Kawasaki 840015 Black 10-Piece Heat Gun Kit

Special Price!!! Kawasaki 840015 Black 10-Piece Heat Gun Kit

Kawasaki 840015 Black 10-Piece Heat Gun Kit
Click for larger image and other views

Kawasaki 840015 Black 10-Piece Heat Gun Kit

>> Click here to update Cheapest prices for Kawasaki 840015 Black 10-Piece Heat Gun Kit <<

Kawasaki 840015 Black 10-Piece Heat Gun Kit Feature

  • Kawasaki black 10-piece heat gun kit
  • Built with powerful 12.5-amp motor
  • Features dual speed settings
  • Also features dual temperature range
  • Includes wide jet, halfond jet, reduction jet, plain jet, scraper handle, 3 scraper heads, and heat gun cradle


Kawasaki 840015 Black 10-Piece Heat Gun Kit Overview

10 PC HEAT GUN KIT - 1 pc heat gun. 120V/60Hz. Rated power 8.3A or Low setting 12.5A. Low 400l/Min 14 CFM or high setting 550L/Min. 19.5CFM. 375 or 495 centigrade. 9 pc accessories wide jet, halfond jet, reduction jet, plain jet, 3 pc scraper heads. 1pc double injection handle holder for blade. 1 pc stand. ABS, soft spray (black) green head and bottom. Grey blow mold case with color sleeve housing material. Green switch. 6 feet cord wire length.



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Monitor Technology Explained

Monitor types

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CRT (cathode ray tube) monitors

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CRT (cathode ray tube) monitors are a now archaic display technology that was popular even into the 21st century. A cathode ray tube contains multiple electron guns, which fire electrons through a vacuum onto phosphor "pixels". Three colours of phosphor "pixels" are present (red, green and blue), and deflection by a magnetic field determines which ones will be lit. Although colour reproduction and contrast were excellent in later models of CRT monitor, modern LCD monitors (see below) are vastly thinner and lighter, whilst providing outstanding contrast ratios, good colour reproduction and response times. A list of now-redundant terms related to CRT monitors can be found in the final section of this PC Monitors article.

LCD (liquid crystal display) monitors

LCD screens are the current standard of display for most PC monitors, TV screens and electronic devices such as digital cameras, mobile phones and MP3 players. LCD PC monitors usually contain two polarising filters with liquid crystal filled cells or pixels. A backlight creates light which passes through the first filter, whilst electrodes regulate a current which passes through the liquid crystals and determines their alignment. The electrodes regulate the alignment of the crystals, determining the light colour and intensity of the image.

OLED (organic light emitting diode) monitors

OLED (organic light emitting diode) is an emerging screen technology which is yet to make it into the PC monitor mainstream due mainly to high costs currently associated with OLED monitor manufacture. OLED monitors use the principle of electroluminescence; using materials which glow when a current is applied, rather than relying on a backlight. This means that the monitors are much thinner and lighter, have an unmatched contrast ratio, colour reproduction and response time and can even be made flexible. Although this technology isn't currently used on PC monitors, smaller screens such as those on high-end touch screen phones, digital cameras and the beautiful 11-inch Sony XEL-1 TV (featured in the video below) feature OLED technology.

PC monitor terminology

Monitor backlight

Backlights are used in LCD monitors to illuminate the liquid crystals, as explored previously. There are two main types of backlight. The most common type in the PC monitor is a CCFL (cold cathode fluorescent lamp) backlight, which does a very good job at illuminating the screen to various intensities.. CCFL lamps are good at illuminating the screen to various intensities, and in the case of WCG (wide colour gamut) CCFL lamps - provide a broad colour gamut of up to 96% NTSC colour space.

Some manufacturers use an alternative type of backlight, involving the use of coloured (red, green and blue) LEDs (light emitting diodes) to illuminate the screen. Because the intensity of LEDs can be individually controlled (as well as with high precision and evenness), variable contrast can be used across the screen and superior contrast can theoretically be obtained. LED backlights are also considerably more efficient, are mercury free and provide lower heat output than CCFL lamps. Using RGB LEDs also broadens the monitor's colour gamut considerably (taking it to up to 114% of the NTSC colour space).

An alternative technology is the use of highly efficient 'white' LEDs around the border of the screen (usually referred to as 'edge-lit'). A real advantage of edge-lit LED technology over any behind-the-screen backlighting is that you can create screens that are considerably thinner and lighter. The purity of light and responsiveness to various light intensities can also provide a contrast and perceived luminance advantage over CCFL backlighting, although the actual colour gamut is not typcially extended beyond that of regular CCFL lamps. Without a suitably high colour depth (as provided by PVA/IPS and other more expensive panels), it is worth nothing that a broad-gamut backlight offers little advantage.

Colour gamut

This is the range of colours, from the visible spectrum, that a PC monitor is capable of producing. The image below shows the colours of the visible spectrum, with triangles representing NTSC (national television system committee; i.e. the theoretical maximum colour gamut of images broadcast on TV) and the typical colour gamut of CCFL backlit monitors, white LED backlit monitors and red-green-blue (RGB) LED backlit monitors. Although not shown in the image, typical future OLED PC monitors will most likely be represented by a significantly larger triangle - representing an exceptionally broad colour gamut.

Colour depth

The colour depth refers to the number of colours a monitor can process and display, based on internal processing.Most modern monitors are twisted nematic (TN) panels.TN panels are capable of processing 6-bits per pixel (3x6= 18-bits in total, or 262,144 colours). Dithering is used to display a slightly different shade of a colour each refresh of the screen, and therefore the apparent colour depth approaches 24-bit colour (16.7 million colours). PVA and IPS LCD panels are capable of outputting 8-bits or even 10-bits per pixel, and can therefore transition 24-bit or 30-bit colour (although actual output will depend on the quality of the backlight as well). In the future, OLED monitors should surpass this colour depth, as the pixels emit light directly.

N.B. 32-bit colour, as used in Windows, is not a true colour depth. It represents 24-bit colour with an additional 8-bits of non-colour data (alpha, z, bump data etc.).

Contrast ratio

The contrast ratio is a measure of the relationship between the intensity of the brightest white and the darkest black a monitor can display. Because manufacturers of PC monitors seem to use their own 'unique' way of measuring the contrast ratio, however, figures are often overstated and not comparable to the figures used by other manufacturer. Additionally, some manufacturers have begun flinging about huge "dynamic contrast ratio" numbers as well. Whereas the static contrast ratio is a measure of the ratio of the darkest black to brightest white displayed on the monitor at any given time, dynamic contrast is a measure of the temporal intensity difference. This effect is often amplified by varying the intensity of individual backlighting elements. Different areas of the screen will therefore be illuminated to different intensity (this is especially effective with LED backlighting), resulting in a much broader contrast ratio. The main problem with how dynamic contrast ratios have been implemented so far is that the overall effect is unnatural and even painful to look at - most users will disable the dynamic contrast option on their monitor. Most monitors have poorly implemented their dynamic contrast ratios, making the viewing experience unpleasant - users will often disable this feature. Since OLED monitors have no backlight and the pixels emit light directly; insane contrast ratios will actually be meaningful and will look more natural without a backlight interfering.

Luminance or brightness

Luminance is measured in cd/m2 (candelas per sq. meter) and is an expression of the levle of light emitted by a PC monitor Usual values for modern moderns are around 250-300cd/m2, which are very respectable and more than adequate. LED-backlit monitors may have a luminance exceeding 350cd/m2 and PC monitors of the future, such as OLED monitors, will surely increase this figure further.

Display resolution

The display resolution of a PC monitor generally refers to the number of pixels displayed in the horizontal by vertical dimensions. For a CRT monitor, this number can be varied mechanically by the monitor itself and therefore the display resolution is variable. For an LCD or OLED monitor, the resolution is fixed by the number of pixels laid out horizontally and vertically inside the monitor, and is referred to as the optimal or native resolution.

Response time

The response time is an indication of the time, in milliseconds, for the pixels of an LCD or OLED monitor to transition from one state to another. A faster response time in a monitor means a more fluid image with less trailing or "ghosting", which used to be a problem with the earlier generations of LCD displays. Traditionally, the response time was indicative of the time it took for a PC monitor to transition from "on" (white) to "off" (black) state and then back again. In 2005, however, it was deemed more useful for manufacturers to state a "grey to grey" response time; the time it takes to transition from one shade of grey to another. This is more representative of a real-world scenario as a pixel will rarely switch from an on to an off state and back again.
The response times (grey-to-grey) of modern PC monitors are usually around 2-5ms. This makes them perfect for watching movies and playing games, and you'd be hard-pushed to notice any distracting trailing or ghosting. Despite this, the response times are being pushed even further as technology improves. OLED monitor response times, for example, are expected to be around 0.01ms or even lower.

Screen size

The screen size refers to the diagonal size of the screen, usually in inches, from the top of one corner to the opposite bottom corner. For CRT monitors, this measurement includes the casing of the PC monitor and another (lower) figure for the "viewable area". For LCD monitors, this figure traditionally only referred to the viewable area of the screen (i.e. inside the bezel) - but many manufacturers have reverted to measuring the entire screen size to bump up the numbers.

Aspect ratio

A measure of the horizontal by vertical screen size. Traditional square monitors have an aspect ratio of 5:4, whereas most widescreen PC monitors have an aspect ratio of 16:9 or 16:10.

Viewing angle

This is the angle around which the screen can be viewed without the image becoming considerably altered.. Early LCD monitors suffered from fairly limited viewing angles, and even small off-centre viewing was impossible. Modern LCD monitors have much wider viewing angles, usually of around 120-170 degrees (perhaps slightly higher for PVA and IPS panels|even higher for PVA/IPS panels}) and screens of the future should be viewable from most angles in front of the screen without distortion.

Outdated technology

Refresh rate

For CRT monitors, refresh rate can determine the likelihood of your monitor giving you eyestrain and/or a headache. It is a measurement, in Hz, of the number of times pixels on the screen are drawn in a second. If the refresh rate is too low (generally below 85Hz) flickering ensues and the associated headaches and eyestrain follows. Although LCD monitors still have a "refresh rate", it is only important for specialist applications (for example 3D viewing using shutter glasses) and if you wish to disable v-sync without the commonly associated tearing. Because LCD monitors contain liquid crystals which merely act as shutters against a backlight, this flickering phenomenon does not occur, even if the refresh rate of the monitor is a seemingly low 60Hz.

Shadow mask

A sheet of thin metal with tiny holes in it is referred to as a shadow mask. This was a popular technology for traditional CRT monitors, where three electron guns would fire electrons through the holes and focus them at a specific point on the phosphor surface. Unwanted electrons are therefore shadowed and the phosphors which are lit up are precisely controlled.

Aperture grill

This was the technology of choice for Sony Trinitron CRT monitors. Electrons are fired through tiny vertical wires (which make up an aperture grill) and are focussed on the phosphor screen to illuminate it. This technology allowed a flat screen for a flat screen that is less likely to produce eyestrain.

Slot mask

Slot masks are a combination of aperture grills and shadow masks, and were a less common PC monitor technology. Slot mask monitors consist of vertically aligned slots rather than small holes, which improves brightness by increasing electron transmission.

Dot pitch

This is the distance, in millimetres, between two phosphors of the same colour. A screen with a lower dot pitch therefore gives a sharper image. The method of which dot pitch is measured differs between aperture grill and shadow mask monitors. For aperture grills it is the horizontal distance between two {like-coloured phosphor "stripes"|phosphor stripes of the same colour (and therefore sometimes referred to as 'stripe pitch'), whereas for shadow mask monitors it is the diagonal distance between two phosphor dots of the same colour.

For additional information about OLED and other future technology, please read our future technology article. If you would like further information about OLED technology, please read the PC Monitors OLED article.

Monitor Technology Explained
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Special Price!!! Kawasaki 840015 Black 10-Piece Heat Gun Kit

Kawasaki 840015 Black 10-Piece Heat Gun Kit
Click for larger image and other views

Kawasaki 840015 Black 10-Piece Heat Gun Kit

>> Click here to update Cheapest prices for Kawasaki 840015 Black 10-Piece Heat Gun Kit <<

Kawasaki 840015 Black 10-Piece Heat Gun Kit Feature

  • Kawasaki black 10-piece heat gun kit
  • Built with powerful 12.5-amp motor
  • Features dual speed settings
  • Also features dual temperature range
  • Includes wide jet, halfond jet, reduction jet, plain jet, scraper handle, 3 scraper heads, and heat gun cradle


Kawasaki 840015 Black 10-Piece Heat Gun Kit Overview

10 PC HEAT GUN KIT - 1 pc heat gun. 120V/60Hz. Rated power 8.3A or Low setting 12.5A. Low 400l/Min 14 CFM or high setting 550L/Min. 19.5CFM. 375 or 495 centigrade. 9 pc accessories wide jet, halfond jet, reduction jet, plain jet, 3 pc scraper heads. 1pc double injection handle holder for blade. 1 pc stand. ABS, soft spray (black) green head and bottom. Grey blow mold case with color sleeve housing material. Green switch. 6 feet cord wire length.



SAVE NOW on the special offers below!

Available In Stock.

This Kawasaki 840015 Black 10-Piece Heat Gun Kit ships for FREE with Super Saver Shipping.

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Kawasaki 840015 Black 10-Piece Heat Gun Kit

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Infrared Wildlife Cameras - Trail Cameras Give a Fascinating Insight Into Wildlife Activity

Infra Red Wildlife trail cameras can provide a fascinating insight into the nocturnal and daytime movements of elusive species such as otter, deer, foxes and red squirrels.

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Infrared trail cameras are essentially mobile digital cameras which have a motion detection system that detects a human or animal intruder into an area, and triggers a camera which takes either a series of still images, or video footage.

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Primarily designed for hunters to scout deer patterns in a hunting zone, these cameras are now more and more used for wildlife observation.

BBC Countryfile recently featured their Stealth Cam Prowler HD infra red scouting camera, showing how they can be used to great effect to capture footage of elusive animals such as river otters and badgers.

The RHS Chelsea Flower Show coverage on BBC also recommends the use of these infra red cameras for people looking to see who or what is lurking around their garden at night, and suggested they are particularly useful for capturing footage of the nocturnal movements of the badger.

Infrared and incandescent wildlife cameras

Some trail cameras are equipped with an incandescent flash which works similar to a home compact camera. This flash although powerful, should not be used when capturing footage of nocturnal animals as a bright flash can often scare and disorientate the animal causing injury, and also attract unwanted attention from humans who may steal the camera.

The Spypoint infrared cameras and Stealth Cam Prowler HD trail cameras feature a Stealth IR system which uses a series of high power infra red LED emitters to illuminate the subject some distance in front of the camera.

These infrared cameras are invisible to the human and animal eye, and will take either still or video footage in complete darkness without alerting the subject to the fact it is on camera.

Which Trail Camera

There are so many wildlife cameras on the market today, it's often difficult to decide which is the best for you.

It really depends on a few different factors, but we have listed the most popular with their essential differences.

Most modern trail cameras utilise the SD memory card format and have their own built in, limited, storage capacity.

We recommend the SanDisk memory cards, and a capacity of 4Gb or more.

These memory cards can be swapped over on location, and the footage downloaded to your laptop when you get home for review.

Some cameras feature a LCD screen to review captured footage and this is ideal for on location checking of what the camera has captured.

Stealth Cam Prowler HD

This camera is the ultimate High Definition video camera, and is the perfect choice for obtaining high quality video footage in 1080P High Definition and also captures sound, so you can hear conversation and/or movement through foliage.

It uses a stealth infra red combined with an 8MP camera to capture high quality still footage.

The Prowler HD is the most popular trail camera for wildlife trusts as they often like to play back footage in visitor centres, or at meetings.

Spypoint PRO X

The Pro X from Spypoint is the ultimate still image camera, and features a 12MP CCD to capture ultra high quality still shots. It also captures video with sound but although not HD, we think it is fantastic quality, with rich colours, depth of field and detail.

PRO X also has a built in LCD screen for watching captured footage and is ideal for on location reviewing of what the camera trap has captured.

It also operates with a High Power Infrared emitter but has the most sensitive detection of any trail camera we have experienced.

The Stealth Cam Prowler uses a PIR detector to capture movement, but the PRO X goes a step further with a motion detector and a heat signature detector. This not only makes the Pro X ultra sensitive, but it means less false alarms as the unit will only trigger when it detects a real target, and means less false alarms with branches of trees moving near the sensor etc.

The Pro X as with all the IR/B and IR/C, can be powered by a 12V or Lithium battery pack for when you may need to leave your camera unattended for extended periods.

SpyPoint IR/A and IR/B Trail Camera

We think the Spypoint IR/B is the best allround trail camera for wildlife monitoring. It provides high quality still shots from the high resolution CCD camera, and also provides video footage in black and white at night, and colour during the day.

Using an Infra Red IR emitter, the subject never knows its photo has been taken.

Prostalk 2MP Nature Camera

The Prostalk series of trail cameras are ultra small, and ideal for locations where the camera needs to be hidden.

A low resolution however means that the images are not the best, but it's ideal for security footage or for reviewing animal movements without needing high res images for publishing.

Setting up your Infra red wildlife camera

Location really depends on the level of security your camera will need to have. If the device is on your own ground, or garden, then placing it on a tree trunk or even in a bush, will be adequate.

However if you are scouting for wildlife in an area that is visited by the public you may need to secure the camera using a security cable kit, or mount it high enough out of reach, but remember to angle the camera down to the level you wish to capture.

No point capturing birds flying past and seeing a nice bit of sky instead of the badger eating grubs below!

The Spypoint trail cameras have an adjustable detection zone which is ideal for capturing footage of animals likely to walk close by or far away from the camera.

This is crucial in a situation where you have wildlife on a path approx 15meters away, and you have vehicles on a road approx 25meters away. You do not want to trigger the camera every time a bus goes past, but you don't want to miss out on the badger at night snuffling up the trail.

When placing your camera it's crucial you test out the detection before leaving the camera to capture wildlife. The Spypoint and Stealth Cam wildlife cameras both have test modes, where you can set the camera, and then walk about in front of the camera in the area you feel is most likely to get animal traffic.

I use my labrador pup as a bit of a "test dog". By simply leaving a few dog biscuits on the trail, I set her off to find them and watch that the camera picks up movement. My theory is a small lab pup is a more realistic target than a 15stone human.

Once you know the camera is detecting the zone you wish to capture, you need to think about what type of footage you need.

A series of still shots can be fired off, or a video of a variable duration. You can also set a time delay between triggers, so that you can have as little or as much footage as you like.

A customer of ours who monitors badger growth finds it handy to scatter a few raisins in front of the camera, and she records footage of the badgers as a video clip, and then has plenty of time to review the footage and record any data she needs.

Whatever camera you decide to go for, it's amazing just what goes on at the bottom of your garden whilst you are asleep.

We have seen lots of amazing footage from bears to badgers, and wolves to window cleaners, and even some footage from the USA captured on a Prowler HD which is mind boggling, could it really be bigfoot......?

Enjoy using your Trail Camera, and look out for the many online "best trail camera photo" competitions.

Visit our website news section for further help and advice in Trail Camera set up.

Infrared Wildlife Cameras - Trail Cameras Give a Fascinating Insight Into Wildlife Activity
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Bosch 1942 14.3 Amp Heat Gun
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Bosch 1942 14.3 Amp Heat Gun Feature

  • 14.3-amps, 750-1000-degrees Fahrenheit
  • Powerful blower provides a high volume of air needed for industrial applications
  • Air intake regulator adjusts the temperature to the requirements of the job
  • Cool air setting for cooling tool and for no-heat applications, adds versatility
  • Insulated nozzle protects operator, provides a cool exterior temperature


Bosch 1942 14.3 Amp Heat Gun Overview

Powerful blower provides a high volume of air needed for industrial applications; Convenient base allows stationary use; For continuous duty; Variable temp. 750 deg.F - 1,000 deg.F; Max. air volume 23 CFM; Multiple uses: Strip paint, shrink tubing or packaging, heat liquids, loosen fittings, soften caulking and surface finishes, thaw pipes



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High Paying Welding Jobs - 3 Things You Absolutely Must Do to Get High a Paying Welding Job

Want a high paying welding job? Do these 3 things:

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Get really good by practice and experience. Be able to pass a welding certification test by learning welding tips and tricks and good welding fundamentals. Learn how to toot your own horn without sounding arrogant.

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Sounds simple right? well let me break it down a bit for you because each one of these statements deserves a whole page of explanation.

Get really good by practice and experience.

Aircraft Pilots have to acquire a certain amount of "seat time" to achieve certain ratings. In welding, nothing takes the place of "seat time". Have you ever heard the saying "you cant teach experience"? But seat time and practice are not much good if you don't have someone to show you the right way. So Find a good welding instructor and school and approach learning to weld like it was your job. Then get some experience. For your first job, take the welding job that offers the best experience even if the pay is less than other jobs that wont teach you as much. Later, after you are experienced, you will be in a better position to negotiate pay.

Be able to pass a welding certification test

Whether you just finished welding school or are already an experienced welder, you still have to pass a welding certification test to get the really high paying welding jobs. Sometimes welding tests don't even resemble the skills you need in the field or in the shop. So What? It is what it is and you have to be able to pass the test before you can get that high paying welding job. The best advice I can give anyone is to talk to the person giving the welding test and find out the details of the test. If its a pipe welding test, there are literally hundreds of different tests it could be. Size of the pipe, wall thickness, joint configuration, process, material type, and electrode type are just some of the variables. Most of the time the test shop supervisor will tell you the details of the test. Once you have that, find a school that will let you practice on the exact test you will be taking. Don't be afraid to invest a little coin here. It might cost you a couple hundred dollars but you could easily get that back in a week or two after landing that high paying welding job.

Learn how to toot your own horn without sounding arrogant.

Tooting your own horn is a real skill. Most people go too far in one direction. They either brag, or try to appear humble and miss out on an opportunity to sell themselves. Use your resume to peak curiosity. Make factual statements like "maintained a 99% acceptable x-rate rate for 4 years on stainless steel piping systems for borated water". Statements like that that are factual will prompt questions. That is your opportunity to simply explain the details and obstacles you had to overcome in order to achieve the results. Saying something like "I can weld anything from a broken heart to the crack of dawn" Will only serve to make you appear unprofessional. You might get a chuckle out of the interviewer but they will secretly be thinking "Awh, Bless his heart". NEXT Please!

High Paying Welding Jobs - 3 Things You Absolutely Must Do to Get High a Paying Welding Job
Variable Heat Gun

Special Price!!! Stahl Tools SSVT Variable Temperature Soldering Station

Stahl Tools SSVT Variable Temperature Soldering Station
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Stahl Tools SSVT Variable Temperature Soldering Station Feature

  • On/off switch with "power-on" indicator light
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Stahl Tools SSVT Variable Temperature Soldering Station Overview

The Stahl Tools variable temperature soldering station is designed to exceed the expectations of veteran technicians—at a price that's appealing to the electronics hobbyist. Many different soldering tasks are accomplished easily by using the adjustable 5 to 40 watt temperature adjustment. The lightweight pencil iron features a fatigue-reducing rubber grip, and a Bakelite-ringed holder keeps the iron at the ready. A field replaceable, precision ground, iron-plated solid copper tip provides maximum heat transfer, minimizing cold solder joints. Includes tip cleaning sponge. Additional tips available for a variety of soldering applications. Stahl Tools—The Technician's Friend™



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Atoms and Molecules

The idea of the atom

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Models and mechanisms of how particles and other materials behave have been proposed for thousands of years. Especially in the last few centuries, however, these models have been constantly improved and specified. In the following chapters, a cross section of these developments will be presented, leading all the way to our present model of the atom, which will be explained along with all of the laws that govern its behaviour.

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The first model of matter which included elements and atoms was proposed in ancient times. The Greek philosopher Leukippos (around 500-400 B.C.) and his student Democritus (around 460-370 B.C.) were the first to describe the matter present in our world as a collection of atoms (Greek: indivisible). Their theory was based on the idea that if any body is divided into its smallest constituent parts, at some point the parts are so small that they can no longer be divided. They used the word indivisible to describe this remaining matter. According to this theory, atoms are small bodies which are not able to be divided.

Atoms of different materials must differ in their composition and size. The characteristics of materials must therefore be determined by differences in their individual atoms: differences in their size, grouping and mutual arrangement. At the beginning of the 19th century, the Greek atomic model was expanded upon and specified by J. Dalton (1766-1844). According to his theory, elements are composed of small particles called atoms

Atoms of individual materials differ in their mass and size. During chemical reactions, atoms themselves remain unchanged. Of course, the number and position of individual atoms in the reactant compounds can and does change. They are combined in certain proportions, only to change those combinations and proportions during a reaction. In more advanced atomic models, atoms are composed of a nucleus and electrons.

The atom, of course, is composed of elementary particles. In an atom's nucleus are neutrons (uncharged) and positively charged protons. Atoms of the same element always contain the same amount of protons. Only the number of neutrons can differ slightly (in isotopes). Isotopes are actually different atoms of the same element differing only in the number of neutrons they contain and their atomic weight. Otherwise, isotopes of one element generally have the same chemical and physical characteristics as the element itself.

The average atomic nucleus is relatively small compared to the atom itself, but it makes up the greatest part of an atom's mass. The mass of protons and neutrons has been designated with the relative number 1. The number of protons in an atom determines its atomic number. This number is also used to symbolize the atom, or element, in the periodic table of the elements. (hydrogen (H)=1, Helium (He)=2, etc.). Electrons (negatively charged particles) revolve around the nucleus of an atom in electronic orbitals, designated areas where they can be found. Their mass is relatively small - 1/1836 the mass of protons and neutrons. There is the same amount of electrons as the number of protons in the nucleus. For this reason, every atom, in its natural state, is neutral.

Atoms can lose one or more of their electrons. When they do, they become positively charged. Or, atoms can gain electrons, which makes them negatively charged. When an atom gains or loses electrons, it is called an ion. The outer reaches of an atom, its shell, away from the inner nucleus and where electrons are found, makes up the greatest part of its size. This area is mostly empty space. Electrons move in certain designated areas around the atomic nucleus. Some electrons are closer to the nucleus than others (inner orbital, or shielded electrons). Others are further away from the nucleus (outer orbital electrons).

The nucleus of an atom does not change during a chemical reaction. For this reason, it does not appear to be very important. Of course, an atom's electrons determine its chemical behaviour (mostly these are outer orbital electrons).

The energy of a specific electron is defined with the help of both letters and numbers, according to the orbital where the electron is found. Of great importance is an electron's distance from the nucleus. The exact placement of an atom's electrons at any one time is impossible to determine, because location and direction of an individual electron are not able to be calculated (The Heisenberg Uncertainty Principle).

The more accurately we try to determine the location of a specific electron, the less accurate is our ability to determine its direction. Why? Because it is impossible to tell which direction that electron will move in the moment we have determined its location. Unfortunately, only the probability of where an electron might be found can be calculated. On the other hand, if we know the direction an electron is moving, its exact location becomes impossible to locate. The spacial limitation, more simply the area where an electron of a certain energy can be found with greatest probability, is called the atomic orbital.

Duality

Because atoms and their electrons cannot be directly investigated, reality at the atomic level is more or less unknown. From atomic characteristics which can be observed, however, atomic models can be made. The accuracy of these models is seen in their ability to explain certain phenomena. Often, these incredibly small particles show characteristics that are not usual in the macro world we live in. Electrons themselves are capable of a certain principle of duality - as is light: the duality of waves and particles. This means that on the one hand, an electron can behave as a sort of particle beam, a bit like a ray gun. On the other hand, electrons also show a purely wave-like character. Electrons are not, however, one or the other, because these two characteristics are contradictory. Yet we need both concepts to be able to describe an electron's behaviour. The wave-like mechanical atomic model comes from the description of the outer shell of an atom and the wave-like characteristics of electrons.

Quantum numbers

In the atomic model of Niels Bohr (Danish physicist), an electron cloud swarms around the nucleus of an atom. Electrons are allowed to move only in certain orbitals around the nucleus. The individual orbitals represent a certain amount of energy. All of the electrons in one orbital are seen as containing the same amount of energy.

The energy of an electron is given by a quantum number n. The larger this number is, the more energy an electron contains, and the further away it is from the nucleus.

When an electron is excited to a more distant orbital from the nucleus, one with a higher energy, a certain energy must be added to the electron (a quantum). When an electron moves from a higher energy orbital to a lower energy orbital, closer to the nucleus, energy must be omitted in the form of radiation (heat, light or in the form of a different type of electromagnetic energy. With the help of the main quantum number, we are able to figure the maximum number of electrons in the outer shell of an atom.

The number of an atom's electrons can be calculated using the formula 2n2, where n is the main quantum number. More recent atomic models use other quantum numbers to describe an atom and its electrons. A secondary quantum number, designated as l, represents the spin of an electron, or its angular momentum. That means its geometric spatial orientation. This quantity is decisively important in order to explain the arrangement of certain chemical bonds in the atoms of a compound.

The energy of a specific electron is defined mainly by the main quantum number n, and to a lesser degree by its secondary quantum number l. From the position of the energy level of an electron, from its orbital (where the electron moves) compared to the outer magnetic field, the magnetic quantum number m (also called the direction quantum number) can be determined. According to the value of m, orbitals can be divided on the basis of their energy.

There is one s orbital (spherical symmetrically placed around the nucleus), three p orbitals (which look like three dumb-bells protruding from the nucleus in their centers and and pointing out in three directions), five d orbitals (four-leaf structures lying between the p orbitals) and seven f orbitals. Within the individual types (s, p, d, f) are individual orbitals of the same energy. If we take the electron to be a small particle, we can imagine it to be spinning on its own axis, to the left or to the right. The direction of its rotation is termed its spin, and is determined by the quantum number s, for spin. With the help of these four quantum numbers, each and every electron can be exactly described.

Stable electron orbitals

The assignment of electrons to their individual orbitals is termed electron configuration. According to the Pauli principle (Swiss-American physicist), no more than two electrons can be found in one orbital at one specific time.

Orbitals are occupied by electrons from lowest energy orbital to highest energy orbital (in the order s, p, d, f). First of all, every orbital of a specific energy is occupied by one electron. Then, an orbital of opposite spin moves into an orbital to join the first electron. Once there are two electrons in one orbital, it is filled completely. The two electrons are called an electron pair. Individual electrons are called unpaired electrons. In each element of the main group, all s and p orbitals are filled gradually, as electrons are added. For the elements of other groups, the d orbitals are filled.

Ionisation energy

Electrons have a certain amount of energy associated with them, and this energy determines their distance from the nucleus. If energy is added to an electron, an electron can increase its distance from the nucleus, or can even escape from the nucleus. In the latter case, an atom becomes a positively charged ion. The amount of energy which is necessary for an electron to leave the atom is called its ionization energy. Therefore, the ionisation energy necessary to free an electron in an outer orbital from an atom is less than for an electron which is closer to the nucleus.

The density of an element is a relative number given by how the matter of an element is arranged around its atoms, on average. The density of different elements can only be compared given the same volume. Density is a function of both mass and volume.

Density units are often given as kg/m3 or g/cm3. The densities of a number of materials are included in tables.

At first glance, many elements share a number of characteristics. A closer comparison of those characteristics, including colour, state of matter (solid, liquid, gas), odour, flammability and density, allow substances to be distinguished one from another. When substances' characteristics are compared and contrasted, they can be divided into groups. The most important groups that chemistry deals with are: acids, bases, oxides, salts, metals, hydrocarbons and polymers (materials with a great number of atoms which repeat their patterns in a periodic way.

Molecules and Moles

The smallest possible chemical unity is formed by the union of a number of atoms - a compound - also called a molecule. If we want to produce a certain amount of a material, we choose whether to produce that certain amount as a function of its mass, volume or even amount of individual particles.

In chemistry, we use the variable (n) very often as a measure of the amount of a certain substance. One unit of a material is called a mole. We can imagine this amount of a substance as a chemical dozen, an even unit, so to speak. And just like a dozen, or 12, one mole is always equal to a certain number of particles. Of course, this number is more than 12, because of the minute size of atoms and molecules. It would indeed be difficult to count in multiples of 12.

One mole is given as 6.022 x 10 23 particles. This seemingly arbitrary amount of particles is actually based on a chemical truth, using carbon (chemical symbol C), because this element plays one of, if not the, most important role in chemistry. Twelve grams (g) of the element carbon contains exactly 1 mole of atoms. Why is the number of smallest particles so important in chemistry? The answer to this question has to do with the nature and types of chemical reactions. During a chemical reaction, particles interact with one another, often combining to form a new substance. For example, water is actually the combination, or a compound, of two atoms, two atoms of hydrogen and one atom of oxygen. The mass of the two reacting elements would not be enough to ensure a sufficient amount of each element for combination, because oxygen atoms are significantly heavier than hydrogen atoms.

In the laboratory, a chemist cannot determine the amount of a substance by deduction, or by some type of instinct. The amount of a substance can, however, be determined by its mass, which directly relates to the amount of particles a certain amount of substance contains. The quotient of a certain amount of mass (m) and an amount of substance (n) is given by the molar mass (M), with the unit number of grams per one mole.

Molar mass is determined by the sum of the masses of the individual atoms in a molecule. Atomic masses are easily attainable, from the periodic table of the elements. (Hydrogen (H) 1g/mol, Helium (He) 4 g/mol, Lithium (Li) 7g/mol, Beryllium (Be) 9 g/mol, etc.). See the periodic table for more atomic masses.

The molar mass of water (H2O) is 18 grams per mole: 1g/mol for each hydrogen atom (H) and 16 g/mol for the one oxygen atom (O). The molecule is composed of three atoms (2H + 1 O), or more simply: three parts, or atoms, join to make one larger compound, or molecule. The amount of particles corresponding to 1 mole of water is 6.022 . 10 23 molecules of water.

Individual atoms of each element have the same mass. The variable masses of individual molecules is a function of the bonding capabilities of those molecules' constituent atoms, and their atomic masses.

Matter, or mass, is neither created nor destroyed. If during a chemical reaction a compound, or other products of that reaction have less mass than the original reactant materials, most likely one of the products is not easily detectable - possibly an invisible, odourless gas, or some other byproduct of the reaction. If a scientist accurately compares the mass of all reactant materials with the mass of all products produced, the same amount is always present on both sides. Matter is neither created nor destroyed; it can only change form.

A mixture of a solid material dissolved in a liquid is called a solution. These mixtures can be measured by their volumes. The amount of a material dissolved in the same volume of a solution can vary from one mixture to another, however. To determine the amount of a dissolved substance in a solution, we use the chemical formula concentration (symbol: c), a measure of its variable "strength". The units of concentration of a solution are amount of moles dissolved in one litre of solution. Substance concentration is indicated as the concentration of a substance in solution. It is the quotient equal to the amount of a material dissolved in a certain volume of a solution (12 g of carbon (C) in one liter of water has a concentration of 1 mol/l). We call this amount of solution a one molar solution of carbon, and abbreviate it as 1 M.

In order to determine the molar concentration of a solution, or in the case that a chemist might need to prepare a solution of a given molar concentration, it is necessary to calculate the mass of each material. The mass of the dissolved substance is calculated from the necessary material mass and mass of one mole of the material. The amount of a substance in a solution can be calculated from the concentration of a substance and the volume of the solution.

For example, for a 1 molar solution of table salt we need 58.5 g of table salt in 1 l of water. Table salt is made of one part sodium and one part chlorine. The chemical formula of this compound is NaCl. The mass of one mole of NaCl is 58.5 g, because sodium (Na) has a molar mass of 23 g and chlorine (Cl) an atomic mass of 35.5 g. Add the two together (23 + 35.5 = 58.5). The mass of one mole is easily attainable from the periodic table of the elements.

A certain molar concentration does not tell how much volume a certain solution contains. That is, a 1 molar solution does not guarantee that there is 1 liter of solution. Rather, a 1 M solution implies that the ratio of dissolved substance (solute) to volume of substance dissolved in (solvent). In our example with table salt, then, rather than use 58.5 g of NaCl with 1 l of water, we could have just as easily used 29.25 g of NaCl with 0.5 l of water, or 117 g of salt with 2 l of water.

Chemical symbols

Substances and chemical reactions can be denoted in a simple and straightforward way in chemistry. A system of symbols, abbreviations and chemical formulas is used, and these are all internationally recognised - thanks to a committee of international experts who have agreed upon these symbols. At first, however, somewhat abstract symbols were used. Eventually, circular symbols to denote compounds were used. Today's system was introduced by J. J. Berzeliem (Swedish chemist 1779-1848). According to this system, each element was assigned a chemical symbol, usually taken from its Latin or Greek equivalent (for example Magnesium - Mg or oxygen = Oxygenium - O).

Elements are made up of small particles of one and only one kind. We call these particles atoms. In some elements, atoms combine in their natural state, in twos or even more, to form a compound of the given element. In this case, the atoms of one element are joined tightly together, thereby attaining an increased chemical stability. We call these combinations molecules and molecular substances. Molecules are often the smallest building blocks of

gaseous or fluid substances. For example, atoms of hydrogen, nitrogen and oxygen are always joined together, in pairs, two each. There are molecules, however, that are made of different elements. The compound " water " is made of one atom of oxygen and two atoms of hydrogen.

One important foundation of chemical terminology is the concept of using small numbers after a chemical element symbol to indicate number of atoms, called stoichiometry. In the language of chemical symbols, an element symbol is often combined with these numbers, and is called a chemical formula. A formula, then, is made up of the element symbols that a certain compound is composed of. And, after each element symbol, the number of atoms of that element contained in the compound is given. This number is smaller than the element symbol. Ones, as in one atom of an element, are understood, and therefore not written, as in the chemical formula of water, H2O, understood as two atoms of hydrogen, and one atom of oxygen. Water is therefore not written as H2O1.

The formula of a compound characterises the material it represents and denotes its constituent elements, the elements it is made of. At the level of individual particles, the formula symbolises the molecule and gives the amount of all atoms in the molecule, and their ratio to one another. The ratio of the number of individual atoms in a molecule can be calculated for example with the help of the mass ratio of the individual elements and their atomic masses.

Stoichiometry says that the atoms in a compound are mutually bonded in unchanging ratios.

1. Dalton's law: The ratio of the masses of two elements which are bonded together in one molecule can be given as the ratio of one whole number to another.

2. The law of definite proportions: Every compound contains elements in a certain specific and constant mass ratio.

3 The law of consistent proportions: Elements combine together in certain specific ratios of masses or in whole number amounts.

How many atoms of one element join together with how many atoms of another element can be determined by experiment and calculation. The true chemical formula of a number of compounds can be determined rather simply, however, if we know the bonding possibilities of individual elements (their valence). This is the deciding factor for individual elements. For example, once we know the bonding possibilities of an element, we can figure out quickly how many hydrogen atoms could conceivably bond to it. The valence of an element when bonding with hydrogen is given by the amount of unpaired electrons in the outer shell of its electron cloud (the cloud made up of electrons moving at certain levels or in certain orbitals around the nucleus). For example: in water (H2O) one oxygen atom (O) bonds with two hydrogen atoms (H) and therefore has a valence of 2.

In chemical bonds, elements, or their atoms, are not only joined in whole numbers, but their mass ratios also remain constant. For example, in the chemical reaction of iron (Fe) se sulfur (S) iron sulfide (FeS) is formed. The ratio of the number of individual atoms is 1:1. The ratio of masses of the individual atoms is determined from the atomic masses of sulphur and iron, and is 1.45 (7:4).

Atoms and Molecules
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Master Appliance PH-1200K 130-1000-Degree Fahrenheit 4-16 CFM 120V Master Proheat Variable Temperature Heat Gun Kit Feature

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Master Appliance PH-1200K 130-1000-Degree Fahrenheit 4-16 CFM 120V Master Proheat Variable Temperature Heat Gun Kit Overview

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Power Drills Buyer's Guide

Take the hard work out of DO-IT-YOURSELF with a good drill.
It could be on of the most diverse and very useful tools you buy.
Proper drill will save time during your work and make easy drilling holes into metal, wood, concrete etc., as well as drive screws and bolts.
It is useful getting acquaint with a drill's main feature before you buy, so you could choose the best one.

Variable Heat Gun

I. Types
Standard Drills Hammer Drills Screw Guns
II. Cordless drills

Variable Heat Gun

Cord or Cordless? Pros and Cons The main features Power and Battery
III. Drill Shapes
IV. Variable speed
V. Torque
VI. Other features to look out for
VII. Power rating
VIII. Hammer action
IX. Chuck type

TYPES

Standard Drills

Standard electric rotary drills designed for drilling metal and wood. This type of drill is normally small and compact. Motor sizes range from around 500 watts. The lower wattage motors are ok for drilling small holes or minimal use, the more powerful motored machines will cope with larger size holes and more frequent use. The chuck size is another thing to check, the smaller drills have a chuck which will only accept drill bits up to 10mm diameter the larger chuck size is 13mm.

Hammer Drills

The hammer drill is similar to a standard electric drill, with the exception that it is provided with a hammer action for drilling masonry. The hammer action may be engaged or disengaged as required.

The hammer action is cheap but delicate. It uses two cam plates to make the chuck accelerate towards the work. However because of the relative masses of the chuck+bit and the remainder of the drill the energy transfer is inefficient and will fail to penetrate harder materials and vibrates the operators hand. The cams wear quickly.

Compare this to a rotary/pneumatic hammer drill where just the bit is accelerated to the work. They have relatively little vibration and penetrate most building materials. It feels as though the work is sucking the bit inwards.

Large cam hammer drills, especially transverse motor, are crude in their action. The energy delivered in each stroke is highly variable. The cheaper drill will smash its way through the work and vibrate the surroundings, this can cause lots of collateral damage. A good SDS drill will gently pulverize the work material just in front of the bit and glide into the hole without any "fuss".

However there is a big difference in cost. In the UK typically £12-40 for a cam hammer and £100 up for a rotary/pneumatic. For light DIY use they are fine.

Screw Guns

These Electric Screwdrivers are made specifically for applying screws and hexagon headed Tek Screw to plasterboard and metal cladding. The drywall screws are designed purely for plasterboard fixing. The electric screwdriver uses a specially designed chuck to self guide the specifically designed fixings that feature widely spaced threads to ensure good grip. This is achieved by the unique collar on this type of electric screwdriver.

Some electric screwdrivers are able to use Collated Screws which provides auto-loading of screws which are loaded into the tool on a strip which is then fed onto the bit.

Drill press

A drill press (also known as pedestal drill, pillar drill, or bench drill) is a fixed style of drill that may be mounted on a stand or bolted to the floor or workbench. A drill press consists of a base, column (or pillar), table, spindle (or quill), and drill head, usually driven by an induction motor. The head has a set of handles (usually 3) radiating from a central hub that, when turned, move the spindle and chuck vertically, parallel to the axis of the column. The table can be adjusted vertically and is generally moved by a rack and pinion; however, some older models rely on the operator to lift and re-clamp the table in position. The table may also be offset from the spindle's axis and in some cases rotated to a position perpendicular to the column. The size of a drill press is typically measured in terms of swing. Swing is defined as twice the throat distance, which is the distance from the center of the spindle to the closest edge of the pillar. For example, a 16-inch drill press will have an 8-inch throat distance.

A drill press has a number of advantages over a hand-held drill:

less effort is required to apply the drill to the workpiece. The movement of the chuck and spindle is by a lever working on a rack and pinion, which gives the operator considerable mechanical advantage.

the table allows a vise or clamp to position and lock the work in place making the operation secure.
the angle of the spindle is fixed in relation to the table, allowing holes to be drilled accurately and repetitively.

Speed change is achieved by manually moving a belt across a stepped pulley arrangement. Some drill presses add a third stepped pulley to increase the speed range. Modern drill presses can, however, use a variable-speed motor in conjunction with the stepped-pulley system; a few older drill presses, on the other hand, have a sort of traction-based continuously variable transmission for wide ranges of chuck speeds instead, which can be changed while the machine is running.

CORDLESS DRILLS

A cordless drill is a type of electric drill which uses rechargeable batteries. These drills are available with similar features to an AC mains-powered drill. They are available in the hammer drill configuration and most also have a clutch setting which allows them to be used for driving screws.

For continuous use, a worker will have one or more spare battery packs charging while drilling, so that he or she can quickly swap them, instead of having to wait several hours during recharges.

Early cordless drills started with interchangeable 7.2V battery packs, and over the years the battery voltage has been increased to 18V, and higher, allowing these tools to produce as much torque as many mains-powered drills. The drawback of most current models is the use of nickel-cadmium (NiCd) batteries, which develop a memory effect or internal short circuits due to dendrite growth, severely limiting their useful life, and posing a hazardous materials disposal problem. Drill manufacturers are now introducing lithium ion batteries, most notably DEWALT.

The main advantages are lack of memory effect and very short charging time. Instead of charging a tool for an hour to get 20 minutes of use, 20 minutes of charge can run the tool for an hour. Lithium-ion batteries also have a constant discharge rate. The power output remains constant until the battery is depleted, something that nickel-cadmium batteries also lack, and which makes the tool much more versatile. Lithium-ion batteries also hold a charge for a significantly longer time than nickel-cadmium batteries, about 2 years if not used, vs. around 4 months for a nickel-cadmium battery.

CORD OR CORDLESS. Pros and Cons

I. Corded Drills
Pack the most power Most durable Can handle mixing mud, boring holes, and drilling concrete Usually unnecessary for most homeowners
II. Cordless Power Drills
Easily transported and used Less power and run time restricted by battery life Recharging may take several hours Higher voltage means more power, but also more weight Newer technology has improved cordless drills; most are now strong enough for many tasks previously out of their league
Cordless drill:

Corded drill:

THE MAIN FEATURES

Top 10 points to look for:

Speed-range switch, generally 2 ratios, both high and low, normally selected by changing mechanical gearing. High is for drilling applications whilst low range is reserved for driving screws. Look out for the widest range between the two settings

Look for a reliable motor, some models have external brushes for easy changing - when the brushes wear down you can easily change them for new ones, some bosch models have this feature ,it is only of use if you are uning your cordless drill on a daily basis.

Forward/reverse switch: This should be easy to operate with either your thumb or trigger finger - again this is a standard feature but look for one which is easy to operate.
Hand grip: Texture and contoured, should aid your grip, some Porter and Cable cordless drills have padded grips which you can choose to match your hand size - useful after an 8 hour shift.

Voltage: a higher voltage means more drilling power but it can also mean more weight - don't buy a drill you won't need, 12 volt drills are powerful enough for most DIY users, bigger models just weigh more so think carefully about what you will be using the drill for.

Batteries: Two are better than one. New NiMH batteries tend to be better because they deliver more charge and last longer.

Trigger: Make sure your index finger fits around it comfortably when gripping the drill, Variable speed offers the greatest control.

Chuck jaws: The maximum chuck capacity on most drills is 3/8 inches. Although some 14.4 and 18V drills can handle 1/2-inch-diameter bits, these have a 1/2inch chuck.

Keyless chuck: Virtually a standard fitting today, hand-turn it to open and close the chuck jaws. The keyless chuck can grip any screwdriver bit or drill bit securely.

Clutch: Setting the clutch gives you greater control of the depth to which screws are driven.

POWER AND BATTERY

Batteries: A cordless drill is only as good as its battery. Make sure the battery has enough run time to help you power through all your tasks. For more demanding applications, look for a drill that comes with a second battery or purchase an additional one. Chargers can take several hours to fully recharge a battery, so bear that in mind when planning your work schedule. If you need a faster recharge, look for a "smart" charger. Smart chargers work quickly and often reduce charge as the battery becomes full to avoid overcharging to extend the life of the battery. Look for nickel-metal-hydride (NiMH) and lithium-ion batteries, as they are slightly smaller and tend to have a longer run time.

Charge a second battery as you work to avoid mid-job downtime

Smart chargers use fans to reduce heat and decrease recharging time

NiMH batteries are easier and less hazardous to dispose of than other types

First thing when you look at a good cordless drill will be Volts of the the battery pack. To simplify it - the more Volts your cordless drill has - the faster the motor spins - the more torque you will get. Unfortunately - the more volts your cordless drills have - the heavier they get (if you ever worked with a 18 Volt drill over a longer period of time - you will know what I am talking about).

Similar important as the Volts of your battery are the Ampere. Measured in Ah (Ampere per hour) it gives you an idea of how long a battery will last. You can have a 12 Volts battery with 1.8 Ah and with 2.4 Ah. Obviously both batteries should give you the same power initially, but the 2.4 Ah will last 30% longer. Important if you use cordless drills for heavy duty work.

Looking at Volts and Ampere, you should also understand the basic types of battery packs currently available on the market. The (older) Standard Nickel Cadmium (Ni-Cd) battery packs are cheaper but do not give you much Ah as the newer Nickel Metal Hydride (Ni-MH) battery packs. The Ni-MH packs also give you an additional advantage in recharging, as the do not loose power after being recharged many many times (no-memory effect). Nickel Metal Hydride (Ni-MH) battery packs are usually more expensive, but definitely worth it's money.

As batteries changed improved over the past years most manufacturers offer a wide range of power packs. Finding the right Dewalt or Makita batteries can therefore sometimes be a bit of a challenge.

The higher the voltage, the more power (9.6-28V) and weight (3-10 lb) the drill will posess. Most household jobs will be fine with a 13.2 volt or 14.4 volt battery, but an 18 volt couldn't hurt. Most 9.6V drills might be sufficient for home jobs, but may lack the needed torque you find in a 14.4V drill -- which is usually not significantly more in price. Go with at least a 14.4V. For tough jobs and doing masonry, a more powerful 24 or 28 volt battery is recommended.

Rechargeable drill batteries should last you about five years, or roughly 500 charges, though with frequent use you might need to replace it sooner. They can be pricey (-) so if your drill was only 0 or less, you might want to consider just buying a brand new drill. If you have a higher end drill, it's probably more economical to buy a replacement battery.

DRILL SHAPES

Pistol Grip Drills

Are held like a pistol.

Doesn't that feel powerful?

T-Handle Drills

Are most popular.

Shaped like a T for best balance.

Right Angle Drills

Are barrel-less.

The bit extends from the base at a right angle.

TORQUE

Drill price reflects a number of features, including torque. Torque, which is measured in foot-pounds, is the drill's maximum amount of turning force. Some drills have an adjustable clutch with different torque settings for different applications.

Common features you'll want in a cordless or corded drill are electric brakes, which stops the drill chuck as soon as you release the trigger, and keyless chucks.

OTHER FEATURES TO LOOK OUT FOR

Keyless Chuck: The chuck holds the drill bit in place, and keyless chucks allow you to conveniently change bits without having to use a separate key to unlock and replace.

Auxiliary Handle: Drills with side handles provide greater control and two-handed operation. These auxiliary handles rotate, enabling you to find the ideal angle and position from which to work.

Multiple Clutch Settings: Cordless drills often feature a clutch adjustment ring, which may have anywhere from two to twenty-four settings. Once you know the depth and torque needed on a particular surface, set the clutch accordingly to ensure consistent results and reduce the instance of wrist snap.

Electronic Brake: This feature causes the drill to stop immediately when you stop squeezing the trigger, preventing you from overdriving or stripping screws.

Variable Speed and Reversing: Many drills offer multiple speed settings, allowing you to choose the right one for the job at hand, and most have a reverse feature that allows you to remove screws and other fasteners.

Heat Shields and Cooling Fans: These features protect the drill from overheating, enabling longer, more efficient periods of use.

Power Drills Buyer's Guide
Variable Heat Gun

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Wagner Power Products HT3000 Variable Temperature Heat Gun with Turbo Cool Feature

  • Variable temperature setting of 220 degrees F to 1100 degrees F
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Wagner Power Products HT3000 Variable Temperature Heat Gun with Turbo Cool Overview

The HT 3000 variable heat settings of 220 degrees to 1100 degrees F enhance the versatility of uses of this 1200 watt, 10 amp heat gun. Higher settings are ideal for paint removal or thawing of pipes while the lower settings are ideal for bending and shaVariable temperature setting of 220 degrees F to 1100 degrees FTurboCool setting cools nozzle in 1/10 the timeCan be used for anything from paint removal to thawing frozen pipesAccessories includes three concentrator tips, a scraper, and a steel brushTwo year home use warranty



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