The tensile strength of dust aggregates consisting of small elastic grains: Constraints on the size of condensates in protoplanetary disks
arXiv:2006.05107 · doi:10.1093/mnras/staa1641
Abstract
A consensus view on the formation of planetesimals is now exposed to a threat, since recent numerical studies on the mechanical properties of dust aggregates tend to dispute the conceptual picture that submicrometer-sized grains conglomerate into planetesimals in protoplanetary disks. With the advent of precise laboratory experiments and extensive computer simulations on the interaction between elastic spheres comprising dust aggregates, we revisit a model for the tensile strength of dust aggregates consisting of small elastic grains. In the framework of contact mechanics and fracture mechanics, we examine outcomes of computer simulations and laboratory experiments on the tensile strength of dust aggregates. We provide a novel analytical formula that explicitly incorporates the volume effect on the tensile strength, namely, the dependence of tensile strength on the volume of dust aggregates. We find that our model for the tensile strength of dust aggregates well reproduces results of computer simulations and laboratory experiments, if appropriate values are adopted for the elastic parameters used in the model. Moreover, the model with dust aggregates of submicrometer-sized grains is in good harmony with the tensile strength of cometary dust and meteoroids derived from astronomical observations. Therefore, we reaffirm the commonly believed idea that the formation of planetesimals begins with conglomeration of submicrometer-sized grains condensed in protoplanetary disks.
19 pages, 11 figures, published in Monthly Notices of the Royal Astronomical Society
References in corpus (5)
- Two different evolutionary types of comets proved by polarimetric and infrared properties of their dust
- Sticking Properties of Silicates in Planetesimal Formation Revisited
- Tensile Strength of Porous Dust Aggregates
- Rocky Planetesimal Formation via Fluffy Aggregates of Nanograins
- The Morphological, Elastic, and Electric Properties of Dust Aggregates in Comets: A Close Look at COSIMA/Rosetta's Data on Dust in Comet 67P/Churyumov-Gerasimenko
Cited by in corpus (23)
- Leaky dust traps: How fragmentation impacts dust filtering by planets
- How large are the monomers of dust aggregates in planet-forming disks?: Insights from quantitative optical and near-infrared polarimetry
- Rapid formation of Gas Giant Planets via Collisional Coagulation from Dust Grains to Planetary Cores
- High precision meteor observations with the Canadian Automated Meteor Observatory -- Data reduction pipeline and application to meteoroid mechanical strength measurements
- Formation of Comets
- Is water ice an efficient facilitator for dust coagulation?
- Sticky or not sticky? Measurements of the tensile strength of micro-granular organic materials
- Cohesion of regolith: Measurements of meteorite powders
- Direct measurement of decimeter-sized rocky material in the Oort cloud
- Compaction during fragmentation and bouncing produces realistic dust grain porosities in protoplanetary discs
- The tensile strength of compressed dust samples and the catastrophic disruption threshold of pre-planetary matter
- Helios spacecraft data revisited: Detection of cometary meteoroid trails by in-situ dust impacts
- Variation of dust properties with cosmic time implied by radiative torque disruption
- Modelling cometary meteoroid stream traverses of the Martian Moons eXploration (MMX) spacecraft en route to Phobos
- Dust grain shattering in protoplanetary discs: collisional fragmentation or rotational disruption?
- The rotational disruption of porous dust aggregates from ab-initio kinematic calculations
- Effect of Dust Rotational Disruption by Radiative Torques and Implications for F-corona decrease revealed by the Parker Solar Probe
- On planet formation around supermassive black holes and the grain disruption barriers by radiative torques
- Evolution of Dust and Water Ice in Cometary Comae by Radiative Torques
- Do twin spectral peaks of olivine particles in the thermal infrared diagnose their sizes and porosities?
- A Pathway for Collisional Planetesimal Growth in the Ice-Dominant Regions of Protoplanetary Disks
- Covertly Active Comet (139359) 2001 ME1
- Effect of dust rotational disruption by radiative torques on radiation pressure feedback from massive protostars