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installation-guide

Solar Installation Guide for Installers: Spec’ing, Wiring & Commissioning Backup Systems (2026)

Complete step-by-step solar installation guide for Ukraine and Poland. From getting quotes to final grid connection — everything you need to know.
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This guide is written for professional installers. If you’re a business owner looking to understand what your installer should do, read this too — it’ll help you ask the right questions.

The context is Ukraine and Poland, 2026. Daily 16-hour blackouts in Ukraine. Grid-tied with occasional backup in Poland. Both markets have unique requirements that standard “western” installation guides don’t cover.


Before You Start: Understanding the Client’s Real Needs

In Ukraine, the conversation usually goes like this:

Client: “I need backup power.”

You: “For what duration?”

Client: “Until the grid comes back. It’s usually 12–16 hours.”

You: “What loads do you need to run?”

Client: “Everything. Fridge, freezer, lights, pump, internet, TV. Maybe a heat pump in winter.”

You: “And solar panels?”

Client: “Maybe later. Budget is tight now.”

This changes everything compared to a standard European install:

Standard Install (Poland/Germany)Ukraine Backup Install
Grid-tied, panels firstBattery-first, panels optional
Net metering / net billing focusOff-grid survival focus
5–10 kWh battery (peak shaving)15–30 kWh battery (full replacement)
Solar covers 30–80% of usageSolar recharges battery during blackouts
Backup is a secondary featureBackup is THE feature

Design accordingly.


Step 1: Load Assessment (Critical)

Don’t guess. The client will underestimate their load.

What to actually measure or calculate:

LoadHow to EstimateStartup Surge
RefrigeratorNameplate: running watts × 24h / 2 (compressor cycling)2–3x running for 0.5s
FreezerSame as fridge2–3x
Well pumpNameplate: check LRA (locked rotor amps)5–7x running — biggest surge in most houses
Circulation pump (heating)Nameplate: small (50–150W)2x
LED lightingCount bulbs × wattage (typically 10–15W each)None
Internet router20W (negligible)None
Electric water heater1.5–3 kWNone (resistive, no surge)
TV / computerNameplate1.5x
Elevator (apartment building)Motor + controller: 3–7 kW3–5x — requires soft start or 3-phase inverter

The hidden danger: Most clients have no idea what their pump’s startup current is. Always ask. If they don’t know, install a soft starter on the pump or oversize the inverter significantly.


Step 2: Inverter Sizing (For Installers)

Rule of thumb for Ukraine backup systems:

  • Size the inverter for the largest motor load + all other loads simultaneously
  • Then add 50% margin for future loads
  • Don’t forget 3-phase if the building has an elevator or 3-phase pump

Quick reference:

SituationInverterWhy
Small shop, no pump, 2 fridgesDeye 5kWEnough headroom for fridge compressor starts
Standard home, well pump, fridge, lightsDeye 8kWPump startup needs the extra headroom
Home + heat pump (8kW)Deye 10kWHeat pump compressor + house loads
Business + multiple pumps/fridgesDeye 12kW or 2× 8kW parallelRedundancy + headroom
Apartment building (elevator + pumps)3× Deye 8kW (3-phase)3-phase is mandatory

For Growatt installations (Poland):

  • Add more margin. Growatt inverters have lower surge capacity than Deye.
  • An 8kW Growatt handles less surge than an 8kW Deye.
  • If the client has a well pump, recommend Deye instead.

Step 3: Battery Sizing (For Installers)

Capacity calculation for 16-hour blackout:

Total daily load (kWh) ÷ 0.85 (inverter efficiency) ÷ 0.9 (usable DoD) = Battery capacity needed

Example (small grocery store):

  • 3 fridges (500W avg each × 16h) = 8 kWh
  • 1 freezer (400W avg × 16h) = 6.4 kWh
  • Lights (200W × 16h) = 3.2 kWh
  • POS + router (100W × 16h) = 1.6 kWh
  • Total: 19.2 kWh
  • ÷ 0.85 (inverter) = 22.6 kWh
  • ÷ 0.9 (usable DoD) = 25 kWh rated capacity needed

Recommended: 2× GSL Energy 12.8 kWh batteries in parallel = 25.6 kWh

Important: If the client says “I’ll add panels later,” size the battery slightly larger. Solar changes the calculation — during the day, panels recharge the battery, effectively doubling or tripling runtime.


Step 4: Critical vs Non-Critical Load Separation

This is the most important wiring decision.

The inverter has two AC outputs:

  1. Backup/Load output — runs during blackout
  2. Grid-through output — only works when grid is on

How to split loads:

Put on Backup Output (Runs During Blackout)Leave on Grid-Through (Only Works With Grid)
Refrigerator / freezerWashing machine
Water pumpDishwasher
Heating circulation pumpElectric oven (resistive)
Internet routerAir conditioner (unless sized for it)
LED lighting (essential)EV charger
POS terminal / computerGarage door (unless needed)
Security camerasNon-essential lighting
Medical equipmentWater heater (unless critical)

Why this matters: If everything is on the backup output, the battery drains faster. If too little is on backup, the client complains during blackouts.

Best practice: Install a separate “critical loads” sub-panel. Wire all backup loads into it. The inverter feeds this sub-panel. Grid feeds the rest.


Step 5: BMS Communication (Don’t Skip This)

Voltage-based battery estimation is useless for daily deep cycling.

Always connect CAN or RS485 communication between the inverter and battery.

Deye + GSL Energy (Most Common Combo)

  1. Set DIP switches on the GSL battery to match your inverter brand
  2. Connect CAN cable from battery to inverter
  3. In Deye settings: set battery type to “Lithium” and “Pylontech” protocol
  4. Verify the inverter reads SOC (state of charge) correctly

Growatt + GSL Energy

  1. Set DIP switches on GSL battery accordingly
  2. Connect CAN cable
  3. In Growatt settings: set battery type to “Lithium” and “Pylon” protocol
  4. Verify SOC reading

Generic 48V battery + Any Inverter

  • If the battery supports “Pylontech-compatible CAN,” it usually works with most inverters
  • If not, you may need a “CAN bridge” or stick to voltage-based (not recommended)

What to test during commissioning:

  1. Battery reads 100% SOC after full charge
  2. Discharge for 30 minutes — SOC should decrease linearly
  3. Charging resumes correctly after grid returns
  4. No error codes on inverter display

Step 6: Neutral Grounding (Critical for Ukraine)

This trips up many installers.

When the grid is on, the inverter uses the grid’s neutral-ground bond. When the grid goes down, the inverter must create its own neutral-ground bond.

Deye: Handles this internally. No extra relay needed.

Growatt: Some models need an external neutral-ground bonding relay. Check the manual. If the inverter doesn’t switch the N-G bond, you’ll get floating neutral issues — and possibly electric shocks or equipment damage.

General rule: If you see “NG bonding required” in the manual, install a contactor or relay that bonds neutral to ground when the inverter is off-grid.


Step 7: Installation Safety (War Zone Considerations)

Standard solar installation safety applies. In Ukraine, add these:

Equipment Placement

  • Mount the inverter and battery indoors — not in attics, not on exterior walls
  • Battery on a ground floor or elevated — NOT in a basement that could flood (dam failures are a risk)
  • Keep a fire extinguisher nearby — LiFePO4 is very safe, but still have one

Cabling

  • Use armored cable (SWA) where exposed to potential debris damage
  • Run conduits along interior walls, not exterior ones
  • Label everything clearly (emergency responders may need to disconnect)

Emergency Shutdown

  • Install an external emergency stop (E-stop) button near the door
  • Label the location of the inverter and battery on the electrical panel
  • Brief the client on emergency shutdown procedure

Documentation

  • Leave a one-page system diagram with the electrical panel
  • Include emergency contact numbers
  • Write down the inverter’s WiFi password (clients WILL forget)

Step 8: Commissioning Checklist

Before leaving the site:

  • [ ] All loads are wired to correct outputs (critical vs non-critical)
  • [ ] CAN communication is connected and inverter reads correct SOC
  • [ ] System switches to battery when grid is cut (test it!)
  • [ ] System switches back to grid when restored (test it!)
  • [ ] Battery charges correctly from grid
  • [ ] Monitoring app is installed on client’s phone and connected
  • [ ] Client understands how to use the system
  • [ ] Emergency shutdown location is marked
  • [ ] System diagram left with electrical panel

The most important test:

  1. Turn off the main breaker (simulate blackout)
  2. Verify inverter switches to battery within 20ms
  3. Verify all backup loads work
  4. Turn main breaker back on
  5. Verify inverter reconnects and starts charging

If all of this happens without the client noticing anything, you’ve done your job perfectly.


Common Problems and Solutions

ProblemLikely CauseFix
Inverter trips when load startsSurge exceeds inverter capacity1) Reduce loads on backup output 2) Install soft starters on motors 3) Upgrade to larger inverter
Battery SOC reads incorrectlyNo CAN communication, or wrong battery type setting1) Connect CAN 2) Verify battery type in inverter settings
Lights flicker when switching to batterySwitchover time too slow1) Check inverter settings 2) Some inverters (budget models) have inherently slow switchover 3) Consider Deye if flickering is reported
Battery won’t charge from gridCharging current limit too low, or grid voltage out of range1) Check inverter charging settings 2) Verify grid voltage is within inverter’s range
Inverter shows error codeVarious — check manualCommon codes: grid loss (ignore if testing), fan error (clean/replace), DC bus overvoltage (recycle power)

Estimated Installation Time

System TypeInstallationCommissioningTotal
Small: 5kW inverter + 5kWh battery4–6 hours1–2 hours5–8 hours
Medium: 8kW inverter + 10–15kWh battery6–10 hours1–2 hours7–12 hours
Large: 10kW+ inverter + 20+kWh battery + solar1–2 days2–3 hours1.5–3 days
3-phase: 3× inverters parallel2–3 days3–4 hours2.5–4 days

Bottom Line for Installers

  1. Design for battery-first, panels-optional — that’s the Ukraine reality
  2. Separate critical and non-critical loads — always install a sub-panel
  3. Connect CAN bus — voltage-based SOC estimation is not acceptable for daily cycling
  4. Oversize the inverter for motor loads — fridges, pumps, and heat pumps need surge headroom
  5. Test the blackout switchover — don’t leave until you’ve confirmed it works

Recommended standard kit: Deye 8kW + GSL Energy 10–15 kWh + critical loads sub-panel. CAN communication. Tested on-site. This combo handles 90% of Ukrainian small business installations.


📌 Back to: BESS for Business — Complete Systems
📌 Reference: Deye vs Growatt vs GSL Comparison

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