Attraction of bark beetles (Coleoptera: Scolytidae) to a pheromone trap
- 1 May 1984
- journal article
- research article
- Published by Springer Nature in Journal of Chemical Ecology
- Vol. 10 (5) , 723-752
- https://doi.org/10.1007/bf00988539
Abstract
The movement of bark beetles near an attractive pheromone source is described in terms of mathematical models of the diffusion type. To test the models, two release experiments involving 47,000 marked spruce bark beetles [Ips typographus (L.)] were performed. The attractive source was a pheromone trap, surrounded by eight concentric rings with eight passive trap stations on each ring. Captures were recorded every 2–10 minutes for the pheromone trap and once for the passive traps. The models were fitted to the distribution in time of the central pheromone trap catch and to the spatial distribution of catch among the passive traps. The first model that gives a reasonable fit consists of two phases: Phase one—After release the beetles move according to a diffusion process with drift towards the pheromone trap. The strength of the drift is inversely proportional to the distance from the traps. Phase two—those beetles attracted to, but not caught by, the pheromone trap are no longer influenced by the pheromone, and their movement is described by a diffusion process without drift. In phase two we work with a loss of beetles, whereas the experiment seems to indicate that the loss of beetles in phase one is negligible. As a second model, the following modification of phase one is considered: After release the beetles move according to a diffusion process without drift, until they start responding to the pheromone (with constant probability per unit time), whereafter they start moving according to a diffusion process with drift. This study, like other release experiments, shows that the efficiency of the pheromone trap is rather low. What is specific for the present investigation is that we try to explain this low efficiency in terms of dynamic models for insect movement. Two factors seem to contribute: Some beetles do not respond to pheromone at all, and some beetles disappear again after having been close to the pheromone trap. It also seems that the motility of the beetles decreased after they ceased responding to the pheromone. Furthermore, the data lend some support to the hypothesis that flight exercise increases the response of the beetles to pheromone.Keywords
This publication has 27 references indexed in Scilit:
- Sex-specific responses to aggregation pheromone Regulation of colonization density in the bark beetleIps paraconfususJournal of Chemical Ecology, 1983
- Effectiveness of different types of pheromone traps used against Ips typographus (L.) (Col., Scolytidae) in SwedenJournal of Pest Science, 1981
- Diffusion and Ecological Problems: Mathematical Models.Published by JSTOR ,1981
- Kairomone response inThanasimus predators to pheromone components ofIps typographusJournal of Chemical Ecology, 1981
- Models for dispersal of vapors in open and confined spaces: Applications to sex pheromone trapping in a warehouseJournal of Chemical Ecology, 1980
- Pheromone dispersion in forestsJournal of Theoretical Biology, 1980
- Threshold hypothesis for pheromone perceptionJournal of Chemical Ecology, 1978
- A Model Relating Numbers of Dispersing Insects to Distance and TimeJournal of Applied Ecology, 1977
- RESPONSE OF IPS GRANDICOLLIS (COLEOPTERA: SCOLYTIDAE) TO THE ATTRACTANT PRODUCED BY ATTACKING MALE BEETLESThe Canadian Entomologist, 1969
- Release by Flight Exercise of a Chemotropic Response from Photopositive Domination in a Scolytid BeetleNature, 1959