标题: 全温层物流营运规划之研究
A Study for Operational Planning for Multi-Temperature Joint Distribution System
作者: 许巧莺
HSU CHAUG-ING
国立交通大学运输科技与管理学系(所)
关键字: 全温层物流;供需互动;轴辐网路;差异化运送策略;Multi-Temperature Joint Distribution;Demand-Supply Interaction;Hub andSpoke Network;Discriminatory Delivery Strategy
公开日期: 2009
摘要: 近年来,随着宅配服务与电子商务之兴起,配送物品朝着多样少量与多温层的方向
发展,该趋势亦使物流业者对多温共配之相关课题日益重视,除在运送货物品质之控管
问题外,全温层物流之网路设计、技术选择、车队规划、装载计画与服务频次等营运规
划问题都是未来发展所面临重大的挑战之ㄧ。有关全温层物流的文献相当少见,其中以
全温层物流新技术的开发与应用占大部分,目前常见之配送方式大致可分为单温配送与
多温共配两种;在运输营运规划之相关文献中,鲜少针对物流技术与多温层货物之运输
营运规划课题进行探讨;而在配送策略相关文献中,则多以一般与单温低温货物之配送
为研究对象,少就多温共配之议题进行深入研究;另在航空货运之相关文献中,则少针
对各温层货物特性构建数学模式分析航空公司于提供差异化运送策略之研究。故本研究
拟构建一系列模式探讨全温层物流在陆运与空运上之相关营运规划议题。
本研究拟针对目前物流业朝向全温层物流发展之趋势,所衍生的各议题进行研究,
包含以陆运与空运配送之全温层物流营运规划问题,分别以陆运之内部营运网路、外部
营运网路与航空营运网路做分析,并分为三年期研究计画做深入探讨。第一年期计画拟
针对陆运之内部配送营运规划相关课题进行探讨,考虑各温层货物需求分布与时效性之
差异下,以业者追求总运送成本最小化之内部营运网路规划内容,并采以两阶段求解;
第一阶段为中长期策略规划,规划内容有:车辆路径(车辆数)、营运网路适合使用之
技术类型、车辆型式等,该问题型式为线性整数规划问题,可以分支定限法(Branch and
Bound)求解最佳解;第二阶段为中期战术规划,根据第一阶段所得到之规划内容与放
松部分变数的整数条件,求解货物路径、车辆频次与运具大小等规划内容,此问题型式
为线性规划问题,可在有限时间内求解完成。第二年期计画拟针对陆运之外部配送营运
规划相关课题进行探讨,针对抽换式蓄冷保温箱多温共配技术,考量商品因应动态需求
变化与时间相依之需求特性下,以业者利润最大化为目标建构数学规划式,规划能因应
时间、空间相依需求特性与同时考量供给与需求面之最适服务周期与运费之策略。第三
年期计画拟针对航空配送营运规划相关课题进行探讨,考虑货主在选择运送策略时以运
输成本与存货成本的总和成本最小化为选择运送策略的依据,进一步并构建航空公司的
运送策略成本函数,包含航机相关的运送成本、货量相关的处理成本、营运快速运送策
略需提供的保温设备成本及额外增加的人工成本等,以规划不同运送策略的运送频次与
运费、各温层的单位费率等,并在供需互动架构下,分析货主运送不同温层货物的需求
特性,如:货物价值、运送距离、托运货量及不同货品的腐败特性等因素,对航空公司
规划快速运送策略的影响,并求解航空公司于提供不同运送策略的最适频次、运费及各
温层之单位费率。
最后,本研究拟针对全温层物流与航空货运业者进行范例分析,以验证本研究不同
年期所构建的模式在实际应用上的可行性与模式发展之潜力。本研究在学术贡献上可补
过去文献之不足,亦期能提供相关问题之其他学术研究之参考。而在实务上,期能提供
全温层物流业者与航空货运业者更具因应环境改变与决策弹性之规划参考依据。
The continued growth of demand on multi-temperature products and wide spread of
timely customer demand has greatly contributed to the challenge of logistics carriers. Under
the multi-temperature joint distribution system and various deterioration of products, how to
design a comprehensive hub and spoke network and service strategy to serve consumers with
distinct dynamic demand has become an important issue for a multi-temperature joint
distribution carrier to achieve cost effective while maintain the maximized customer
satisfaction. In practice, the categories of the distribution system include regular and
multi-temperature product distribution. Some studies have analyzed the problems on
distributing regular and/or specific-temperature products but few of them focused on
multi-temperature products. Past studies have largely discussed the development of
techniques applied in the multi-temperature joint distribution system. Moreover, in the field of
physical distribution problems, the multi-temperature joint distribution problem combined
with techniques employed and dynamic demand are seldom discussed. Furthermore, there
are no current studies formulating mathematical models and aiming to discuss the
discriminatory delivery service strategy for air cargo carrier in response to demand-supply
interaction and timely demand of multi-temperature products. The proposed study attempts
to explore above issues by formulating a series of models.
This study attempts to propose operational planning for multi-temperature joint
distribution system under dynamic demand. Then, the study develops a series of models on
analyzing land and air cargo carriers’ operational decisions, such as temperature-controlled
technique, the size and types of vehicle fleet, vehicle routing, delivery and shipping service
strategies, shipping charges for standard and special services by applying network models,
heuristics, analytical models and mathematical programming models. The three-year study
includes three topics. In the first year, the hub-and-spoke network design problem in
response to time-dependent and multi-temperature demand for multi-temperature joint
distribution carriers is studied. The hub-and-spoke network design problem in the study
solves both strategic and operational decisions by employing two stage heuristic methods. The
prior planning problem solves the number of each type of vehicles, types of techniques used
in the network and vehicle routing by means of branch-and-bound methods. According to
the results obtained from the first stage and relaxations, the linear programming problem in
the second stage can be solved in a reasonable time, to determine the product delivery routes,
shipping frequency and the size of vehicles. In the second year, this study attempts to
optimize a delivery service strategy for multi-temperature joint distribution carries by
considering dynamic, spatial and time-dependent demand, demand-supply interaction, and
deterioration characteristics of various products. First, this study employs the analytical
method to formulate retailer demand function by considering the remaining shelf life of
products and shipping fee, where the remaining shelf life depends on the deterioration of
products, lead time and delivery time. The costs considered are transportation cost,
inventory cost, penalty cost for violating customers’ delivery time-windows and energy cost
for maintaining the optimal temperature for various products in the delivery process.
Furthermore, this study develops a mathematical programming model for determining the
optimal delivery service cycles and charges for shipping differential temperature products,
taking into account demand-supply interaction. In the third year, this study not only
investigates the relationship between the demand and service strategies of express and
standard air service but also proposes a mathematical programming modal on determining
flight frequency and shipping charges of various temperature products for air cargo carriers.
This study first formulates a shippers’ shipping alternative choice model. Shippers’ choices
between express and standard shipping services are dependent on demand factors such as
cargo value, amount and temperature-controlled requirement as well as supply attributes such
as shipping charge, flight frequency and express handling and custom service. Then, this
study formulates air carrier’s cost functions including transportation cost, handling cost and
additional cost for temperature controlled equipment with respect to express and standard
shipping services. Furthermore, this study formulates a mathematical programming model
to determine the optimal flight frequency for express and standard services and surcharge for
different temperature products with demand-supply interaction by maximizing the airline’s
total profit. Finally, a series of case studies about the selected multi-temperature joint
distribution carrier and air cargo carriers will be provided to illustrate the results and the
application of the developed models. Consequently, the expected results of the developed
models can provide basis on studies regarding distribution routes, product delivery strategy
and airline service strategy in the context of multi-temperature joint distribution problems.
Furthermore, the results may shed light on multi-temperature joint distribution carrier and
airlines regarding their decision-making on operating strategy, marketing, delivery service
strategy in response to the determination nature of multi-temperature products and timely
delivery requirement of customers.
官方说明文件#: NSC96-2416-H009-010-MY3
URI: http://hdl.handle.net/11536/101298
https://www.grb.gov.tw/search/planDetail?id=1733656&docId=296802
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