RODRÍGUEZ
Jesus de las Heras RODRÍGUEZ
Jose Antonio Mendez MONTEVERDE
2 º ESO
IES VIRGEN SNOW
JOSÉ ROBERTO RODRIGUEZ HERNANDEZ
PELLICER MESTRE

1 º ESO 3 .- CAR TYPE PHOTOVOLTAIC
* Photovoltaic cells and the motor of 12 V will be provided to participants by the program of Environmental Education Programs Unit Directorate General of Planning and Innovation Education. Contact the coordinator or program coordinator to cell 928 204999 or 922 592756.
CENTER
DIRECTOR
teacher responsible
LEVEL
CPEIPS SAN MIGUEL ARCHANGEL
MATILDE SANCHEZ CABRERA
JOSÉ JUAN MARRERO CABRERA
4 º ESO
IES Luis Cobiella CUEVAS
FRANCISCO JOSÉ CAMACHO PEREZ
JUAN CARLOS HERNANDEZ HERNANDEZ
3 º ESO
C / León y Castillo, n º 57 Avenida Buenos Aires, n º 5 Edf Mapfre-Guanarteme, Planta 5 ª Edificio Tres de Mayo, 4th Floor 35071 Las Palmas de Gran Canaria 38071 Santa Cruz de Tenerife Tel: 928 30 76 00 Fax: 928 38 40 22 tel: 922 59 25 00 Fax: 922 592 580 2
IES VALLE DE GUERRA
ANDREW ABRANTES Bethencourt
ALBET Madinaveitia MARTIN
3 º ESO
IES FERNANDO Sagaseta
JOSEPH DANIEL CANO CASTRO
MARCOS MORENO MARTÍN
4 º ESO
IES SANTIAGO SANTANA DIAZ
FELISA GONZÁLEZ EL JABER
JOAQUIN MIRALLES MARTIN
3 º ESO
IES Tafira
PALOMA GARRIDO
ANTONIO HERNANDEZ SANTANA
3 º ESO
4 .- TYPE EQUIPMENT SOLAR THERMAL THERMOSYPHON
CENTER
DIRECTOR
teacher responsible
LEVEL
IES VALLE DE GUERRA
ANDREW ABRANTES Bethencourt
ALBERTO Madinaveitia MARTIN
1 º BACH . IES FERNANDO
Sagaseta
JOSÉ CASTRO CANO DANIEL MORENO MARTÍN MARCOS

1 º BACH. IES

PUERTO DE LA CRUZ DOMINGO MIGUEL GONZÁLEZ GONZÁLEZ HERNÁNDEZ PÉREZ

1 º CFGM

IES EL CALERO ANGEL C. CASIMIRO LUCAS PÉREZ SÁNCHEZ MEDINA

2 º CFGM
GRANADILLA OF ABONA
IES ANTONIO MENDEZ MARCOS MARTIN CASANOVA
ORAMAS
2 º BACH.
CALENDAR AND DEADLINES FOR IS AS FOLLOWS: DATE

ACTION
Before April 15, 2008
Presentation at the Teachers of the reports of progress in construction of prototypes and link in digital format on the website http://www.renovae.org/olimpiadasolar/ Olympics
Before April 21, 2008
The CEP will send the reports to the program unit in Las Palmas
15 and May 16, 2008 Final
regional and transnational at the facilities of the ITC in Pozo Izquierdo

Tuesday, February 26, 2008

Average Dress Size Of Women In America

Solar Battery Calculations

electric battery
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car accumulator. Called
battery, electric battery or just battery, the device that stores electrical energy using electrochemical methods and subsequently returns almost entirely, this cycle can be repeated by a number of times. This is a secondary electric generator, ie a generator can not operate without electricity previously supplied him with what is called charging.
also often called battery as many times several of them are connected in series to increase the supply voltage. Thus, a car battery is made internally by 6 elements accumulator lead-acid type, each of which supplies electricity at a voltage of about 2 V, so that all the usual 12 V supply, or 12 items at 24 V for trucks.
The term battery, in Castilian, called the non-rechargeable power generators. Both battery and battery are terms from the early days of electricity, in which several cells or cells - in the first case, one above another, "stacked", and the second, attached laterally, "on battery" , as is done today in order to increase the magnitude of electrical phenomena and to study them systematically. This explanation suggests that either serve to any names, but the custom has fixed the distinction. Contents
[ show]
1 Principles operation

2 History 3 Types of accumulators
3.1 lead accumulator battery
3.2 3.3
alkaline batteries alkaline manganese batteries
3.4 Nickel-Hydride (Ni-H)
3.5 Nickel-Cadmium Batteries (Ni-Cd) 3.6
Lithium-Ion Battery (Li-ion) Batteries 3.7
Lithium Polymer (Li-Poly)
3.8 Fuel Cells
3.9 Capacitor High
capacity 4 Parameters of an accumulator
5 Comparative table of different battery types
6 batteries as contaminants

7 See also 8 External links
/ /

Operating principles [edit ]
The operation of a battery is based essentially on a type of reversible process, ie a process whose components are not consumed or lost result, but merely transformed into another, which in turn can return to the state first in the right circumstances. These circumstances are, in the case of batteries, the closure of the external circuit during the discharge process and the implementation of a stream, also outside during the load.
turns out that such processes are quite common, oddly enough, in the relations between the chemicals and electricity during the process called electrolysis , and voltage generators or batteries . The nineteenth century researchers devoted many efforts to observe and investigate this phenomenon, which was named polarization.
An accumulator is thus a device that takes the polarization achievable limits, and generally consists of two electrodes the same or different material, immersed in an electrolyte .

History [edit ]
Alessandro Volta announced his invention of the stack to the Royal London Society, March 20 of 1800. Johann Wilhelm Ritter
built his electric battery 1803. Like many others who followed, was a theoretical and experimental prototype, with no possible practical application.
In 1860 , Gaston Plante developed the first model of lead-acid battery with pretensions to be a usable device, which was only very relatively, so it was not successful. In the late nineteenth century, however, the electricity was rapidly becoming everyday items, and when I planted again to publicly explain the features of your battery, in 1879, had a better reception, so it began to be manufactured and used almost immediately, beginning an intense and ongoing process of development to perfect and overlook their shortcomings, a process that continues today.
Thomas Alva Edison invented in 1900 , another type of battery with electrodes of iron and nickel, whose electrolyte is potassium hydroxide (KOH). First commercialized in 1908 , and are the basis of current models alkaline rechargeable whether or not.
Also by 1900, in Sweden, Berg invented Junger and Ni-Cd battery, which uses cadmium anodes instead of iron, being very similar to that of ferronickel in other characteristics.

battery types [ edit]
As their size and other external features are concerned, this available list, since many of them are common to batteries and accumulators and are standardized.
As far as concerns their internal nature, are commonly found in trade accumulators of the following types:

lead accumulator [edit ]
is composed two lead electrodes , so that when the device is downloaded, is in the form of lead sulfate (PbSO4 II) embedded in a matrix of metallic lead (Pb), the electrolyte is a solution of sulfuric acid. This type of battery is still used even in many applications including the automotive . Its operation is as follows:
During the initial charging, lead sulfate (II) is reduced to lead metal at the negative pole, while the anode forms lead oxide (IV) (Pb O2) . Therefore, it is a dismutation process . No Hydrogen is released, since the reduction of protons to elemental hydrogen is kinetically hindered at a lead surface, a favorable characteristic is reinforced by including the small amounts of silver electrodes. Hydrogen evolution would cause slow degradation of the electrode, helping it crumble around the same mechanically, irreversible changes that shorten the battery service life.
During discharge processes are reversed loading. Lead oxide (IV) is reduced to lead sulfate (II), while the elemental lead is oxidized to sulfate also give lead (II). Exploit the electrons exchanged in the form electric current through an external circuit. It is, therefore, of a switch. The term commences elementary processes are:
PbO2 + 2 H2SO4 + 2 e--> 2 H2O + SO42-
PbSO4 + Pb + SO42--> PbSO4 + 2 e-
low discharge in the concentration of sulfuric acid because it creates lead sulphate and increases the amount of water released in the reaction. As concentrated sulfuric acid has a density greater than the dilute sulfuric acid, the acid density can be an indicator for charging status of the device.
However, this process can be repeated indefinitely, because when the lead sulfate crystals form very large, and not respond well to the processes outlined, so you lose the essential characteristic of reversibility. We then say that the battery is sulfated and must be replaced by a new one.
The batteries of this type sold today use a paste electrolyte, which does not evaporate and does a lot more comfortable and safer to use.

alkaline battery [edit ]
also called ferronickel, the electrodes are shaped steel plates with honeycomb mesh inserts nickel oxide (NiO), which form the positive electrode, and ferrous oxide (FeO) , the negative, the electrolyte being formed of a solution of potassium hydroxide (KOH). During the load is an anodic oxidation process and a cathodic reduction , becoming the nickel oxide in nickel and ferrous oxide in metallic iron. This reaction occurs in reverse during unloading.
In 1866, George Leclanché invented in France the "dry cell" (Zinc-Manganese Dioxide) system that still dominates the world market for primary batteries. Alkaline batteries (for "high power" or "long life") are similar to those of Leclanché, but instead of ammonium chloride, lead chloride or sodium potassium. They last longer because zinc is not exposed to an acidic environment such as ammonium ions that cause the conventional battery. As the ions move more easily through the electrolyte, produces more power and a more stable flow.
The higher cost stems from the difficulty of sealing the cell against leakage of hydroxide. Almost all are shielded, which prevents the shedding of the constituents. However, this shield does not have unlimited time. Alkaline dry cells are similar to common dry cells, with the following exceptions:
the electrolyte is basic (alkaline), because it contains KOH
the inner surface is rough container Zn, this provides a larger contact area.
Alkaline batteries have a longer shelf life than the common dry cells to better withstand constant use.
voltage alkaline battery is close to 1.5 v. During unloading, the reactions in the alkaline dry cell are:
Anode: Zn (S) + 2 OH-(aq)  Zn (OH) 2 (s) +2 e-
Cathode: 2 MnO2 (S) + 2 H2 O (l) + 2 e- 2MnO (OH) (s) + 2 OH-(ac)
Global: Zn (s) +2 MnO2 (s) 2H2O (l)  Zn (OH) 2 (c) + 2MnO (OH) (s)
The anode is made of a paste of zinc amalgamated with mercury (total 1%), carbon or graphite.
complex machines are used to and high energy consumption. In versions 1.5 volt, 6 volt and 12 volts are used, for example, remote controls (remote control) and alarms.

alkaline manganese batteries [edit ]
with a mercury content of around 0.1% of its total weight is an enhanced version of the previous stack, which has replaced the chloride ion conductor ammonium and potassium hydroxide (hence the name of alkaline). The battery container is steel, and disposition of zinc and manganese oxide (IV) is the opposite, placing the zinc powder now in the middle. The amount of mercury used to regularize the discharge is higher. This gives more time, more constancy in time and better performance. By contrast, the price is higher. It also provides an emf of 1.5 V. It is used in most consumer devices such as portable recorders, motorized toys, electronic flashes.
The zinc is amalgamated anode and cathode is a polarizer material is based on manganese dioxide, mercuric oxide intimately mixed with graphite, and in rare cases Ag2O silver oxide (the latter two are used very expensive, dangerous and toxic), to reduce its electrical resistivity. The electrolyte is a potassium hydroxide solution (KOH), which presents a very low internal resistance, which can not have internal discharges and energy can be stored for a long time. This electrolyte in the battery business is hardened gelatin or derivatives of cellulose.
This type of battery is manufactured in two ways. In one, the anode consists of a corrugated zinc strip, spirally wound from 0.051 to 0.13 mm in thickness, which is Amalgam after assembly. There are two strips of absorbent paper interdevanadas alkali resistant paper strip with zinc, zinc so that it extends to the top and bottom paper. The anode is insulated from the metal box with a polystyrene sleeve. The upper the battery is made of copper and makes contact with the strip of zinc to form the negative terminal of the battery. The battery is sealed with a grommet or eyelet made of neoprene. The battery casing is chemically inert to the ingredients and form the positive electrode.

Alkaline Zinc 14% (anode) Toys, tape players, cameras, recorders
22% manganese dioxide (cathode)
Coal: 2%
Mercury: 0.5 to 1% (anode)
potassium hydroxide (electrolyte) Plastic
and 42%
sheet contains an alkaline compound called potassium hydroxide. Its duration is six times greater than that of zinc-carbon. It is composed Manganese dioxide, Potassium Hydroxide, Zinc paste amalgamated with Mercury (total 1%), carbon or graphite. According to the European Directive of March 18, 1991, these batteries can not exceed the amount of 0.025% mercury.
This type of battery has some cons:
An alkaline battery can contaminate 175,000 liters of water, which becomes the average water consumption of all the lives of six people.
An ordinary battery, also called zinc-carbon, can contaminate 3,000 liters of water.
nasal septum perforations.
Zinc, Manganese, Bismuth, Copper and Silver: These are toxic substances that produce various alterations in human health. Zinc, Manganese and copper are essential for life, in minute amounts, toxic in high doses. Bismuth and Silver are not essential for life.

Nickel Hydride Batteries (Ni-H) [edit ]
utilize a hydroxide anode and cathode nickel alloy metal-hydride batteries. Each cell of Ni-H can provide a voltage of 1.2 V and a capacity between 0.8 and 2.3 Ah. Its energy density reaches 80 Wh / kg. These batteries are affected by the so-called memory effect, which is limited in each charging voltage or the capacity (because of a long, high temperature or high current), precluding use all your energy.

Nickel-Cadmium Batteries (Ni-Cd) [edit ]
They use a nickel hydroxide anode and cathode of a compound of cadmium . The electrolyte is potassium hydroxide . This configuration of materials can recharge the battery once it is exhausted, for reuse. Each NiCd cell can provide a voltage of 1.2 V and a capacity between 0.5 and 2.3 Ah. However, its energy density is only 50 Wh / kg, which means they have to be recharged every so often. They are also affected by memory effect.

Batteries Lithium-Ion (Li-ion) [edit ]
The Battery Lithium-Ion (Li-ion) use a lithium anode and a cathode Ion. Its development is more recent, and can reach densities of around 115 Wh / kg. Also, do not suffer from memory effect .

Lithium Polymer Batteries (Li-poly) [edit ]
are a variation of Lithium-Ion Battery (Li-ion) . Its characteristics are very similar, but allow a higher energy density and a significantly higher discharge rate.

Fuel Cells [edit ]
The fuel cell is not an accumulator itself, although it converts chemical energy into electricity and is rechargeable. Works with hydrogen . (Other fuels such as methane or Methanol are processed prior to hydrogen).

high capacity condenser [edit ]
Although high-capacity capacitors electrochemical batteries are not strictly speaking, are now getting big enough capacity (several farads, F) as that they can be used as a battery when powers to provide small.

parameters of a battery [edit ]
The voltage or potential (in volts ) is the first parameter to consider, as is what usually determines whether the accumulator should use to its intended . Is fixed by the reduction potential of redox couple used, generally between 1 V and 4 V per cell.
The current that can supply the item, as ampere (A), is the second factor. Is particularly important in some cases the maximum current obtainable; p. eg., starter motors for cars require brutal efforts of the battery when put into operation (tens of A), so you must act for a short time.
electrical capacity is measured in practice by reference to the time of loading and discharge in Ah. SI unit is the coulomb (C).
1 Ah = 1000 mAh = 3600 C, 1 C = 1 Ah/3600 = 0.278 mAh.
Note, however, that when you give directions in the body of the batteries or their packaging, such as Please charge at C/10 for 12 hours, the letter C does not refer to Coulomb, but the maximum load may receive the battery, so that in the previous case, if the capacity of 1200 mAh battery is no, you should applying a charging current = 120 mA during 1200-1210 the number of hours indicated.
The stored energy is usually measured in Wh ( watt-hour), the SI unit is the joule (unit) .
1 Wh = 3600 J = 3.6 kJ 1 J = 0.278 mWh
The resistance of the batteries is much lower than that of the batteries, allowing them to supply loads more intense than the latter, especially as transient. For example, the internal resistance of a lead-acid battery is of 0.006 ohm , and other Ni-Cd, from 0.009 ohm.
Finally, another important feature of a battery is its mass, ie, weighing, and the relationship between it and the electrical capacity (Ah / kg) or energy (Wh / kg) that can restore. In some cases it may also occupy a significant volume (m3 or liters).
The yield is the percentage ratio between the power received in the process of loading and delivery to the battery during discharge. The lead-acid battery is rated at over 90%.

comparison chart of different types of battery [edit ]

Type Power / weight per item
Voltage (V)
Duration (number of charge) Charging time

descargapor Auto-month (% of total )
Lead
30-50 Wh / kg 20-30

2 V 8-16h

5% Ni-Cd

48-80 Wh / kg 1.25 V
1251

1h
20% Ni-H

60 -120 Wh / kg

100-200 V 1.25-4h 2h

30%

Li-Ion 110-160 Wh / kg

400-500 V 3.16-4h 2h


10% Li -Po
100-130 Wh / kg
3.16 V
10-5000 (a thousand years of life) 1h-1.5h

10%

batteries as contaminants [edit ]
As seen , batteries contain heavy metal and chemicals, many of them harmful to the environment . It is very important do not throw them away (in most countries this is not allowed) and take them to a recycling center. Currently, most vendors and specialty shops are also in charge of the batteries.
In Mexico, the release of mercury in batteries has occurred as a result of using three types of batteries: the oxide of mercury, the C-Zn and alkaline. In the first type, the metal content is 33% and were used in presentation and in other button sizes, from 1955. Theoretically, it ceased production in 1995, although there are sources that indicate that this process continues in Asia and are distributed in the international market. For the second and third types of batteries, it is known that for several decades before 1990, they added mercury (0.5 to 1.2%) for best performance, with the highest alkaline content, also containing coal is sometimes contaminated with this metal naturally. In 1999, the INE requested an analysis of samples from three different brands of AA batteries normally consumed in Mexico, of which two were of Asian origin (of C-Zn) and alkaline European origin. The results were as follows: for those of Asian origin, the values \u200b\u200bobtained were 0.18 mg / kg and 6.42 mg / kg, in terms of European origin the result was 0.66 mg / kg, and these amounts, equivalent to parts per million, do not exceed the limits set out in 0.025% Heavy Metals Protocol adopted in 1998 in Aarhus, Denmark, by the member countries Economic Commission for Europe (UNECE). The previous sample was an isolated incident and it would be in the future to further analyze the mercury content in the largest possible number of brands. According to calculations presented in Table 10, an estimated 1,232 tons have been released over the past 43 years. In Mexico, other sources of mercury the industry are chlorine / soda, which is used in the process; also products such as thermometers, various types of switches and fluorescent lamps. According to official information and is not removed mercury in Mexico, although data on imports amounting to 130 tonnes in the last three years. Mercury is a local and global pollutant par excellence. Environmental chemistry for this toxic metal is very complex, given its properties, it evaporates at room temperature, the atoms travel far, to be deposited in bodies of water are transformed into organic mercury (methyl mercury) for aerobic and anaerobic mechanisms , this is how it becomes contaminated, among others, fish and seafood. Another form of food poisoning mercury is inhalation of vapors from the mercury in its metallic form indoors. Methyl mercury can cross the placenta, accumulate and cause damage to the brain and tissues of infants who are particularly sensitive to this substance. There may also be exposed to mercury through breast milk, in this case, the effects can cause developmental problems, delays in walking, speech or mental lack of coordination, blindness and seizures. In adults, chronic exposure through ingestion of contaminated food, usually fish, can cause personality changes, loss of vision, memory or coordination, deaf or hard on the kidneys and lungs. The International Agency for Research on Cancer (IARC, for its acronym in English) of the World Health Organization (WHO) considers to methyl mercury and its compounds as possibly carcinogenic to humans (Group 2B). Methyl mercury, which is the most toxic, accumulates in fish tissue, the larger specimens and older tend to concentrate higher levels of mercury.
Manganese: As the most used battery types are alkaline and C-Zn (approximately 76% of total batteries), manganese oxide contained in them is more polluting than volume has been released into the environment over the past four decades, which is about 145.917 tons (Table 10). Regarding adverse effects on human health caused by this substance, several studies suggest serious neurological effects from oral exposure to manganese. For example, a study by the WHO reports that in 1981 poisoning was reported in a community in Japan, due to near a water well were buried around 400 pieces of batteries at a distance of approximately two meters, causing 16 cases of poisoning, three were fatal (including suicide). Manganese levels detected in water from that well was 14 milligrams per liter while in other two wells reached levels 8 and 11 milligrams per liter. Community subjects exhibited disorders of psychological and neurological related to intoxication.

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PV section

The section of the wires in a solar photovoltaic installation.

ANNEX

The calculation of the drivers section
The section of the wires in a solar photovoltaic installation has to fit perfectly to the technical characteristics of the installation. Perform a calculation of the correct drivers section, it is essential because normally work with low voltages (12 or 24 V) and high intensities Failure to make a good sized drivers can be significant losses.
The value of the resistance of a conductor is calculated by the following formulas:

Ó (1)
Where:
R = Resistance = Resistivity
W
L = length in meters
S = cross section in mm2
= Conductivity (inverse of resistivity)

According to Ohm's law (2)
Substituting the value of R of the formula (2) in (1), it follows that:
After

Ó Generally the driver who Copper is used and the value of its resistivity is 0.01786. Si:

then
Being
finally the formula:
where:
S = section in mm 2 L = Length in m to the receiver I = current in A Va-Vb = Voltage drop in V

Sunday, February 24, 2008

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Thursday, February 21, 2008

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TAURO-2000/3000 Series Remote Terminal Units (RTUs as abbreviation) are essentially intelligent electronic devices designed specifically to perform remote control functions, as well as for measuring, recording and transmission of data, images and alarms.
RTUs TAURO-2000/3000 series, are supplied by external battery, rechargeable via network 110/220 VAC, or by solar panel. Due to its very low consumption (less than 10mA @ 12Vdc) have been installed in remote locations but not deispongan access to mains, forming an efficient interface or front-end for SCADA systems (acronym for Supervisory Control And Data Acquisition ) in a variety of industrial applications.
This product is available in OEM version for system integrators, with great advantages for its versatility and low cost.
Currently, one of the preferred communication channels for transmitting data and alarms, is the cellular network GSM / GPRS, but also are widespread applications in which direct links are used by Ethernet, RS232/422/485 , should have physical links, cable, fiber optics, etc.
remote units TAURO-2000/3000 Series, as well as measurement, recording and transmission of data can be programmed to generate alarms and automatic transmission via SMS messages to mobile phones as well as for sending mail electronic detection warning certain faults in the plant exceeded preset thresholds for the parameters previously selected, notifying maintenance personnel as well the location and nature of the effect detected. DESCRIPTION

TAURO-2000/3000 Series of remote units includes the Model 2000 and 3000. The difference between the two focuses primarily on the number of analog inputs. The Taurus Model-2000 has 8 differential analog inputs, while the Taurus Model-3000 is available in versions 8, 16 or 24. The other specifications are essentially the same, as indicated by the corresponding descriptive brochure. :

FEATURES Ultra low-power : 10mA @ 12 Vdc at full capacity; 1mA at rest.
Large capacity data storage via internal memory of 64 or 128MBytes
Registration data and alarms with time reference by
Very high resolution A / D converter 20-bit
Possibility of 8, 16 or 24 differential analog inputs
Up A total of 6 serial ports (RS232/422/485, Ethernet, SDI-12, CMOS, etc.).
Optional integrated modem for communications via GSM / GPRS / CDMA Radio
optional external modem point to point radio links
Protection Integral surge all I / O by gas discharge, transzorbs, varistors, and coil resistance
shock power supply built to regulate external battery charge, allowing direct connection to the mains 110/220VAC and solar panels. Support for
WEBCAMS connection for the capture and transmission of color images by the same communication channel selected for data transmission.
very advanced design in a single circuit board, tropicalized by moisture protective layer with a high degree of integration (6 layers), and also equipped with a comfortable terminal connections.

Wednesday, February 13, 2008

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Astronomers discover most distant galaxy in the universe

Astronomers have discovered, through space telescopes Hubble and Spitzer NASA, which could be the farthest galaxy ever seen that before the formation of which dates back 12,800 million years.

The galaxy, called A1689-zD1, is located about 13,000 light years away from our Solar System. He was captured by the Near Infrared Camera and Multi-Object Spectrometer (NICMOS) Hubble and Spitzer's infrared camera, data of 700 million years after the birth of the universe with the Big Bang.

The images show the bright young galaxy known so far in a moment of transformation in the 'dark ages', shortly after the' big bang (big bang) but before the first stars were formed. Current theories suggest that the 'dark ages' began about 400,000 years after the big bang.

"We were surprised when we discovered that bright young galaxy that goes back to 12,800 million years ago. They are the most detailed images of an object so far taken so far," said astronomer Garth Illingworth of the University of California (Santa Cruz ) and a member of the research team.

The images used to study the formative years of the birth of galaxies and their evolution. We also provide information on the types of objects that could have helped end the dark age.

The Hubble telescope has allowed astronomers to look farther and farther in time and observe galaxies in the earliest stages of evolution. "This galaxy is probably one of many that helped end the dark ages," said astronomer Larry Bradley of Johns Hopkins University in Baltimore and author of the study.

This distant galaxy is also an 'ideal target' for Hubble's successor, the James Webb Space Telescope (JWST), to be launched in 2013. "This galaxy is one of the first to observe with the JWST," said Holland Ford of Johns Hopkins University.

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Index of information a compliment on the blog "

1. Fundamentals of acoustics.
2. Measuring instruments.
3. Cables and connectors.
4. Microphones.
5. Speakers and headphones.
6. Filters and speakers.
7. Amplification (previous)
8. Power amplifier.
9. Equalizers.
10. "Crossovers" electronic - multi-effects.
11. Mixers.
12. Turntables, tapes, magnetic disks, CDs, sint.
13. Cinema Sound (home-cinema).
14. Tuning
15. Sound installations and sound practices. (Team "Sonelco" coach PA) (Panel Alecon PMB-135)