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Joined 3 years ago
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Cake day: June 7th, 2023

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  • I’m actually shocked it’s that low - particularly in light of the degree of neglect it’s received.

    The 24 Sussex Drive fiasco has gone on way too long due to being way too politicized.

    The fact of the matter is that being the leader of a large country comes with risks - you need security. Either we tell PMs to live at home and then try to make their home suitably secure - at immense cost and annoyance to neighbours as there’s now continuous RCMP presence, or, like most countries, we pick one house, get it fit for purpose, and then the current PM gets to live there.

    No, it doesn’t need to be gold plated everything a la Trump, but a large, well maintained residence, with room for an on site security detail, staff, and room for hosting obligations does not seem as absurd as any of the alternatives I can think of.











  • I recommend you check out the Big Mac Index as it makes this stuff easier to understand.

    The fact that $1CAD is worth less than $1USD or €1 doesn’t mean much. It’s just numbers printed on a screen/plastic/paper. What matters is what it buys.

    The Big Mac Index was developed by The Economist to make this easier to understand. It calculates what what a Big Mac costs in each country against a common currency. It doesn’t matter if $1USD = $1CAD or $1,000CAD. What matters is what that buys.

    In 2022 - the year the graphic in the posted link corresponds to, a Big Mac cost $5.35 in the US and $5.17 in Canada when using the same (USD) currency. This implies that the effective difference in purchasing power is a paltry 3.5%.

    If a burger is $5USD in the US and $7CAD in Canada, and the exchange rate is $1USD = $1.40CAD then those prices are the same.

    I was just in Japan where I was paying 5000¥ for a fancy coffee - which was about $4.5CAD - roughly what I’d pay here in Canada.










  • Ah good, we can talk physics.

    Newton’s Second Law

    Okay, let’s start with Newton’s second law:

    F=m*a

    but we’re going to flip it around to

    a=F/m

    so that acceleration of a body is equal to the force acting on that body divided by its mass. What this tells us is that for a given force f applied to a vehicle of mass m, the vehicle will accelerate at rate a.

    Where does that force F come from? From the tires acting against the pavement per the lever arm equation:

    t=F*d

    or, a force F working through a lever arm of length d will produce a torque t, but again, we’re going to flip it around a bit to give us

    F=t/d

    Which tells us that a given torque t operating through wheels of radius d will produce a force on the pavement of F.

    Now we’re going to combine the two to give us

    a=t/(d*m)

    So, acceleration is directly proportional to the applied torque and inversely proportional to mass which absolutely supports what you are saying at first glance.

    HMI

    HMI is an acronym for Human Machine Interface which is a whole mechanical design field built around helping humans interact with complex machines like cars. Now I have to admit some ignorance here, but I don’t know what type of vehicle you drive so I’ll start simple.

    In my vehicles, both gas and electric, there’s two pedals specifically related to acceleration. The accelerator (sometimes called a throttle) and the brake pedal - and these pedals are remarkable devices.

    The accelerator (negating regenerative braking that we’ll touch on later) controls positive acceleration while the brake controls negative acceleration. Basically, the accelerator makes us go faster (forward or back) and the brake slows us down. But here’s where it gets nuts - these are proportionate input controls. It isn’t like a light switch rather, it’s more like a dimmer - the more you press on the pedal, the more acceleration you get. The way this is accomplished is by controlling the torque applied by the motor. This is key - we can control the torque output of the motor.

    Puting it all together

    You are absolutely correct that the electric motors in EVs can generate absurd torque which, as we’ve seen, results in incredible acceleration. I certainly had some fun when my EV was new. But, 99% of the time, I’m driving in traffic or on the highway and my accelerator inputs are very light - the motor is generating only a small amount of torque it’s capable of producing.

    Gas cars operate in a similar, albeit wildly more complex manner (the accelerator pedal controls the amount of air getting into the engine, then a feed forward control mechanism is guessing how much fuel is needed and a feedback system monitors for the presence of unconsumed oxygen or uncombusted fuel in the exhaust). The important thing is that both are capable of delivering variable torque based on operator inputs.

    So let’s imagine we have two cars stopped side by side at a stoplight that turns green. Both vehicles can use their accelerator pedals to control their rate of acceleration and they both accelerate away in a nice sedate manner.

    As I mentioned in a previous post, an Ioniq 5 (EV) weighs about 2000kg while a Rav4 (gas) weighs about 1700kg. The EV therefore weighs roughly 15% more. If both vehicles leave the line at the same rate of acceleration the torque output from the EV will need to be 15% higher.

    a=t/(d*m)

    That then takes us back to Newton’s Second Law and thus the longitudinal interaction force between the tire and pavement will be about 15% higher - which is not nothing, but let’s add some context.

    Perspective

    The coefficient of drag Cd for the Ioniq 5 is 0.288 vs 0.310 for the Rav4 - about 8% higher. The drag equation is

    Fd = 1/2 r * u^2 * Cd*A

    where r is the air density, u is velocity, and A is the reference area. In this case r and A are equal (well, mostly equal in the case of area) for our ICE and EV examples.

    What this equation tells us is that at a given speed, the Rav4 requires 8% more driving force to overcome wind resistance. This isn’t just during the acceleration phase, but at all times.

    It also shows us that drag forces go up with the square of speed. That means that if you increase your speed from 100 to 115km/h (15% increase), the drag forces go up by 32%.

    So if we compare the EV to the ICE vehicle under cruising conditions, the friction forces between the tire and the pavement are HIGHER for the ICE vehicle in this example.

    Even more than that, the impact of increasing speed dwarfs both the impact of mass and the impact of the coefficient of drag.

    Summary

    I haven’t come across a peer reviewed body of knowledge that compellingly argues that an EV and an ICE vehicle, driven similarly, will have substantially different rates of tire wear. Rather, speed, proper inflation, and road surface seem to be much more significant. The bulk of reports of accelerated tire wear come from journalists and influencers reviewing vehicles - groups who likely enjoy the acceleration that EVs are capable of, but don’t have to use.


  • The tire thing is FUD in my experience - and I haven’t seen anything other than anecdotal evedince that under similar driving patterns and styles there’s substantial differences in wear. My Ioniq 5 for example only weighs ~15% more than a Rav4 and less than a Honda Pilot.

    When I drove a Subaru STi, I shredded my first set of tires. My station wagon, that weighed more, the tires lasted forever because I drove like an old man. With EVs, if you have fun enjoying that instant torque by punching it off every stoplight, you’ll definitely shred some tires. Accelerate smoothly and I don’t see why tires would see substantially shorter lifespan - which is what I’m seeing from my personal tread wear so far (but that’s anecdotal and therefore of extremely limited value).