Systematic studies of resistivity, thermoelectric power, and thermal conductivity have been performed on polycrystalline bilayered manganites LaSr2Mn2-xCrxO7 (0 <= x <= 0.2). It is found that the temperature dependence of both Seebeck coefficient S(T) and resistivity p(7) in the high temperature region follows the small polaron transport mechanism for all the samples. But in the low temperature region, variable-range-hopping (VRH) model matches the experimental data better. In addition, the maximum of absolute S(7) at low temperatures is gradually suppressed for the sample with Cr-doping level of x > 0.04, implying that a new FM order probably arises. With decreasing the temperatures further, S(7) has a sign change and becomes positive for the sample with Cr-doping level of x > 0.04, indicating that there may occur a variation of the type of charge carrier. As to thermal conduction K(7), the low-temperature peak is suppressed due to Cr-doping. The variation Of K(7) is analyzed based on the combined effect due to the suppression of local Mn-6(3+ O) Jahn-Teller (JT) lattice distortion because of the substitution of Cr3+ ions for Mn3+ ions, which results in the increase in thermal conduction, and the introduction of the disorder due to Cr-doping, which contributes to the decrease in thermal conduction. (c) 2005 Elsevier Ltd. All rights reserved.