Researched 2026-09-06. Goal: guarantee 15-minute average demand never exceeds ~19 kW, and see demand live with alerts.
Confidence: HIGH. Victor and Farzad are right; the Ari/Greg theory is wrong.
SCE bills demand as the highest 15-minute average kW in the billing period. Compressor inrush (locked-rotor amps) lasts roughly 0.2-2 seconds. The arithmetic:
| Quantity | Value |
|---|---|
| 3-ton compressor LRA | ~95-110 A @ 240 V ≈ 24 kVA |
| Inrush duration | ~0.3 s |
| Contribution to a 900-second average | 24 kW x 0.3/900 = 0.008 kW |
| All 7 units starting in the same interval | ~0.06 kW |
Sixty watts. A soft starter on all seven units changes the billed 15-minute demand by an amount the meter cannot resolve. Soft starters are real and useful, they cut mechanical/electrical stress, stop light flicker, and let a battery or generator start a compressor. They are not a demand-charge fix.
What actually produced 19.5 kW on 2026-01-22 was coincident running load, sustained for a full quarter hour:
| Load | Running kW (est.) |
|---|---|
| 7 AC condensers, ~3 ton each, single-stage, 220 V | 2.5-3.5 kW each |
| 3-phase sauna (Harvia Club class, 12.5 kW @ 208 V 3ph, 34.1 A) | 12.3 kW while elements are on |
| LED video wall (IYO) at typical content brightness | 15-35% of nameplate peak |
| Mini fridges, studio gear, lighting, plug load | 2-5 kW combined |
| Tesla charging (observed) | 11.3 kW, must never occur on this meter |
Four AC units running together (12 kW) plus the sauna (12.3 kW) is 24 kW on its own. That is the real exposure, and it is why the $4,500 seven-soft-starter quote from Dennis should not be bought as a demand solution.
Corollary: the staff "stagger AC turn-ons by 15 minutes" policy also does not work as intended. Staggering starts spreads inrush, but the units are still all running an hour later. It helps only if the stagger is long enough that units finish their pull-down and cycle off before the next starts, which is not what a 15-minute stagger achieves.
The requirement that eliminates most consumer products: a true 15-minute rolling demand calculation with a threshold alert, not an instantaneous-watts alert.
| Product | Mains CT range | Phase support | True 15-min demand alert | Price | Verdict |
|---|---|---|---|---|---|
| Eyedro EB6-EW-E3 (eyedro.com) | 200 A std, 400/600/1200 A industrial, flex to 3000 A | Wye and Delta, 100-600 V, split-phase | Yes, "Demand Threshold Average" alert with configurable duration, plus Instantaneous and Continuous; Peak Load tool reports max 15/30/60-min consumption | $349 hardware, no subscription; demand alerts require MyEyedro Pro license (extra) | Best value pick |
| Emporia Vue 3 3-phase (shop.emporiaenergy.com) | 3 x 200 A mains + 16 x 50 A branch | Split-phase and 3-phase 4-wire Wye only, does not support 3-wire Delta | Partial. Built-in "Peak Demand Alert" fires when the current 15-min window nears the month's top three. Custom alerts are kW-threshold + duration, i.e. instantaneous, not a true rolling 15-min average | ~$200-250 | Good second meter / branch-circuit detail; cloud-required |
| IotaWatt | up to 14 CTs, 200 A | 1/split/3-phase | Only via self-built Grafana/InfluxDB math | ~$300+ | Production ceased April 2025. Do not specify |
| Shelly Pro EM / 3EM | 2 CT channels (EM Gen3) | single/3-phase | Only via Home Assistant automation you write | ~$62-140/unit | Excellent as the relay/control layer, weak as the meter of record |
| Sense | 2 mains only | split-phase only | No | consumer HW retired | Not applicable |
| Verdigris / Powerhouse Dynamics SiteSage / Encycle | panel-grade | all | Yes | subscription, enterprise sales, typically multi-site minimums | Best-in-class, but overbuilt. SiteSage now sells as a monthly subscription covering hardware + install (announcement); its DemandSmart module is a genuine AI demand-limiter (product page). Encycle Swarm Logic (encycle.com) is RTU-focused and aimed at chains |
Monitoring pick: Eyedro EB6-EW-E3 with 200 A industrial sensors, $349 + MyEyedro Pro. It is the only sub-$500 device that natively computes an averaged demand alert, handles Delta as well as Wye, and does not care whether the ACs turn out to be 3-phase. Add an Emporia Vue 3 with 16 branch CTs (~$250) as a second, circuit-level meter so you can see which unit is running, that is the diagnostic you need to argue the PCOC case to SCE. Total hardware under $700.
Important: monitoring alone provides zero guarantee. An alert on a phone at 11pm does not stop the meter.
Ranked by how literally they guarantee the ceiling.
energysentry.com/PP-9388B.php · technical manual PDF
This is a purpose-built demand controller, in the field since 1978, and it does exactly the job:
The published case studies are precisely this problem. Jim's Automotive Machine Shop used a 9388B to stay under a 25 kW rate-class threshold on Xcel; WOW! Children's Museum used one on five A/C units plus a dryer to get under 25 kW and move from the SG rate to the C rate (client profiles). That is the identical maneuver TRC wants with SCE's PCOC.
Cost: quote-only, Brayden does not publish pricing. Budget estimate for LA, stated as an estimate: $2,500-4,000 hardware (controller, CTs, 4-8 relays) + $3,000-6,000 C-10 installation, panel work, 24 V control wiring pulled to seven condensers, permit. Call it $6,000-10,000 installed. Contact Brayden Automation directly at brayden.com; they scope the load configuration with you.
This is the recommendation for the guarantee. It is the only option on this list whose entire design premise is "the 15-minute average shall not exceed N."
Genuine commercial demand limiting with HVAC control, circuit monitoring, and a managed subscription that bundles hardware and install. Claims 10-25% peak demand reduction. Downside: it is a portfolio product sold to chains, TRC is one small site, and it is a recurring cost forever rather than a $7k box that runs unattended for 20 years. Worth one call for a price; do not wait on it.
Shelly Pro EM measures, Shelly relays interrupt the 24 V thermostat calls, Home Assistant runs the shed logic. ~$800-1,500 in parts plus your own engineering. Fully capable in principle, and you would write the 15-minute-integral logic yourself. Real risk: this becomes an unmaintained script that silently stops working, and you find out on the bill. Acceptable as a layer on top of the Energy Sentry, unacceptable as the guarantee itself.
SGIP is effectively dead for this project. Confidence: HIGH. SCE's own page states the ratepayer budgets are closed to new applicants (sce.com). The Large-Scale Storage budget closed to new applications after 2025-12-30; General Market non-residential continues but is largely waitlisted with 3-9 month queues. Do not underwrite a battery on SGIP. The 30% federal ITC still applies.
Installable within 60 days by a licensed LA contractor:
| System | Usable | Continuous output | Rough installed cost |
|---|---|---|---|
| Tesla Powerwall 3 | 13.5 kWh | 11.5 kW | $15k-20k for one |
| Enphase IQ Battery 5P (stackable) | 5 kWh each | 3.84 kW each | $12k-22k for 10-15 kWh |
| FranklinWH aPower 2 | 15 kWh | 10 kW | $16k-22k |
| SolarEdge Home Battery | 9.7 kWh | 5 kW | $14k-19k |
Sizing for this problem: shaving ~5 kW for a 4-hour daily peak needs ~20 kWh usable and ~5 kW continuous, so realistically two Powerwall-class units, $30k-40k installed. Compared with a $7k demand controller that guarantees the same outcome, a battery is a poor first purchase here. It earns its place only if outage resilience for the studios is independently worth $30k. Kora Power is covered separately; note only that a product still in "certification progress" as of 2026-08-07 has no place on the critical path.
The running-kW difference is large and it is the number that actually matters:
| 3-ton condenser type | Running amps @ 240 V | Running kW |
|---|---|---|
| Old 10-SEER single-stage | 19.5-22.0 A | ~4.7-5.3 kW |
| 14-SEER single-stage | 15.0-17.0 A | ~3.6-4.1 kW |
| 18-SEER | 12.0-14.0 A | ~2.9-3.4 kW |
| Inverter / variable-speed, 21+ SEER | 9.0-11.5 A full tilt, 7-8 A at 50% capacity | ~1.7-2.8 kW |
Sources: EngineerSkill, PickComfort. Inverter units also start at only 1.2-1.5x running current, so soft starters become moot.
Replacing seven aging single-stage 3-ton condensers with inverter units plausibly takes coincident AC load from ~21 kW to ~12-14 kW, and because inverters modulate instead of cycling at 100%, the coincident peak falls further than the average does.
Cost: $8,000-14,000 per unit installed in LA for a 3-ton inverter split system. Seven units: $60k-95k. This is the most expensive path and the slowest.
Rebates that are actually open in 2026: SCE's Commercial Energy Efficiency Program, administered by Willdan, reports ~$25,000,000 remaining for 2026 (willdanefficiency.com/rebates). Relevant measure: Packaged or Split HVAC Replacement, Gas to Heat Pump (eTRM SWHC046-06), $400-925/ton for units under 65 kBTU/hr at SEER2 14.4+ / HSPF2 6.7+. Seven 3-ton units = 21 tons = $8,400-19,400. Critical rule: the rebate must be reserved BEFORE installation. TECH Clean California commercial incentives are fully reserved and closed since 2025-10-31 (techcleancalifornia.net) , do not count on them.
Found via web search; license numbers as published by each firm, not independently verified against CSLB. Verify at cslb.ca.gov before signing.
| Firm | Contact | Fit |
|---|---|---|
| RG Electric | rgelectric.net · 323-521-5131 · C-10 #910807 | Commercial LA, LADBS permitting, panel work. Good fit for the Energy Sentry install |
| Optimum Energy Services | optimumes.com · C10 #1003962 | 100% commercial-focused, LA County |
| 911 Construction & Electric | 911electrics.com | C-10, commercial storage + demand-charge work, SCE interconnection |
| Promise Energy | promiseenergy.com · 888-444-7911 | Commercial energy/storage, offices in DTLA and West LA, SCE-experienced |
| Southwest Industrial Electric | southwestelectric.com · 323-215-1273 | Commercial/industrial BESS |
| Sigma C&S Electric | sigmaelectric.tech | C-10, load calculations and load management, explicitly does not sell panels |
(a) Monitoring, order this week, ~$700, installed in days Eyedro EB6-EW-E3 3-phase meter with 200 A industrial sensors, $349, plus MyEyedro Pro for the averaged-demand alerts. Add an Emporia Vue 3 with 16 branch CTs, ~$250, for per-circuit visibility. Installed by any C-10 in 2-3 hours. Set an alert at 16 kW average. Run this for 2-4 weeks before buying anything else, it will tell you definitively whether the sauna, the ACs, or something unmeasured is driving the peak, and it produces the evidence SCE will want with the PCOC declaration.
(b) The hard guarantee, Energy Sentry 9388B, ~$6,000-10,000 installed, 4-8 weeks Purpose-built, 15-minute averaging, sub-second update, rate-of-rise prediction, prioritized relay shedding. Shed order: sauna first, then AC units 7 → 1 in reverse importance, then water heater. Quote from Brayden Automation, install by RG Electric or Optimum. Layer Pelican thermostats later if you want per-zone compressor authorization, and buy the seven $19 ICM102 timers immediately regardless.
(c) Battery, optional, deferred $30k-40k for two Powerwall-class units, no SGIP, 30% ITC only. Do not put it on the critical path. Revisit if outage resilience for the studios is worth the money on its own.
(d) HVAC replacement, the right long-term answer, staged $60k-95k for seven inverter condensers, offset by $8,400-19,400 in SCE/Willdan rebates that must be reserved before installation. Do not do all seven at once. Use the monitoring data from (a) to identify the two or three worst units (Ari already fingered units 4 and 7) and replace those first. Each inverter swap permanently lowers the floor the demand controller has to work against.
What not to buy: the $4,500 seven-soft-starter package as a demand fix. If Victor wants to add hard-start kits to units that are struggling mechanically, that is a legitimate maintenance call at his hourly rate. It is not a $4,500 demand-charge project, and buying it will not move the number that got you a $3,600 bill.