The role of positive and negative triangularity on the divertor heat flux profile and on the SOL filamentary (blobby) turbulence is investigated experimentally in lower single-null, attached, L-mode plasmas on TCV. The divertor heat flux profile is determined by Langmuir probe measurements and is analyzed across a large data-set with varying triangularity, revealing a clear positive correlation of the divertor heat flux width λq with the upper triangularity δu, while no dependence on the lower triangularity δl is observed. A secondary peak often observed in target particle and heat flux profiles is investigated, finding a dependence of its radial position on the outer wall gap. This is hypothesized to be connected to the deceleration of the blobs by the wall, as suggested by experimental data. The gas puff imaging analysis of blobs reveals significant differences in their radial velocity when triangularity is changed, especially in the X-point region. A heuristic blob transport model is developed to investigate a mechanism by which the blob behavior could directly affect the target profiles and the reported dependency; the resulting predictions are found to be reasonably consistent with experimental observations.