/v1/absorption
Sound absorption vs frequency
Provalo dal vivo
10 chiamate gratuite al giorno — senza registrazione, senza chiave API. Passa dal gateway oanor.
Funziona. Prendi una chiave API e usala nel tuo progetto.
Ottieni una chiave APIFrammenti di codice
curl "https://api.oanor.com/sonar-api/v1/absorption" \ -H "x-oanor-key: oanor_test_..."
await fetch("https://api.oanor.com/sonar-api/v1/absorption", {
headers: { "x-oanor-key": "oanor_test_..." }
});
$ch = curl_init("https://api.oanor.com/sonar-api/v1/absorption");
curl_setopt($ch, CURLOPT_HTTPHEADER, ["x-oanor-key: oanor_test_..."]);
curl_setopt($ch, CURLOPT_RETURNTRANSFER, true);
$out = curl_exec($ch);
import requests
requests.get(
"https://api.oanor.com/sonar-api/v1/absorption",
headers={"x-oanor-key": "oanor_test_..."}
)
Risposta di esempio
Una risposta reale di questo endpoint, acquisita dall'ultimo health check.
{
"data": {
"note": "Seawater absorbs sound more strongly at higher frequencies (Thorp's formula): low frequencies travel far, which is why long-range sonar and whale calls are low-pitched, while high-frequency sonar gives sharp images but only at short range. The loss adds to the spreading loss, so doubling the frequency roughly quadruples the absorption at sonar frequencies. Near-surface, ~4 °C water.",
"inputs": {
"range_km": 5,
"frequency_khz": 10
},
"absorption_loss_db": 5.94,
"absorption_db_per_km": 1.187
},
"meta": {
"timestamp": "2026-06-06T23:53:52.010Z",
"request_id": "7cccc13d-7ad1-46c2-bdb0-6b45f989fd6e"
},
"status": "ok",
"message": "Absorption",
"success": true
}