Abstract The return stroke in a cloud‐to‐ground (CG) flash is initiated when the downward leader either reaches the ground or connects with an upward leader from a grounded structure. Unlike negative downward leaders, which typically propagate in a highly branched manner, downward positive leaders (DPLs) can propagate either in a branched or unbranched fashion. High‐speed camera recordings show that some DPLs exhibit faint channels accompanied by multiple recoil leaders (RLs)—small bipolar and bidirectional plasma channels—that repeatedly retrace these channels as the leader propagates toward the ground prior to the return stroke (RS). Other leaders, however, consist of a single bright channel with no occurrence of RLs. This study compares the physical characteristics of these two types of DPLs and examines how their propagation modes influence other properties of positive cloud‐to‐ground (+CG) lightning. We show that leaders without RLs propagate significantly faster and are followed by RSs with much higher peak current (I p ) values, on average about twice those associated with leaders accompanied by recoil leaders. The final speed of leaders without RLs exhibits a very strong correlation ( R = 0.91) with the RS peak current. The duration of the continuing current (CC) following the RSs is similar for both cases, although there is a slight tendency for longer durations when RLs are present. Analysis of multiple‐stroke +CG lightning flashes with different ground terminations shows that leaders initiating successive strokes can propagate in markedly different ways within time intervals as short as 15 ms.
Saba et al. (Fri,) studied this question.