Jun 27, 2024 · 36m · catalyst

Going deep on next-gen geothermal

Dr. Roland Horne · 22m spoken Shayle Kann · 8m spoken
0:00 / 0:00

gold bands on the timeline = statements, start to end. Hover to read, click to jump. CC turns on captions

Host Shail Khan interviews Stanford professor Dr. Roland Horne to explore next-generation geothermal energy, examining how oil and gas drilling innovations, Enhanced Geothermal Systems (EGS), and novel architectures are overcoming historical geologic and economic barriers to scale clean, firm baseload power.

How this conversation actually went

Every chapter scored 0–10 on four independent dynamics. Hover any point for the reasoning behind the score. Shayle holds 26.7% of the talking time here. How this is scored →

Shayle as informed peer 4.6 Guest teaching 3.4 Guest disagreement 0.7 Shayle pushing back 0.9
05100:0010:0020:0030:001:48–4:11 · Shayle as informed peer 5/10 Host Welcome, Swag Announcement, and Geothermal Context Host establishes the episode's analytical framing independently, outlining both the geologic and economic historical bottlenecks of conventional geothermal energy before introducing the guest.4:12–8:50 · Shayle as informed peer 4/10 Technical Principles of Conventional Geothermal Energy Collaborative foundational segment where the host prompts with clear technical categories and the guest explains heat, water, and permeability mechanics alongside binary turbine technology.8:50–14:30 · Shayle as informed peer 5/10 Economic Barriers and Subsurface Financial Uncertainty Guest corrects host's assumption that EGS originated from oil and gas fracking, noting EGS came first in the 1970s. Host immediately pushes back to defend the relevance of modern oil and gas transfer.14:33–18:54 · Shayle as informed peer 4/10 Sponsor Break: Mid-Roll Advertisements Following mid-roll advertisements, host asks focused operational questions about EGS deployment, leading to guest sharing Stanford findings on US geographical potential.18:54–23:05 · Shayle as informed peer 5/10 Evaluating Closed-Loop Geothermal Systems Host frames closed-loop concepts clearly; guest educates on the fundamental physics constraint of thermal conduction versus convective fracture sweep.23:06–30:56 · Shayle as informed peer 5/10 Super Deep and Supercritical Geothermal Opportunities and Challenges Guest reframes host's conception of super deep geothermal from 'geothermal anywhere' to high-enthalpy thermodynamic efficiency in already-advantageous geologies.30:56–33:12 · Shayle as informed peer 4/10 Drilling Innovations: Batch Drilling and Polycrystalline Diamond Bits Host invites overview of drilling advances, and guest details how batch drilling and polycrystalline diamond bits significantly compress project timelines and development costs.1:48–4:11 · Guest teaching 0/10 Host Welcome, Swag Announcement, and Geothermal Context Host establishes the episode's analytical framing independently, outlining both the geologic and economic historical bottlenecks of conventional geothermal energy before introducing the guest.4:12–8:50 · Guest teaching 2/10 Technical Principles of Conventional Geothermal Energy Collaborative foundational segment where the host prompts with clear technical categories and the guest explains heat, water, and permeability mechanics alongside binary turbine technology.8:50–14:30 · Guest teaching 5/10 Economic Barriers and Subsurface Financial Uncertainty Guest corrects host's assumption that EGS originated from oil and gas fracking, noting EGS came first in the 1970s. Host immediately pushes back to defend the relevance of modern oil and gas transfer.14:33–18:54 · Guest teaching 4/10 Sponsor Break: Mid-Roll Advertisements Following mid-roll advertisements, host asks focused operational questions about EGS deployment, leading to guest sharing Stanford findings on US geographical potential.18:54–23:05 · Guest teaching 4/10 Evaluating Closed-Loop Geothermal Systems Host frames closed-loop concepts clearly; guest educates on the fundamental physics constraint of thermal conduction versus convective fracture sweep.23:06–30:56 · Guest teaching 6/10 Super Deep and Supercritical Geothermal Opportunities and Challenges Guest reframes host's conception of super deep geothermal from 'geothermal anywhere' to high-enthalpy thermodynamic efficiency in already-advantageous geologies.30:56–33:12 · Guest teaching 3/10 Drilling Innovations: Batch Drilling and Polycrystalline Diamond Bits Host invites overview of drilling advances, and guest details how batch drilling and polycrystalline diamond bits significantly compress project timelines and development costs.1:48–4:11 · Guest disagreement 0/10 Host Welcome, Swag Announcement, and Geothermal Context Host establishes the episode's analytical framing independently, outlining both the geologic and economic historical bottlenecks of conventional geothermal energy before introducing the guest.4:12–8:50 · Guest disagreement 0/10 Technical Principles of Conventional Geothermal Energy Collaborative foundational segment where the host prompts with clear technical categories and the guest explains heat, water, and permeability mechanics alongside binary turbine technology.8:50–14:30 · Guest disagreement 3/10 Economic Barriers and Subsurface Financial Uncertainty Guest corrects host's assumption that EGS originated from oil and gas fracking, noting EGS came first in the 1970s. Host immediately pushes back to defend the relevance of modern oil and gas transfer.14:33–18:54 · Guest disagreement 0/10 Sponsor Break: Mid-Roll Advertisements Following mid-roll advertisements, host asks focused operational questions about EGS deployment, leading to guest sharing Stanford findings on US geographical potential.18:54–23:05 · Guest disagreement 0/10 Evaluating Closed-Loop Geothermal Systems Host frames closed-loop concepts clearly; guest educates on the fundamental physics constraint of thermal conduction versus convective fracture sweep.23:06–30:56 · Guest disagreement 2/10 Super Deep and Supercritical Geothermal Opportunities and Challenges Guest reframes host's conception of super deep geothermal from 'geothermal anywhere' to high-enthalpy thermodynamic efficiency in already-advantageous geologies.30:56–33:12 · Guest disagreement 0/10 Drilling Innovations: Batch Drilling and Polycrystalline Diamond Bits Host invites overview of drilling advances, and guest details how batch drilling and polycrystalline diamond bits significantly compress project timelines and development costs.1:48–4:11 · Shayle pushing back 0/10 Host Welcome, Swag Announcement, and Geothermal Context Host establishes the episode's analytical framing independently, outlining both the geologic and economic historical bottlenecks of conventional geothermal energy before introducing the guest.4:12–8:50 · Shayle pushing back 0/10 Technical Principles of Conventional Geothermal Energy Collaborative foundational segment where the host prompts with clear technical categories and the guest explains heat, water, and permeability mechanics alongside binary turbine technology.8:50–14:30 · Shayle pushing back 4/10 Economic Barriers and Subsurface Financial Uncertainty Guest corrects host's assumption that EGS originated from oil and gas fracking, noting EGS came first in the 1970s. Host immediately pushes back to defend the relevance of modern oil and gas transfer.14:33–18:54 · Shayle pushing back 0/10 Sponsor Break: Mid-Roll Advertisements Following mid-roll advertisements, host asks focused operational questions about EGS deployment, leading to guest sharing Stanford findings on US geographical potential.18:54–23:05 · Shayle pushing back 0/10 Evaluating Closed-Loop Geothermal Systems Host frames closed-loop concepts clearly; guest educates on the fundamental physics constraint of thermal conduction versus convective fracture sweep.23:06–30:56 · Shayle pushing back 2/10 Super Deep and Supercritical Geothermal Opportunities and Challenges Guest reframes host's conception of super deep geothermal from 'geothermal anywhere' to high-enthalpy thermodynamic efficiency in already-advantageous geologies.30:56–33:12 · Shayle pushing back 0/10 Drilling Innovations: Batch Drilling and Polycrystalline Diamond Bits Host invites overview of drilling advances, and guest details how batch drilling and polycrystalline diamond bits significantly compress project timelines and development costs.

speaking balance: gold is Shayle, purple is the guest (3 minute bins)

0:00 · Shayle 47.5% · guest 52.5%0:00 · Shayle 47.5% · guest 52.5%3:00 · Shayle 57.8% · guest 42.2%3:00 · Shayle 57.8% · guest 42.2%6:00 · Shayle 14.5% · guest 85.5%6:00 · Shayle 14.5% · guest 85.5%9:00 · Shayle 43.5% · guest 56.5%9:00 · Shayle 43.5% · guest 56.5%12:00 · Shayle 11.3% · guest 88.7%12:00 · Shayle 11.3% · guest 88.7%15:00 · Shayle 16.4% · guest 83.6%15:00 · Shayle 16.4% · guest 83.6%18:00 · Shayle 18.1% · guest 81.9%18:00 · Shayle 18.1% · guest 81.9%21:00 · Shayle 29.4% · guest 70.6%21:00 · Shayle 29.4% · guest 70.6%24:00 · Shayle 17.1% · guest 82.9%24:00 · Shayle 17.1% · guest 82.9%27:00 · Shayle 17.4% · guest 82.6%27:00 · Shayle 17.4% · guest 82.6%30:00 · Shayle 11% · guest 89%30:00 · Shayle 11% · guest 89%33:00 · Shayle 22.2% · guest 77.8%33:00 · Shayle 22.2% · guest 77.8%36:00 · Shayle 98.2% · guest 1.8%36:00 · Shayle 98.2% · guest 1.8%
Sharpest disagreement ▶ 12:37 Clarification on EGS origins

Guest directly contradicts host's claim that EGS stems from oil and gas fracking, pointing out EGS was pioneered in the 1970s prior to the shale boom.

Hardest push from Shayle ▶ 12:47 Host insists on oil and gas transfer

Host immediately presses back after the guest's correction, reaffirming that modern EGS applications heavily leverage contemporary fracking techniques.

Biggest teaching moment ▶ 25:51 Supercritical thermodynamics reframing

Guest thoroughly reframes host's premise that super deep geothermal is meant for universal geographic access, explaining it is actually about thermodynamic efficiency in existing hot spots.

Shayle holds their own ▶ 10:14 Comprehensive next-gen geothermal taxonomy

Host demonstrates deep domain fluency by systematically laying out the technological risk spectrum across EGS, closed-loop, and supercritical geothermal systems.

the scores for every segment, with the reasoning behind each
ChapterTopicShayle as informed peerGuest teachingGuest disagreementShayle pushing backWhy
Host Welcome, Swag Announcement, and Geothermal Context 5000 Host establishes the episode's analytical framing independently, outlining both the geologic and economic historical bottlenecks of conventional geothermal energy before introducing the guest.
Technical Principles of Conventional Geothermal Energy 4200 Collaborative foundational segment where the host prompts with clear technical categories and the guest explains heat, water, and permeability mechanics alongside binary turbine technology.
Economic Barriers and Subsurface Financial Uncertainty 5534 Guest corrects host's assumption that EGS originated from oil and gas fracking, noting EGS came first in the 1970s. Host immediately pushes back to defend the relevance of modern oil and gas transfer.
Sponsor Break: Mid-Roll Advertisements 4400 Following mid-roll advertisements, host asks focused operational questions about EGS deployment, leading to guest sharing Stanford findings on US geographical potential.
Evaluating Closed-Loop Geothermal Systems 5400 Host frames closed-loop concepts clearly; guest educates on the fundamental physics constraint of thermal conduction versus convective fracture sweep.
Super Deep and Supercritical Geothermal Opportunities and Challenges 5622 Guest reframes host's conception of super deep geothermal from 'geothermal anywhere' to high-enthalpy thermodynamic efficiency in already-advantageous geologies.
Drilling Innovations: Batch Drilling and Polycrystalline Diamond Bits 4300 Host invites overview of drilling advances, and guest details how batch drilling and polycrystalline diamond bits significantly compress project timelines and development costs.

Statements from this episode (15)

Assertion Supported
Kann: Nearly all US geothermal capacity is in Nevada or California
“Basically all of the geothermal that we've built in the United States is in Nevada or California.”
Shayle Kann Jun 27, 2024 ▶ 2:58
Assertion Supported
Horne: Geothermal generates 6% of California's, 10% of Nevada's, and 50% of Kenya's electricity
“Six percent of our electricity comes from geothermal. 10% of electricity in Nevada comes from geothermal, conventional geothermal. And there are countries in the world, ah, Kenya notably takes 50% of its national electricity from geothermal.”
Dr. Roland Horne Jun 27, 2024 ▶ 5:09
Insight
Horne: Rock permeability is the primary bottleneck for conventional geothermal energy
“And so, the three things that you need for your thermal resource are heat, water, and permeability. So, it's hot everywhere to, if you can drill deep enough and almost the entire planet is saturated with water, you know, at depth. But the places that don't hav…”
Dr. Roland Horne Jun 27, 2024 ▶ 6:46
Assertion Supported
Horne: Binary geothermal plants release virtually zero atmospheric emissions
“Because the water never leaves, the geothermal water never leaves the heat exchanger, there's basically no emissions at all from the subsurface out into the atmosphere of the environment. The water stays in the pipe, goes back in the ground. It never sees the …”
Dr. Roland Horne Jun 27, 2024 ▶ 8:28
Insight
Horne: Geological uncertainty is the primary cost driver for geothermal
“The biggest cost driver for geothermal development is uncertainty. And because it's a resource, a geological resource, the fact that you don't know exactly how big it is and how long it's going to last, that translates into uncertainty in the sizing of the pla…”
Dr. Roland Horne Jun 27, 2024 ▶ 9:21
Assertion Supported
Horne: Next-gen geothermal concepts have existed for 40 to 50 years
“Actually none of these ideas are actually new. Most of them have been around for 40 or 50 years, and several of them tried already. EGS, perhaps, is the one that's been around the longest, first kind of postulated back in the 19 sixties at Los Alamos National …”
Dr. Roland Horne Jun 27, 2024 ▶ 11:29
Insight
Horne: Geothermal fractures brittle volcanic rock, unlike pliable sedimentary rock
“Oil and gas are fracturing sedimentary rocks. Which tend to be more pliable, plastic, and geothermal is fracturing volcanic rocks, which are brittle and hard, and it's a somewhat different process, and it's a somewhat different result as a consequence.”
Dr. Roland Horne Jun 27, 2024 ▶ 14:08
Assertion Supported
Horne: Fervo's 90MW Utah EGS project is 20x larger than predecessors
“Their near-term plan is 90 megawatts, which is, you know, probably 20 times bigger than any of the former EGS projects, the old EGS projects that people have done.”
Dr. Roland Horne Jun 27, 2024 ▶ 17:27
Assertion Partly supported
Horne: Conventional geothermal matches average US electricity cost of $80/MWh
“You know, the average cost of electricity in the US is somewhere around 80 dollars a megawatt hour and conventional geothermal is basically at that cost today.”
Dr. Roland Horne Jun 27, 2024 ▶ 18:27
Assertion Supported
Horne: Half the US is accessible for $80/MWh geothermal
“So we've estimated that about half of the United States is accessible for EGS at 80 dollars a megawatt hour.”
Dr. Roland Horne Jun 27, 2024 ▶ 18:44
Insight
Horne: Low rock conductivity fundamentally limits closed-loop geothermal heat extraction
“In the case of a drilled hole, the surface area of the hole is quite small, and therefore you depend a lot on conduction of energy, thermal energy through the rock. And rocks actually are not very good thermal conductors. Rocks are kind of insulators actually,…”
Dr. Roland Horne Jun 27, 2024 ▶ 21:04
Assertion Supported
Horne: Commercial closed-loop pilot in Germany requires 80 kilometers of drilling
“So the system, they're drawing a closed loop system, sort of the first commercial pilot or whatever in Germany right now, which they're planning. 80 kilometers of holes, if I remember that number correctly, which is feasible but quite expensive.”
Dr. Roland Horne Jun 27, 2024 ▶ 21:38
Assertion Partly supported
Horne: Iceland's supercritical well dissolved its steel casing into black steam
“So I'm reminded of the videos they showed of the supercritical well that they produced in Iceland called IDDP-II. It basically produced black steam, and the reason it produced black steam is that it was producing the steel casing together with the steam. It wa…”
Dr. Roland Horne Jun 27, 2024 ▶ 28:33
Assertion Supported
Horne: Batch drilling reduced Fervo's Utah drilling times two- to threefold
“So further again in their EGS project in Utah is doing batch drilling where they're actually drilling, you know, eight wells at a time. Well, not quite eight at a time. They, they're drilling the first segments eight at a time, and then the second segment's ei…”
Dr. Roland Horne Jun 27, 2024 ▶ 31:49
Prediction Not checkable as stated
Horne: Unconventional techniques will cut geothermal drilling costs in half
“Unconventional drilling practice for the normal geothermal industry has actually basically helped or will soon bring geothermal drilling costs down perhaps to half what it was five, 10 years ago, and that really opens up many new areas because, again, you're j…”
Dr. Roland Horne Jun 27, 2024 ▶ 32:46
Made with StarZero

Turn any episode into a week of clips.

This entire site, over 200 episodes transcribed, diarized, checked and made playable, runs on the StarZero media pipeline. Drop in your own episode and the podcast clipper finds the moments worth sharing, cuts them, captions them, and reframes them for every feed.