Ambient Overclocking and Power Scaling Analysis

For 24/7 overclocking, we used our hotel-room system to get a good shot at how the Core i7-8086K performs on a closed loop liquid cooler going through the multipliers one-by-one. For this we used a variation of our standard overclocking technique.

Home Overclocking, Step by Step

Due to timing and location, our overclocking method was as follows.

  1. Start with the CPU at 40x Multiplier and 1.05 volts
  2. Set Load Line Calibration to Level 1 (ASRock Z370 Taichi)
  3. Load up OS
  4. Run our Blender Test, take power and temperature data from AIDA
  5. If system fails, or test is over 95C, then stop testing
  6. If system fails, add +0.025 volts and go to step 3
  7. If test passes, note down Blender result, add a multiplier, and go back to step 3

Blender was a good mix of hardcore CPU load, memory accesses, and as a result, power draw. Any issues that required additional voltage for stability and coherency were found relatively quickly after starting the test.

The Blender test lasts around five minutes on the Core i7-8086K, which for our quick overclock testing is sufficient. For users who insist on 24/7 rock solid stability, it isn’t the test that you might like to see, however it still marks a good attack on the system.

Results

Using this methodology, we achieved the following results:

At default, our system would hit an all-core turbo of 4.3 GHz and scored 311 seconds on Blender, with the CPU at 62 degrees C and consuming 115 W. We also tested the system ‘at auto’ but with the CPU set to 5.0 GHz on all cores. This gave a Blender score of 268 seconds, but much higher temperatures (82 C) and power consumption (175 W).

When going up from 4.0 GHz manually, we can see that there is a disconnect in how the power is reported in the OS: AIDA64 reported a voltage that slowly increased as the multiplier increased, even if the voltage setting in the BIOS did not change. It also showed to hit a wall at 1.364 volts, even when adjusting the voltage in the BIOS helped with the higher multipliers. This was odd, but I think the poignant results here are Blender, Temperature, and Power.

I’m going to adjust the Blender results in to ‘renders per hour’, which is easier to visualize in a graph.

The key result here is going to be 5.0 GHz, which is a nice medium for power and performance but also temperatures and voltage. At this level, the system gives +16% performance for an additional +16% frequency. The problem though is the power.

Comparing a 5.0 GHz manual overclock to the ‘stock’ operation of the processor shows a 32% increase in power. But when compared to an equivalent 4.3 GHz manual overclock, the power gain is now a whopping +68%. We really are stretching the microarchitectural design at this stage.

What should be noted is that at default, the system drew 115W, which is 20W above TDP. As mentioned before, TDP is defined at base frequency, which is in this case 4.0 GHz. We saw a power consumption of 80 W at the base frequency, showing that the processor is still technically under that TDP value, at least when the user optimizes the voltage.  At a 95W level, if we were maximizing frequency for the TDP, we should have seen a base frequency of 4.4 GHz with this chip.

However, consider what might have been if Intel had decided to increase the TDP by +10W or +15W, up to 110W. In that case, we could have been playing with a chip that had a base frequency of around 4.6 GHz, depending on how other chips perform. As we will see in the results over the next few pages, Intel really did miss a trick here by not going down an increased TDP route.

Going for Gold

For anyone interested about the upper limits of our chip, 5.1 GHz was the realistic maximum. I could not get 5.2 GHz to be stable with Blender for more than about 30 seconds without it throwing an error, and as the voltage in the BIOS rose up to 1.425 volts, the system was showing peak temperatures at 100C, well beyond a comfortable limit. Speaking with Alva and his nice chip, he stated that with a delid, 5.2 GHz should be possible, although beyond that might be a bit tough given how quickly the voltage seems to ramp in our sample.

As for absolute maximum that we could load into Windows with, I was able to see 5.4 GHz. No load was applied for fear of the temperatures, and 5.5 GHz did not want to play ball.

Testing at 5.0 GHz

As part of our testing, we were able to run through a few benchmarks at both a high overclock and fast memory (and we tried both). Again, many thanks to ASRock again for the system for the system loan.

Thermal Interface and Extreme Overclocking, with Alva Jonathan Benchmarking Performance: CPU System Tests
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  • Oxford Guy - Thursday, June 14, 2018 - link

    Welcome to marketing — land of emotion.
  • twtech - Tuesday, June 12, 2018 - link

    It seems like the only good reason to buy this processor would be for the preferential binning - it's kind of like a manufacturer official version of Silicon Lottery.
  • xpto - Thursday, June 14, 2018 - link

    New Vulnerability hits Intel processors - Lazy FP State Restore

    https://www.intel.com/content/www/us/en/security-c...
  • jarf1n - Thursday, June 14, 2018 - link

    well i know and few more that anatech are and clear long time amd support and cant make test without raise amd gpus and cpus someway better.
    sad...
    but we are not idiots
    its clear that both 6-core cpus 870k0 and 8086 are much better cpus than amds 8-core ryzen 2700x. that is clear fact

    2700x is 8-core and still loose 3dmarks what is historical.. bcoz never bfore cpu that own more cores LOOSE cpu wich have less them.
    its tell clear that ryzen 2700x is weak and also mem problem show it.
    2700x cant handle high timing and hertz,

    2700x is better and really shod be for mathematic apz,but as i say ITS 8-CORE CPU.

    still it loose many test.

    and for thouse importants games and 3dmarks its loose and clear.

    when intels ALSO 8-core cpu guess 9700k release we really see how bad 2700z is.
    i can say that 8-core 2700x loose clear for intels 9700k 8-core cpu.

    ok..then 6700k vs 8086 cpu

    well its clear that 8086 is better than 8700k,bcoz 8086 is hand picket cpus and oc'd better than 8700k.

    so its mean 8086 ov'c higher,running lower heat ...exmaple all 8086 ov'd easily 5ghz, many 8700k not. only best.. and i took 24/7 use.

    sure if you get good 8700k its different,but if different is example anatech saying 75$ that i can get good cpu i pay it for joy!

    if you want best gaming rig buy:

    asus hero x
    2x8gb 4000mhz cl17 mem
    8086 or 8700k cpu and ocäd it about 5ghz
    buy more nvidia gtx 1080 ti

    then u have gaming rig that amd cant beat near 2 years...think about it...

    gtx 1080 ti is old shit and amd vega only few month old still no chance.
  • xpto - Monday, June 18, 2018 - link

    https://www.amd.com/en/campaigns/threadripper-exch...
  • alpha754293 - Tuesday, June 19, 2018 - link

    FYI - On the overclocking CPU page - GeekBench MT chart is a duplicate of the CineBench MT chart.
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  • none12345 - Thursday, June 21, 2018 - link

    I wasnt expecting much out of the 8086k over the 8700k... but this is truely underwhelming. Only a single core turbo boost? I was expecting all the boost tiers to be higher. And same tdp....so there goes it doing anything more at stock.

    I wasnt going to buy one anyway....so i guess it doesnt matter. I completely agree that intel could have and should have done more.
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