ElectronicsNotes by Ian Poole

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ElectronicsNotes by Ian Poole

ElectronicsNotes by Ian Poole

@ElecNotes

Clear electronics/RF guides, videos & downloads by Ian Poole | Resource hub for engineers & hobbyists | Shop: https://t.co/EkY2CQby9c

South East, England 가입일 Kasım 2016
265 팔로잉16K 팔로워
ElectronicsNotes by Ian Poole
Isn't this so true: To spot the real expert, choose the person who predicts the job will take the longest and cost the most. Usually when creating estimates, management goes for the lower cost, shorter timescale options because of the pressure they are under, but in reality a job takes the cost and time it takes.
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wrexrrw
wrexrrw@wrexrrw·
@ElecNotes By some fluke, I leaned early on to just buy Fluke
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ElectronicsNotes by Ian Poole
Cheap vs Expensive Digital Multimeters: What’s the Difference? When diving into the world of electronics, one of the first tools you might consider purchasing is a digital multimeter (DMM). But with prices ranging from a few dollars to several hundred, how do you decide what's worth your investment? Let's break down the key differences. Accuracy & Precision: - Cheap: Often less accurate, with errors that can exceed ±2 or 3% - Expensive: They can sometimes boast an accuracy down to ±0.1%, and they can be crucial for precision work. Features & Functionality: - Cheap: Basic measurements like voltage, current, and resistance. They often have some other ranges and functions but they tend to be more limited. - Expensive: Come with a plethora of features including capacitance, inductance, temperature, frequency, and more. They offer true RMS for AC measurements, data logging, and even Bluetooth connectivity for data transfer. Build Quality & Durability: - Cheap: Typically made with less durable materials, leading to shorter lifespan and susceptibility to damage. Cost of manufacture is a key consideration. - Expensive: Designed for longevity with robust casing, shock-resistant features, and often come with warranties. They're built for the rough and tumble of daily use in professional environments. Safety: - Cheap: Might not comply with safety standards like CAT ratings, posing risks in high-voltage scenarios. - Expensive: Adhere to or exceed safety standards (e.g., CAT III, CAT IV), providing protection against electrical hazards. They include features like fused inputs to prevent damage from overloads. User Interface & Ease of Use: - Cheap: Simpler interfaces with basic displays, sometimes lacking backlighting or intuitive controls. - Expensive: Feature sophisticated, easy-to-read displays, often with graphical capabilities, auto-ranging, and ergonomic designs for one-handed operation. Calibration & Maintenance: - Cheap: Often not designed for easy recalibration; once they go off, they're generally replaced rather than fixed. - Expensive: Usually come with calibration services or the ability to be recalibrated, ensuring long-term accuracy. For Whom? - Cheap: Perfect for hobbyists, beginners, or for non-critical measurements where precision isn't paramount. Great for educational purposes or basic troubleshooting. But beware if using them on higher voltages. - Expensive: Essential for professionals, those working with sensitive equipment, or in environments where accuracy and safety are non-negotiable. While a cheap multimeter can be a good starting point, the investment in a more expensive one pays off in reliability, safety, and precision. Consider your real needs before making a decision. What are your thoughts about digital multimeters? #dmm #digitalmultimeter #testinstrument #testmeter #electronicsnotes
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ArendPaul Spijkerman
ArendPaul Spijkerman@apspijkerman·
@ElecNotes And i guess aluminium ranks 4th in electric conductivity .. and is used in things like overhead power transmission lines and as wiring in the airbus A380 saving 500kg's of weight.
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ElectronicsNotes by Ian Poole
Gold Isn't The Best Conductor So Why is it Used in Electronics? You see gold-plated connectors everywhere, from high-end audio gear to spacecraft. But here’s the shocker: Gold is NOT the best conductor of electricity. The Conductivity Leaderboard If we look at electrical resistivity (ρ) at 20°C, the "medals" for conductivity are actually swapped: 🥇 Gold Medal goes to Silver: The ultimate conductor (1.59×10−8 Ω⋅m). 🥈 Silver Medal goes to Copper: The industry standard (1.68×10−8 Ω⋅m). 🥉 Bronze Medal goes to Gold: Actually the least conductive of the three (2.44×10−8 Ω⋅m). So why use Gold? If gold is in third place, why is it the gold standard for connectors? Find out in my video: youtube.com/shorts/L7gv0FC… #gold #conductivity #connectors #elrctronicsconnectors #electroniccomponents #electronicsnotes
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YouTube
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M@Chicagomike666·
@ElecNotes one word: auto-ranging
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ElectronicsNotes by Ian Poole
Great Infographic PDF Downloads I've just added my selection of infographics or cheat sheets to my new online shop. I think this presents them rather well. Covering topics from the Resistor Colour Code to Capacitance Basics, Transistor Circuit Configurations, Common Op-Amp Circuits and more, these downloads are very budget friendly, costing around $2 or equivalent. Check out my selection today: electronics-notes.com/store-shop/mer… #infographic #infographics #cheatsheets #electronics #STEM #electronicsnotes
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Brady
Brady@BradyRMayes·
@ElecNotes I feel like Schottky diodes should be learned first because they show the significance of non-ohmic contacts (i.e. they're nonlinear and can sometimes rectify).
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ElectronicsNotes by Ian Poole
Are Standard PN diodes are Killing your Power Efficiency& RF Sensitivity? Here is why the Schottky Diode is the secret to high-speed switching and many other electronics circuit design performance issues. If you’re designing a power supply or a high-frequency circuit, the "standard" diode might not always be your best friend. Selecting the right electronic component is key. Choosing between a PN Junction and a Schottky Diode can be the difference between a cool-running board and a thermal meltdown. Here is the breakdown of the three "Big Dividers": 1. Forward Voltage (V_f) * Standard PN: Typically drops about 0.7V. It’s the reliable workhorse, but that voltage drop turns into heat. * Schottky: Uses a metal-semiconductor junction to achieve a much lower drop, usually 0.15V to 0.45V. * The Result: Higher efficiency and less wasted power. 2. Switching Speed & Recovery * Standard PN: These suffer from Reverse Recovery Time. When you switch them off, electrons have to "recombine," causing a brief lag. * Schottky: They are majority carrier devices. There is virtually no stored charge to dissipate, meaning they switch almost instantaneously. * The Result: Essential for high-speed switching and RF applications. 3. Reverse Leakage & Voltage * Standard PN: High "blocking" capability (can handle 1000V+) and very low leakage current. * Schottky: They are notoriously "leaky" at high temperatures and generally have lower breakdown voltages (usually capped around 100V or a little more). * The Result: If you need to block high voltage reliably, stick with Silicon or use silicon carbide Schottky diodes. Where are they used? * Standard PN Junction: general rectification, high voltage applications, general purpose circuits Schottky Diode: power supplies, solar panel circuits, RF mixers, RF signal detectors, logic ICs Pro Tip: Always check your thermal overhead. A Schottky’s low forward voltage is great, but if your environment is already hot, that increased reverse leakage can rocket upwards. Where have you used either of these diodes? #ElectricalEngineering #PCBDesign #diodes #Semiconductors #PowerElectronics #electroniccomponents #TechTips
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Brady
Brady@BradyRMayes·
@ElecNotes Be sure to factor in any pourosity in gold plating. The gold itself may be a noble metal, but pores that expose underlying material will make it as useful as a sceen door on a submarine.
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ChristophPeterS
ChristophPeterS@CPeterS47·
@ElecNotes If one only cares about efficiency- and totally ignores circuit complexity- then one may replace the diodes by MOSFET switches. Their control is delicate, but it is done. It is not for beginners anyhow…
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TAG@TBKG_25·
@ElecNotes 🤔....Gold is impervious to oxidation and chemical attack? Can ensure continuous long term contact with solders and conductive adhesives.
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∀lan ∃liasen
∀lan ∃liasen@aeliasen·
@ElecNotes In my Electrical Engineering university classes, 99% of the analysis of transistor circuits used NPN transistors. It may just be EEs are more used to analyzing and designing with them.
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ElectronicsNotes by Ian Poole 리트윗함
ElectronicsNotes by Ian Poole
Why are NPN transistors more widely used than NPN? While both NPN and PNP bipolar junction transistors (BJTs) are essential tools for engineers, NPN versions are significantly more popular. If you’ve spent any time looking at datasheets or schematics, you’ll notice they dominate the landscape. Based on insights from Electronics Notes, here are the three primary reasons why NPN is the go-to choice: 1. Faster Performance (Carrier Mobility) The biggest technical advantage comes down to physics. NPN transistors use electrons as their majority charge carriers, while PNP transistors rely on holes. • Electrons move much more freely and quickly through the crystal lattice of the silicon than holes do. • This higher "mobility" means NPN transistors can switch faster and provide better performance in high-frequency applications. 2. Standardized Negative Grounding In the world of electronics—from automotive systems to consumer gadgets—negative grounding has become the universal standard. • The polarity of NPN transistors is naturally compatible with negative ground configurations. • This makes them easier to integrate into standard circuit designs without needing complex power supply arrangements. 3. Lower Production Costs Manufacturing economics play a huge role. Most silicon-based components are most efficiently produced using large N-type silicon wafers. • Interestingly, producing a PNP transistor with equivalent performance to an NPN often requires nearly three times more surface area on the wafer. • Since wafer space is at a premium, this makes PNP transistors more expensive to manufacture, driving the industry toward the more cost-effective NPN alternative. The Bottom Line: While PNP transistors are still vital for specific tasks (like push-pull amplifiers or high-side switching), the NPN transistor's speed, compatibility, and cost-efficiency make it the undisputed heavyweight champion of the bipolar world. #Electronics #electroniccomponents #ElectricalEngineering #TechTips #Transistors #NPN #PNP #electronicsnotes
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ArendPaul Spijkerman
ArendPaul Spijkerman@apspijkerman·
@ElecNotes During WW2 the Manhattan Project borrowed 14,000 tons of silver from US treasury to make electromagnet windings to separate isotopes of uranium. So they didnt have to use copper needed for the war i guess. And eventually they gave the silver back.
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ElectronicsNotes by Ian Poole
Which is better for your design: a Supercapacitor or a Battery? As electronics technology advances, the line between these two energy storage giants is blurring. While they both store charge, their internal "DNA" is completely different. Based on the insights from Electronics Notes, here is a breakdown of how they stack up against each other: Supercapacitors: The Sprinters Supercapacitors (or ultracapacitors) store energy electrostatically. Think of them as high-speed delivery vehicles. * High Power Density: They can dump or absorb massive amounts of energy almost instantly. * Fast Charging: They charge in seconds, not hours. * Infinite Stamina: They can handle hundreds of thousands of charge-discharge cycles without breaking a sweat. * The Trade-off: They have a comparatively low energy density and they can't hold a charge for a long duration. Batteries: The Marathon Runners Batteries store energy chemically. They are the long-haul tankers of the electronics world. * High Energy Density: They excel at storing large amounts of energy in a small footprint, powering devices for hours or days. * Steady Delivery: Great for sustained power, but slower to charge and discharge. * Limited Lifespan: Chemical reactions degrade over time, leading to a limited number of cycles (typically hundreds to a few thousand). The Best of Both Worlds: Hybrid Solutions Why choose one when you can use both? We are seeing a massive rise in hybrid systems. By combining them, engineers get: * Regenerative Braking in EVs: Supercaps capture the sudden burst of energy from braking, while batteries store it for the long drive. * Peak Power Shaving: In smartphones, supercaps handle high-drain tasks like camera flashes, protecting the battery's longevity. Whether you are designing for the grid, an EV, or a handheld gadget, understanding these trade-offs is key to system efficiency. #Electronics #Engineering #EnergyStorage #Supercapacitors #Batteries #EV #TechTrends #electroniccomponents #electronicsnotes
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