A heat exchanger is provided, including a plurality of fins and a plurality of flat pipes. The plurality of fins are spaced apart and arranged in parallel, a plurality of flat pipe grooves are provided in at least one side of the fins along a width direction of the fins, the plurality of flat pipe grooves are arranged at intervals along a length direction of the fins, and the plurality of flat pipes are correspondingly inserted into the flat pipe grooves. Each of the plurality of fins is provided with a plurality of protruding portions, the plurality of protruding portions are sequentially arranged along the width direction of the current fin to form a corrugated structure, and both ends of the corrugated structure extend towards both sides of the current fin along the length direction of the current fin respectively and pass through both ends of the current fin.
1 . A heat exchanger, comprising a plurality of fins and a plurality of flat pipes, the plurality of fins being spaced apart from each other and arranged in parallel, a plurality of flat pipe grooves being provided in at least one side of the plurality of fins along a width direction of the plurality of fins, the plurality of flat pipe grooves being arranged at intervals along a length direction of the plurality of fins, and the plurality of flat pipes being correspondingly inserted into the plurality of flat pipe grooves;
wherein each of the plurality of fins is provided with a plurality of protruding portions, the plurality of protruding portions are sequentially arranged along the width direction of the plurality of fins to form a corrugated structure, and both ends of the corrugated structure extend towards both sides of the plurality of fins along the length direction of the plurality of fin respectively and pass through both ends of the plurality of fins;
an end of the plurality of the flat pipe grooves passes through a side of the plurality of the fins to form notches, a distance between a side of one of the plurality of flat pipes proximal to a corresponding notch and the corresponding notch along the width direction of the plurality of fins is denoted as P, and the distance P between the side of one of the plurality of flat pipes proximal to the corresponding notch and the corresponding notch along the width direction of the plurality of fins satisfies the following relational formula: 0.1 mm<P≤10 mm; and
the plurality of fins are provided with a first side and a second side along the width direction of the plurality of fins, both the first side and the second side of the plurality of fins are provided with the plurality of flat pipe grooves, a distance between a center plane of one of the plurality of flat pipe grooves located on the first side of the plurality of fins along the length direction of the plurality of fins and a center plane of one of the plurality of flat pipe grooves located on the second side of the plurality of fins along the length direction of the plurality of fins is denoted as T, a distance between center planes of adjacent two of the plurality of flat pipe grooves located on the same side of the plurality of fins along the width direction of the plurality of fins is denoted as L, and the distance T and the distance L satisfy the following relational formula: 0.8≤T/L≤1.5.
2 . The heat exchanger of claim 1 , wherein an end of the plurality of the flat pipe grooves passes through a side of the plurality of the fins to form notches, a distance between a side of one of the plurality of flat pipes proximal to a corresponding notch and the corresponding notch along the width direction of the plurality of fins is denoted as P, a width of the plurality of flat pipes is denoted as W, and the distance P between the side of one of the plurality of flat pipes proximal to the corresponding notch and the corresponding notch along the width direction of the plurality of fins and the width W of the plurality of flat pipes satisfy the following relational formula: 0<P≤W.
3 . The heat exchanger of claim 1 , wherein the plurality of flat pipe grooves located on the first side of the plurality of fins are provided in one-to-one correspondence with the plurality of flat pipe grooves located on the second side of the plurality of fins.
4 . The heat exchanger of claim 1 , wherein the plurality of flat pipe grooves located on the first side of the plurality of fins are staggered with the plurality of flat pipe grooves located on the second side of the plurality of fins.
5 . The heat exchanger of claim 4 , wherein a distance between center planes of adjacent two of the plurality of flat pipe grooves along the width direction of the plurality of fins is denoted as S, the adjacent two of the plurality of flat pipe grooves are staggered, and the distance S and the distance L satisfy the following relational formula: ⅓≤S/L≤⅔.
6 . The heat exchanger of claim 1 , wherein the plurality of fins are provided with a flap structure, and the flap structure is disposed proximal to the plurality of flat pipe grooves and abuts against a side wall of the plurality of flat pipes.
7 . The heat exchanger of claim 6 , wherein a height of the flap structure protruding the plurality of fins is denoted as D, and the height D of the flap structure is less than spacing between adjacent two of the plurality of fins.
8 . The heat exchanger of claim 1 , further comprising a side plate and an elbow, wherein a structure of the side plate is matched with a structure of the plurality of fins, the side plate is mounted on at least one end of the plurality of flat pipes, the plurality of flat pipes are inserted into the side plate, and the elbow is connected between adjacent two of the plurality of flat pipes.