在 ajax post 请求中传递第二个参数

我在互联网上找到了如何使用ajax和php上传多个文件的解决方案。在 ajax 请求中，我正在传递包含选择要上传的文件的表单，但我需要再添加一个参数，但是当我这样做时，它不起作用。我不擅长 php，我尝试以多种方式传递第二个参数，但没有一种有效。如何传递第二个参数，以便一切正常？

.html：

<form method="post" enctype="multipart/form-data">
Select files to upload:
<input name="file[]" type="file" multiple>
<input type="button" onclick="upload(this)" value="Upload"/>
</form>

JavaScript：

function upload(element) {
var formData = new FormData($(element).parents('form')[0]);
$.ajax({
url: 'upload.php',
type: 'POST',
success: function (callback) {
// some code
},
data: formData,
cache: false,
contentType: false,
processData: false
});
}

.php

<?php
$mysqli = include 'connection.php';
$total = count($_FILES['file']['name']);
if ($_SERVER['REQUEST_METHOD'] === 'POST') {
for ($i = 0; $i < $total; $i++) {
$name = $_FILES['file']['name'][$i];
$size = $_FILES['file']['size'][$i];
$location = 'uploads/';
$target_file = $location . basename($name);
if (isset($name)) {
if (empty($name)) {
echo 'Please choose a file' . "n";
} else if (file_exists($target_file)) {
echo 'File already exists.' . "n";
} else if ($size > 1000000) {
echo 'File is too large' . "n";
} else {
$tmp_name = $_FILES['file']['tmp_name'][$i];
$statement = $mysqli->prepare("INSERT INTO files (name, subjectId) VALUES (?, ?)");
$str = '1'; // here I would like to set variable using $_POST
$statement->bind_param('ss', $name, $str);
if (move_uploaded_file($tmp_name, $location . $name)) {
if ($statement->execute()) {
echo 'File successfully uploaded :' . $location . $name . "n";
} else {
echo 'Error while executing sql' . "n";
}
} else {
echo 'Error while uploading file on server' . "n";
}
}
}
}
}

所以我想得到的是用javascript添加第二个参数：

data: formData, mySecondParameter

然后在 php 中，当我为 sql 绑定参数时，我想输入我从 javascript 传递的变量：

$str = $_POST['contentOfMySecondParameter'];