The Glass Pool · STROM

Carport PV

Puissance/PV — charge contrôlable, consommation réseau vers zéro. Fait partie de la famille "glass" — comme notre BESS glass, usine à biogaz et centrale à cogénération (CHP).

Carport PV
PV Distribution BTContrôleur IACharge piscine Grid BESS
La "glass-box" en 4 étapes

Comprendre → Voir en direct → Ce que fait l'IA → Votre bénéfice

Step 1 of 4
1
Understand
2
Voir en direct
3
Ce que fait l'IA
Votre bénéfice

Qu'est-ce que le Carport PV ?

Le carport PV étend la base de production sur site et abrite les véhicules simultanément.

Il suit la même logique d'importation zéro que le PV en toiture : le surplus est converti en chaleur (piscine/tampon) et en charges opérationnelles au lieu d'être exporté.

Schéma (natif, direct)

PV comme charge contrôlable, distribution BT, réseau comme tampon :

PV 2x SMAContrôleur BT/IACharge piscine

Overview: The Glass Pool →· Marchés :marchés de piscines →

Direct —

loading

Ce que fait l'IA

L'IA inclut le carport PV dans la même logique d'importation zéro : surplus vers la chaleur au lieu de l'exportation.

Chaînes causales liées (K07)

What the AI reads
Scenario

Surveillé : en continu · rendement par rapport à l'ombrage

Le scénario :Le carport est ombragé différemment tout au long de l'année. Sans une vue au niveau des chaînes (strings), une perte permanente due à l'ombrage est indiscernable d'un mois nuageux.

Méthode prouvée sur un centre aquatique de référence en Europe ; présentée anonymement.

Calculateur de valeur

Estimation à partir des valeurs mesurées / de conception. Les fenêtres sans import du réseau sont réelles (mesurées).

Normes & normes

Ce que les règles exigent —

[Wait, I see the user's list is 1-34. Let me re-count.]

What does Practice studies require regarding PV self-consumption optimisation?

Pools have a daytime load profile that fits PV well: pumps run during opening hours (typically 9 a.m.-9 p.m.), ventilation ramps up in day operation, heat-pump heat-up can be time-shifted. Without load management the self-consumption ratio is 30-40 %. With load management (all main loads controlled): 60-75 %. Adding BESS: 80-90 % is possible but only economic at high day-ahead spreads. Example potential: 643 kWp × 815 kWh/kWp/a = 524 MWh/a; at 60 % self-consumption = 314 MWh/a × (0.25 − 0.06) €/kWh = 60 k€/a of extra saving from load management.

Basis: Practice studies

What does Grid registry (BNetzA MaStR) require regarding Registration duty PV + storage?

The market master-data registry requires all PV and storage systems above 800 W to be registered within one month of commissioning. An existing 243 kWp roof PV is registered; a new 400 kWp car-port PV must be registered at commissioning. Registration is a precondition for feed-in tariffs, and the registry entry is often required as proof for grant funding.

Basis: Grid registry (BNetzA MaStR)

What does Regional renewables market-introduction grant require regarding PV / load-management grant?

This regional renewables programme funds market-introduction investments at 30 %, with faster processing than ISEK (typically 3-4 months). It applies to PV systems, load-management systems and (limited) storage. It combines with ISEK on the same property but not on the same measure. Relevant example: a 400 kWp car-port PV array could be funded at 30 % here or 50 % via ISEK — the higher ISEK rate is strategically better but not guaranteed to be eligible for PV.

Basis: Regional renewables market-introduction grant

What do the applicable standards require regarding Low-voltage connection?

The applicable standard governs the connection of generation systems to the low-voltage grid. Systems above 30 kVA must participate in the grid-operator control scheme — the operator may curtail feed-in when the grid is critically loaded. A pool with 643 kWp is well above this threshold. The local low-voltage cluster score is 7/10, so the probability of curtailment is low but technically possible. Load management lowers this risk because less power is fed in.

Basis: the applicable national standard

What does Practice + site analysis require regarding Battery storage in a pool?

Stationary battery storage (BESS) in a public pool is currently not economical at sites without redispatch stress and with a low day-ahead spread. Typical site: redispatch score 0/10 (no curtailment), grid-control score 7/10 (little curtailment leverage). Day-ahead spread ~150 €/MWh — too little for BESS arbitrage. Re-evaluate in 2028/29 if the spread exceeds 200 €/MWh or a grant co-funds storage. For now, load management (synchronising HP/ventilation/filters to PV) with a payback below 1 year is the far better investment.

Basis: Practice + site analysis

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