If the forces on a planet were balanced, the planet would move in a straight line, not in an orbit.
The force on a planet that keeps it in a closed orbit, and is not balanced by any other force, is
the force of gravitation between the planet and the sun.
Hydrostatic equilibrium is the balance between the inward force of gravity and the outward pressure gradient in a fluid, like in a star or planet. This equilibrium prevents further collapse or expansion by ensuring that the pressure within the fluid supports the weight of the overlying material. In stars, this balance between gravity and pressure helps maintain their stable size and shape.
Yes, a nebula is held together by gravity. Gravity causes the gas and dust within a nebula to contract and clump together, eventually forming stars and other celestial bodies.
A planet is said to be in `hydrostatic equilibrium, its shape is formed roughly into a sphere by its own gravity. Most planets rotate enough for the sphere to flatten out ever so slightly, squashed at the centre, so really they are `oblate spheroids`.
The cell membrane is composed of phospholipids and proteins. Phospholipids form a lipid bilayer, with their hydrophobic tails facing inward and hydrophilic heads facing outward. Proteins are embedded within this lipid bilayer and have various functions, including transport, enzyme activity, and cell signaling.
The molecules at the surface of water experience a stronger inward attraction due to the imbalance of forces acting on them. While molecules within the bulk of the water are surrounded by other water molecules and experience equal attractive forces in all directions, surface molecules only have neighboring molecules on the sides and below, leading to a net inward pull. This phenomenon results in surface tension, which allows the surface to behave like a stretched elastic membrane.
balanced. The inward force is gravity, which wants to collapse the sun, while the outward force is generated by nuclear fusion in the core which produces energy and heat, preventing collapse. These forces balance each other, keeping the sun stable.
In the Sun, the forces of gravity pulling inward are balanced by the outward pressure from nuclear fusion reactions in the core. This equilibrium maintains the Sun's stable size and temperature.
A star is the equilibrium of the outward force a continuous fusion explosion versus the inward force of the gravity of its huge mass.
The balance of forces that keep a star from collapsing is called hydrostatic equilibrium. This equilibrium is maintained between the inward force of gravity and the outward force generated by gas pressure within the star.
Internal forces that affect pyramids include compression forces, which push inward on the structure, and tension forces, which pull outward. These internal forces must be balanced to prevent the pyramid from collapsing. Additionally, shear forces can occur within the pyramid due to lateral movement or external loads.
Outward linkage refers to the connections a firm has with external stakeholders, such as suppliers, customers, and the government. Inward linkage, on the other hand, pertains to the relationships within the organization, including between different departments or teams. Both types of linkages are crucial for the success and sustainability of a business.
The inward & outward remittance system includes the mechanism to send or recive money from nepal through various means. It may be Swift transfer,Bank drafts,Travellers cheque or hundi and so on. Pointedly,inward remittance is the process of receiving money from any place (internal-within nepal or external-outside nepal) and vice versa.
Hydrostatic equilibrium is the balance between the inward force of gravity and the outward pressure gradient in a fluid, like in a star or planet. This equilibrium prevents further collapse or expansion by ensuring that the pressure within the fluid supports the weight of the overlying material. In stars, this balance between gravity and pressure helps maintain their stable size and shape.
In a phospholipid bilayer, the hydrophilic heads face outward towards the water environment, while the hydrophobic tails face inward, creating a hydrophobic core within the membrane. This arrangement helps to stabilize the structure of the membrane and maintain cell integrity.
The nebula began to shrink inward due to gravitational forces. As particles within the nebula were pulled toward its center, the concentration of mass increased, leading to the formation of a protostar at the core. This marks the initial stage of a star's formation.
Yes, a nebula is held together by gravity. Gravity causes the gas and dust within a nebula to contract and clump together, eventually forming stars and other celestial bodies.
Gravitational force - which pulls matter towards the center of the protostar and is responsible for its contraction. Thermal pressure - which is generated by the heat and pressure within the protostar's core and pushes outward to counteract the gravitational force.